The present disclosure relates to embodiments of a release mechanism for a handle of a delivery apparatus for an implantable medical device, such as a prosthetic heart valve.
Delivery apparatuses, such as endovascular delivery apparatuses, are used in various procedures to deliver prosthetic medical devices to locations inside the body that are not readily accessible by surgery or where access without surgery is desirable. Access to a target location inside the body is achieved by a medical specialist inserting and guiding the delivery apparatus through a pathway or lumen in the body, including, but not limited to, a blood vessel, an esophagus, a trachea, any portion of the gastrointestinal tract, a lymphatic vessel, to name a few. The prosthetic medical device may include expandable valves or instruments (e.g., stents). In one specific example, an expandable prosthetic heart valve can be mounted in a radially compressed (or crimped) state on a distal end of the delivery apparatus and then deployed from a capsule of the delivery apparatus at the implantation site so that the prosthetic valve can self-expand to its functional size.
In some embodiments, the delivery apparatus can include an articulating portion with one or more steering mechanism that allow a distal end portion of the delivery apparatus to articulate (e.g., curve or flex) when being guided through a patient's vasculature. For example, at least a distal end portion of the delivery apparatus may be required to articulate over the aortic arch in order to deliver a prosthetic aortic valve arranged on the distal end of the delivery apparatus to its target implantation site. The delivery apparatus can include multiple shafts with concentric lumens that may shorten or lengthen with respect to each other as the distal end portion of the delivery apparatus articulates/flexes.
In some embodiments, after flexing the distal end portion of the delivery apparatus to reach the target implantation site, and while the distal end portion remains flexed, the valve can be released from the delivery apparatus by rotating a knob of a release mechanism of the delivery apparatus. This causes linear movement (proximally, along the axial direction) of an inner shaft coupled to release members that are releasably coupled with the valve. However, this linear translation of concentric lumens when flexed can cause shortening of the inner shaft, thereby creating tension in the distal end portion of the delivery apparatus upon unflexing. If the release mechanism is not unlocked (via a locking mechanism) to relieve this tension during unflexing, the distal end portion can be held in tension, thereby preventing the delivery apparatus from being removed from the implantation site.
Such locking mechanisms may increase the complexity of the implantation procedure and create tension issues that may increase the difficulty in removing the delivery apparatus from the implantation site, after implanting the valve.
Accordingly, a need exists for improved delivery apparatuses that can relieve tension created during releasing the valve from the delivery apparatus, prior to unflexing the catheter.
Disclosed herein are embodiments of an improved delivery apparatus for an implantable medical device (e.g., a prosthetic heart valve), as well as related methods for use of such an apparatus in implanting an implantable medical device in a patient's body. In some embodiments, the delivery apparatus can include a handle portion which a user (e.g., physician, medical technician, or the like) can hold and use to operate the delivery apparatus. In some embodiments, the handle portion can include a release mechanism configured to adjust a linear position of a component of the delivery apparatus, the handle portion including a rotatable knob and a drive screw arranged within the knob. The knob and drive screw can be mated such that rotation of the knob results in linear translation of the drive screw and the component of the delivery apparatus. In some embodiments, the knob and drive screw can be configured to automatically relieve tension in the distal end portion of the delivery apparatus, during an implantation procedure.
In one representative embodiment, a delivery apparatus for an expandable, implantable medical device includes: a handle portion including a release mechanism configured to adjust a linear position, relative to a central longitudinal axis of the delivery apparatus, of a component of the delivery apparatus, the release mechanism comprising: a threaded drive screw including a helical threaded portion having a lead of at least one inch, where the helical threaded portion includes one or more grooves extending around the drive screw, the drive screw coupled to the component; and a rotatable knob surrounding and coaxial with the drive screw, the knob including one or more teeth arranged at a proximal end of the knob, each tooth of the one or more teeth configured to interface with a corresponding groove of the one or more grooves of the drive screw, wherein each tooth of the one or more teeth extends from the proximal end, toward a distal end of the knob, only a portion of a total distance between the proximal end and the distal end, wherein the portion is less than ¼ the total distance.
In one representative embodiment, a method for implanting an implantable medical device with a delivery apparatus includes: advancing a distal end portion of a delivery apparatus to a target implantation site using a handle portion of the delivery apparatus, the implantable medical device arranged in a radially compressed configuration on the distal end portion; and after reaching the target implantation site, uncovering the radially compressed implantable medical device and releasing the implantable medical device from the delivery apparatus, the releasing including: from a starting position, rotating a knob of a release mechanism of the handle portion of the delivery apparatus and moving one or more teeth of the knob along one or more corresponding grooves of a drive screw of the release mechanism to linearly translate the drive screw in a proximal direction, along an axis that is parallel to a central longitudinal axis of the delivery apparatus, until the drive screw reaches a released position; while and as a result of the drive screw translating in the proximal direction, linearly translating an inner shaft fixedly coupled with the drive screw and one or more release members fixedly coupled to a distal end portion of the inner shaft to release the implantable medical device from the delivery apparatus; and actuating a steering mechanism of the delivery apparatus to unflex a distal end portion of the delivery apparatus and passively retracting the drive screw in a distal direction, partially into the knob to automatically release tension during the unflexing, the distal direction opposite to the proximal direction.
In another representative embodiment, a method for operating a release mechanism of a handle portion of a delivery apparatus configured to deliver an implantable medical device to a target implantation site, includes: from a starting, locked position of the release mechanism, moving one or more teeth of a knob of the release mechanism along one or more corresponding grooves of a drive screw of the release mechanism to linearly translate the drive screw in a proximal direction, along an axis that is parallel to a central longitudinal axis of the delivery apparatus, until the drive screw reaches a released position, in response to rotation of the knob, wherein in the starting, locked position a main body of the drive screw including the one or more grooves is arranged within an interior of the knob and in the released position, a majority of the main body extends outside of the knob; while the drive screw is translating in the proximal direction, linearly translating an inner shaft fixedly coupled with the drive screw and one or more release members fixedly coupled to a distal end portion of the inner shaft to release the implantable medical device mounted on the distal end portion of the delivery apparatus from the delivery apparatus; and unflexing the distal end portion of the delivery apparatus in response to actuation of a steering mechanism of the delivery apparatus and, during the unflexing, passively retracting the drive screw in a distal direction, partially into the knob to automatically release tension in the distal end portion of the delivery apparatus and enable the unflexing, the distal direction opposite the proximal direction.
In another representative embodiment, a delivery apparatus for an expandable, implantable medical device includes: an inner shaft; one or more release members, each including a proximal end coupled to an outer surface of a distal end portion of the inner shaft and a distal end configured to be releasably coupled to the implantable medical device arranged around the distal end portion of the inner shaft, distal to where the proximal end couples to the inner shaft; and a handle portion, including: a steering mechanism configured to adjust a curvature of and flex one or more shafts of the delivery apparatus, including the inner shaft, at a distal end portion of the delivery apparatus; and a release mechanism configured to adjust a linear position of the inner shaft and the one or more release members, along a central longitudinal axis of the delivery apparatus, relative to an outer housing of the handle portion, the release mechanism comprising: a threaded drive screw coupled to a proximal end of the inner shaft and including a helical threaded portion arranged in a main body of the drive screw, where one or more grooves forming the helical threaded portion extend from a proximal end to a distal end of the main body of the drive screw; and a rotatable release knob coupled to the housing of the handle portion and surrounding and coaxial with the drive screw, the release knob including one or more teeth arranged at a proximal end of the knob and configured to interface with the one or more grooves of the drive screw The drive screw is adapted to move linearly, along the central longitudinal axis, relative to the release knob, in response to rotation of the release knob and sliding of the one or more teeth along the one or more grooves, and actuating the steering mechanism to unflex the one or more shafts of the delivery apparatus allows the drive screw to move distally, along the central longitudinal axis, to release tension created in the distal end portion of the delivery apparatus.
The foregoing and other objects, features, and advantages of the invention will become more apparent from the following detailed description, which proceeds with reference to the accompanying figures.
For purposes of this description, certain aspects, advantages, and novel features of the embodiments of this disclosure are described herein. The described methods, systems, and apparatus should not be construed as limiting in any way. Instead, the present disclosure is directed toward all novel and non-obvious features and aspects of the various disclosed embodiments, alone and in various combinations and sub-combinations with one another. The disclosed methods, systems, and apparatus are not limited to any specific aspect, feature, or combination thereof, nor do the disclosed methods, systems, and apparatus require that any one or more specific advantages be present, or problems be solved.
Features, integers, characteristics, compounds, chemical moieties, or groups described in conjunction with a particular aspect, embodiment or example of the disclosure are to be understood to be applicable to any other aspect, embodiment or example described herein unless incompatible therewith. All of the features disclosed in this specification (including any accompanying claims, abstract, and drawings), and/or all of the steps of any method or process so disclosed, may be combined in any combination, except combinations where at least some of such features and/or steps are mutually exclusive. The disclosure is not restricted to the details of any foregoing embodiments. The disclosure extends to any novel one, or any novel combination, of the features disclosed in this specification (including any accompanying claims, abstract, and drawings), or to any novel one, or any novel combination, of the steps of any method or process so disclosed.
Although the operations of some of the disclosed methods are described in a particular, sequential order for convenient presentation, it should be understood that this manner of description encompasses rearrangement, unless a particular ordering is required by specific language set forth below. For example, operations described sequentially may in some cases be rearranged or performed concurrently. Moreover, for the sake of simplicity, the attached figures may not show the various ways in which the disclosed methods, systems, and apparatus can be used in conjunction with other systems, methods, and apparatus.
As used herein, the terms “a,” “an,” and “at least one” encompass one or more of the specified element. That is, if two of a particular element are present, one of these elements is also present and thus “an” element is present. The terms “a plurality of” and “plural” mean two or more of the specified element.
As used herein, the term “and/or” used between the last two of a list of elements means any one or more of the listed elements. For example, the phrase “A, B, and/or C” means “A,” “B,” “C,” “A and B,” “A and C,” “B and C,” or “A, B, and C.”
As used herein, the term “coupled” generally means physically coupled or linked and does not exclude the presence of intermediate elements between the coupled items absent specific contrary language.
Directions and other relative references (e.g., inner, outer, upper, lower, etc.) may be used to facilitate discussion of the drawings and principles herein, but are not intended to be limiting. For example, certain terms may be used such as “inside,” “outside,”, “top,” “down,” “interior,” “exterior,” and the like. Such terms are used, where applicable, to provide some clarity of description when dealing with relative relationships, particularly with respect to the illustrated embodiments. Such terms are not, however, intended to imply absolute relationships, positions, and/or orientations. For example, with respect to an object, an “upper” part can become a “lower” part simply by turning the object over. Nevertheless, it is still the same part and the object remains the same. As used herein, “and/or” means “and” or “or,” as well as “and” and “or.”
As used herein, with reference to the prosthetic heart valve and the delivery apparatus, “proximal” refers to a position, direction, or portion of a component that is closer to the user and/or a handle of the delivery apparatus that is outside the patient, while “distal” refers to a position, direction, or portion of a component that is further away from the user and/or the handle of the delivery apparatus and closer to the implantation site. The terms “longitudinal” and “axial” refer to an axis extending in the proximal and distal directions, unless otherwise expressly defined. Further, the term “radial” refers to a direction that is arranged perpendicular to the axis and points along a radius from a center of an object (where the axis is positioned at the center, such as the longitudinal axis of the prosthetic valve).
Described herein are examples of a delivery apparatus that can be used to deliver an implantable, expandable medical device, such as a prosthetic heart valve, to a target implantation site in a patient. The delivery apparatus can include a handle portion and one or more concentric shafts extending distally away from the handle portion. The implantable medical device can be mounted in a radially compressed configuration on a distal end portion of the delivery apparatus. For example, a delivery capsule may be coupled to an outer shaft of the delivery apparatus, at the distal end portion, and cover and retain the implantable medical device in its radially compressed state thereon. The handle portion can include a housing and one or more buttons and/or knobs that are actuatable by a user and configured to adjust operation of the delivery apparatus, during an implantation procedure. In some embodiments, the handle portion can include a steering knob configured to adjust an amount of curvature of one or more shafts of the delivery apparatus, at the distal end portion of the delivery apparatus, thereby allowing the implantable medical device to be delivered through curving lumens of a patient.
In some embodiments, the handle portion can include a valve release mechanism that is configured to adjust a linear position (along a central longitudinal axis of the delivery apparatus) of one or more components of the delivery apparatus and automatically relieve tension created at the distal end portion of the delivery apparatus during curving the distal end portion and linearly adjusting the position of one or more components at the distal end portion. For example, in some embodiments, the steering mechanism is configured to adjust a linear position of one or more release members coupled with the implantable medical device, in order to release the implantable medical device from the delivery apparatus. In some embodiments, the release mechanism includes a rotatable knob coupled to the housing of the handle portion and a threaded drive screw arranged within an interior of the knob. Rotation of the knob can cause the drive screw to translate in the axial direction via a mating connection between one or more grooves of the drive screw and one or more teeth of the knob. The drive screw may be coupled to an inner shaft coupled to the one or more release member. Thus, linear movement of the drive screw can result in concurrent linear movement of the inner shaft and one or more release members. A pitch and lead of the threads of the drive screw (formed by the one or more grooves) can be relatively long while a length of the teeth of the knob are relatively short. As a result, after uncoupling the release members from the implantable medical device, via manually rotating the release mechanism knob, and while unflexing the distal end portion of the delivery apparatus (e.g., via the steering mechanism), the drive screw may passively translate in the distal, axial direction and retract back into the knob, thereby relieving tension at the distal end portion of the delivery apparatus and facilitating the unflexing. As a result, the delivery apparatus may be more easily removed from the implantation site and the overall implantation procedure with the delivery apparatus may be simplified.
In some embodiments, the delivery apparatus is configured to deliver and implant a prosthetic heart valve, such as the example prosthetic heart valve of
The prosthetic heart valve 10 comprises a stent, or frame 12 and a valvular structure 14 (e.g., leaflets or a flap valve) supported by the frame 12. The frame 12 can have a plurality of interconnected struts 16 arranged in a lattice-like pattern and forming a plurality of apices 18 at the inflow and outflow ends 20, 22, respectively, of the frame 12
The frame 12 can include a plurality of angularly-spaced posts 24 extending from respective apices 18 at the outflow end of the frame 12. The frame 12 in the illustrated embodiment includes three such posts 24, although a greater or fewer number of posts can be used. In one implementation, the frame 12 can have posts 24 extending from all the apices 18 at the outflow end 22 of the frame 12. Each post 24 can have an eyelet or aperture 26, which can be used to form a releasable connection with the delivery apparatus (e.g., delivery apparatus 100), such as via the use of one or more cords or tethers 118 (see
In some embodiments, the frame 12 can be without posts 24 and apertures 26 can be formed in the apices 18 at the outflow end 22 of the frame 12. In the embodiment shown at
In other embodiments, the apertures 26 (whether formed in posts 24 or in the apices 18) can be formed at the inlet (or inflow) end 20 of the frame 12 where other delivery apparatus configurations or other delivery techniques require apertures at the inlet end of the frame, such as a transapical delivery approach. In still further embodiments, the delivery apparatus 100 can include the cord manifold 120 positioned distal to the prosthetic valve when loaded within the delivery apparatus, with the cord manifold coupled to the inlet (or inflow) end 20 of the frame.
In particular embodiments, the prosthetic heart valve 10 is a self-expandable heart valve wherein the frame 12 is a made of a super-elastic, self-expanding material (e.g., a nickel titanium alloy such as Nitinol) as is known in the art. When used with the delivery apparatus 100 (
In other embodiments, the frame 12 can be made of any of various suitable plastically-expandable materials (e.g., stainless steel, cobalt-chromium alloy, etc.) and the prosthetic heart valve can be expanded from a radially compressed state to a radially expanded state by inflating a balloon of the delivery apparatus or by actuating other expansion means of the delivery apparatus and produces radial expansion of the prosthetic valve.
The valvular structure 14 can comprise a plurality of leaflets 28. The valvular structure typically comprises three leaflets 28 arranged in a tricuspid arrangement, although a greater or fewer number of leaflets 28 can be used. The leaflets 28 can be made of any various suitable materials, including natural tissue (e.g., bovine pericardium or pericardium from other sources) or synthetic materials (e.g., polyurethane). Adjacent side portions at the outflow edges (the upper edges in the drawings) of adjacent leaflets can be secured to each other to form commissures 30 of the valvular structure, which can be secured to the frame with sutures 32.
The prosthetic valve 10 can further include an inner skirt 34 mounted on the inside of the frame 12. The skirt 34 helps establish a seal with the surrounding tissue after implantation. The skirt 34 can also be used to mount portions of the leaflets 28 to the frame 12. For example, in the illustrated embodiment, the inflow edges of the leaflets (the lower edges in the drawings) can be sutured to the skirt 34 along suture line 36. The skirt 34 can be connected directly to the frame 12, such as with sutures. Although not shown, the prosthetic valve 10 can include an outer skirt mounted on the outside of the frame in lieu of or in addition to the inner skirt 34 to further seal the prosthetic valve against surrounding tissue. The inner and/or outer skirts can be made of any of various suitable materials, including natural tissue (e.g., pericardium tissue) or any of various synthetic materials, which may be woven, non-woven, braided, knitted, and/or combinations thereof. In one specific implementation, the inner skirt 34 is made of a polyethylene terephthalate (PET) fabric.
Exemplary configurations of the prosthetic heart valve are further disclosed in U.S. Patent Application Publication Nos. 2014/0343670, 2012/0123529, 2010/0036484, and 2010/0049313, the disclosures of which are incorporated by reference herein.
Prosthetic heart valve 10, or another type of implantable, expandable medical device, such as an expandable stent, can be delivered to an implantation site via a delivery apparatus, an embodiment of which is shown at
As shown in
As shown in
A nosecone 144 can be connected to or mounted on a distal end portion 152d of the inner shaft 152. The nosecone 144 can have a tapered outer surface as shown for atraumatic tracking of the delivery apparatus 100 through a patient's vasculature. The inner shaft 152 extends distally beyond the intermediate shaft 150, through a lumen of a cord manifold 120, and through the prosthetic valve 10.
In certain embodiments, the first, second, and third shafts 134, 150, and 152, respectively, can be configured to be moveable relative to each other, including relative axial movement (in the proximal and distal directions) and/or relative rotational movement (in the clockwise and counterclockwise directions). A guide wire 154 (
A delivery capsule 146 is coupled to the distal end portion 142 of the first shaft 134, proximal to the nosecone 144. The delivery capsule 146 houses the prosthetic valve 10 therein in a radially compressed state, as shown at
However, the prosthetic heart valve 10 alternatively can be a plastically expandable prosthetic valve or a mechanically expandable heart valve. If the delivery apparatus is used to implant a plastically expandable valve, the delivery apparatus can include a balloon catheter as known in the art for expanding the prosthetic valve, such as disclosed in U.S. Publication No. 2009/0281619, which is incorporated herein by reference. If the delivery apparatus is used to implant a mechanically expandable valve, the delivery apparatus can include one or more actuators for expanding the prosthetic valve, such as disclosed in International Application No. PCT/US2020/063104, which is incorporated herein by reference.
As shown at
As shown in
The cords 118 may be made of any of various suitable biocompatible materials for use within a patient's body. In certain embodiments, a cord 118 can comprise a single filament cord or a multifilament or multi-strand cord formed from braiding, weaving, knitting, twisting, and wrapping a plurality of filaments or strands together. The filaments or strands can comprise polymeric fibers, such as ultra-high molecular weight polyethylene, nylon, polyester, and/or aramid, or flexible wires (e.g., metal wires).
Each of the cords 118 can have a first end 118a attached to the cord manifold 120, such as to the proximal portion 122. Each cord 118 extends through an opening of the frame 12 of the prosthetic valve (e.g., through an opening 26) and can have a second end 118b in the form of a loop that is retained on a release member 156. The release members 156 are configured to retain the cords 118 in a state connected to the frame 12 of the prosthetic valve 10 until they are actuated by a user to release the cords 118. Two release members 156 are shown for purposes of illustration. It should be understood that any number of release members 156 can be used.
Similarly, two cords 118 are shown for purposes of illustration, but it should be understood that any number of cords can be used. Also, there need not be an equal number of cords and release members 156. For example, the ends 118b of multiple cords 118 may be retained on a single release member 156. Desirably, at least three cords 118 are used to balance the attachment of the frame 12 to the cord manifold 120. In particular embodiments, the number of cords 118 is equal to the number of apices 18 of the frame 12 of the prosthetic valve 10 (
Each release member 156 can extend in a slideable manner through respective openings in the proximal portion 122 and the distal portion 124 of the cord manifold 120 (
Each of the release members 156 is moveable in the proximal and distal directions relative to the proximal and distal portions 122, 124, of the cord manifold between a distal position where each release member 156 retains a respective cord 118 and a proximal position where each release member 156 is released from a respective cord 118. Together, the knob 136, the release members 156, and the cord manifold 120 can form a release assembly of the delivery apparatus 100, as described further below with reference to
Further details regarding the attachment of the prosthetic valve 10 to the delivery apparatus 100 via one or more cords or sutures are disclosed in U.S. Publication Nos. 2014/0343670, 2012/0239142, and 2010/0049313 and International Application No. PCT/US2020/024130, all of which documents are incorporated herein by reference.
Moreover, in alternative embodiments, different valve-retaining mechanisms can be used to form a releasable connection between the prosthetic valve 10 and the delivery apparatus 100. For example, in some embodiments, the posts 24 of the frame 12 can be retained in corresponding recesses of a shaft or retaining member of the delivery apparatus, which allow the posts of the frame to expand out of their corresponding recesses when the capsule 146 is retracted to deploy the prosthetic valve. In other embodiments, the retaining mechanism can comprise inner and outer metal fork members that form a release connection between the delivery apparatus and the prosthetic valve. Further details regarding alternative valve-retaining mechanisms are disclosed in U.S. Publication Nos. 2012/0239142 and 2010/0049313.
As further shown in
Rotation of the second shaft 150 relative to the first shaft 134 therefore produces axial movement of the nut 164 (in the distal and proximal directions), which in turn produces corresponding axial movement of the capsule 146 in the same direction during loading, deployment, and/or recapture of the prosthetic valve. For example, when the nut 164 is in a distal position, the delivery capsule 146 extends over and retains the prosthetic valve 10 in a compressed state for delivery. Movement of the nut 164 in a proximal direction causes the delivery capsule 146 to move in the proximal direction, thereby deploying the prosthetic valve. Rotation of the second shaft 150 can be achieved via a motor operatively coupled to the second shaft and/or manual control features, as further described below.
In certain embodiments, the delivery apparatus 100 may comprise one or more steering mechanisms configured to control the curvature of one or more of the shafts 134, 150, 152 to assist in steering the delivery apparatus through a patient's vasculature. For example, the steering mechanism can comprise one or more eccentrically positioned pull wires extending through a shaft and operatively connected to an adjustment mechanism, such as steering knob 418, located on or adjacent the handle portion 132
In certain embodiments, as shown in
The proximal end portion 140 of the first shaft 134 can be coupled to a distal end of the handle portion 132. As shown at
In one embodiment, as best shown at
In some implementations, the inner surface of the lumen 173 can have a non-circular cross-section in a plane perpendicular to the longitudinal axis L-L′ and the proximal end portion 151 of the second shaft 150 can have a similar cross-sectional profile that corresponds to the shape of the lumen so that rotational motion of the rotatable component 172 is transferred to the second shaft 150. For example, the lumen 173 and the proximal end portion 151 can be generally cylindrical have a series of circumferentially spaced flat sections. In lieu of or in addition to providing the lumen 173 and proximal end portion 151 with non-circular cross-sections, the proximal end portion 151 can be secured to the rotatable component with fastening means, such as mechanical fasteners (e.g., a screw), adhesives, a press fit, a snap fit connection, etc.
As best shown in
As best shown in
In alternative embodiments, the motor shaft 188 or the drive shaft 184 can be connected to the rotatable component 172 without any intervening gears. For example, the motor shaft 188 can be positioned proximal to the rotatable component along the axis L-L′ and the motor shaft 188 can be connected to the rotatable component 172 in a direct drive arrangement.
In the illustrated embodiment, the cradle 190 housing the motor 168 and the drive shaft 184 may also be configured to support the rotatable component 172 for rotational movement within the handle portion. As best shown in
With reference to
In use, the prosthetic valve 10 can be connected to the delivery apparatus 100 and loaded into the capsule 146 as follows. A releasable connection can be formed between each apex 18 at one end of the frame 12 and the cord manifold 120 with a separate cord 118. Optionally, the length of the cords 118 are selected such that the secured end of the frame is held in an at least partially radially compressed state by the cords. After securing the end of the frame 12 with the cords 118, the delivery capsule 146 can be advanced distally (e.g., by pressing button 138a) over the cord manifold 120, the cords 118, and the frame 12, causing the frame to collapse to a radially compressed state under the force of the capsule 146 (as shown in
After loading the prosthetic heart valve 10 within the delivery apparatus 100, as described above, the delivery apparatus 100 can be inserted in the vasculature of a patient and advanced or navigated through the patient's vasculature to the desired implantation site (e.g., through a femoral artery and the aorta when delivering the prosthetic valve 10 in a retrograde delivery approach to the native aortic valve).
Once the prosthetic valve 10 is delivered to a selected implantation site within the patient (e.g., the native aortic valve), the delivery capsule 146 may be retracted (e.g., by pressing button 138b) in order to deploy the prosthetic valve 10. As the delivery capsule 146 is retracted (
If desired, the delivery capsule 146 can be advanced back over the prosthetic valve 10 to fully or partially recapture the prosthetic valve (bring the prosthetic valve back within the capsule) to facilitate re-positioning of the prosthetic valve. For example, after crossing the native aortic valve leaflets in a retrograde delivery approach and deploying the prosthetic valve, it may be desirable to recapture the prosthetic valve back within the capsule 146, retract the delivery apparatus 100 to bring the prosthetic valve back within the aorta, and then advance the prosthetic valve back across the native aortic valve leaflets, and deploy the prosthetic valve from the capsule.
Once the prosthetic valve is deployed from the capsule 146 and positioned at the desired implantation location, the release members 156 can be retracted, such as by rotating the knob 136 on the handle portion 132. In some cases, the cords 118 slide outwardly from the apertures 26 and free themselves from the frame 12 by virtue of the self-expanding frame 12 further expanding when the release members 156 are retracted. In other cases, the user can slightly retract the delivery apparatus 100, which in turn pulls the cords 118 proximally relative to the frame 12 to pull them out of the apertures 26.
Optionally, the orientation of the prosthetic valve can be reversed such that the inflow end of the prosthetic valve is the proximal end and the outflow end of the prosthetic valve is the distal end when coupled to the delivery apparatus. This can facilitate delivery of the prosthetic valve to different implantation locations (e.g., the native aortic, pulmonary, mitral, and tricuspid annuluses) and/or for various delivery approaches (e.g. antegrade, transseptal, transventricular, transatrial). Further details on the components and operation of delivery apparatuses used to deliver prosthetic medical devices, such as a prosthetic heart valve, to a target location are disclosed in International Patent Application No. PCT/US2021/023696, which is incorporated by reference herein.
As introduced above, the delivery apparatus 100 can include an inner shaft 152 having an inner, guide wire lumen configured to receive a guide wire (e.g., guide wire 154) therein. The inner shaft 152 can be releasably connected at its proximal end to the drive screw 161 (
As shown in
As shown in
After the distal end portion of the delivery apparatus 100, containing the prosthetic heart valve, reaches the target implantation site, the prosthetic heart valve may be deployed by moving the capsule 146 away from the valve, to uncover the valve. The knob 136 can then be rotated in order to move the inner shaft 152 axially, in a proximal direction 214 (toward the handle portion 132), thereby retracting the release members 208 away from the prosthetic heart valve.
As used herein “proximal direction” may refer to a direction of movement or travel, along an axial direction that is parallel to the central longitudinal axis of the delivery apparatus, toward the handle portion or a user of the delivery apparatus while a “distal direction” may refer to a direction of movement or travel, opposite to the proximal direction along the axial direction, that is away from the handle portion and closer to the target implantation site.
The spool stop 216 can be fixed axially relative to the inner shaft 152 and the spool 212. In some embodiments, the spool stop 216 can be fixed to a component of another shaft of the delivery apparatus, such as second shaft 150 or first shaft 134.
Since the release members 208 have also moved proximally, with the spool 212, the prosthetic heart valve can now be released from the delivery apparatus 100 and the delivery apparatus 100 can be removed from the implantation site.
In some embodiments, when delivering a prosthetic aortic valve with a delivery apparatus (e.g., delivery apparatus 100) to its target implantation site, at least the distal end portion of the delivery apparatus may have to traverse a curved portion of the patient's vasculature, such as the aortic arch of the patient. An exemplary, simulated aortic arch 300 is shown in
For example, as shown in
In this way, the locking mechanism of the release mechanism 200 may increase the complexity of an implantation procedure and cause tension issues that may increase the difficulty in removing the delivery apparatus from the implantation site, after implanting the prosthetic heart valve. Thus, it may be desirable to have a delivery apparatus that does not include a locking mechanism for the release mechanism.
The release mechanism 402 of
As shown in
In some embodiments, as shown in
The release knob 404 of the release mechanism 402 can be coupled to a proximal end 414 of the housing 410 and configured to rotate, about a central longitudinal axis 420 of the release mechanism (which may also be a central longitudinal axis of the knob 404, drive screw 406, and delivery apparatus). However, movement of the release knob 404 may be fixed in the axial direction (along central longitudinal axis 420). In this way, the release knob 404 can rotate but may be fixed from translating linearly, in the axial direction.
For example, as shown in
For example, as shown in
Returning to
As shown in
As shown in
The release knob 404 is shown having two teeth 446 that are spaced apart from one another around a circumference of the inner surface 442. In some embodiments, the two teeth 446 can be spaced approximately 180 degrees apart from one another around the circumference of the inner surface 442. For example, as shown in the distal end view of
In some embodiments, as shown in
The drive screw 406 can be arranged within an interior (e.g., the bore 440) of the release knob 404 (
In some embodiments, each retaining element 458 includes a protruding member (also referred to as a detent) 460, a first linear thread portion 462 arranged on a first side of the protruding member 460 and a second linear thread portion 464 arranged on a second side of the protruding member 460 (
In some embodiments, each retaining element 458 can include a tab 485 arranged inward (in the distal, axial direction) of the protruding member 460 (
Each groove 452 can extend from the second linear thread portion 464 of a corresponding retaining element 458 and helically curve around the outer surface 454 of the main body 456 of the drive screw 406, from the corresponding retaining element 458 to a distal end 474 of the main body 456.
In some embodiments, as shown in
In some embodiments, the helical threaded portion can have a lead 466 greater than 1 inch and a pitch 468 greater than 0.5 inches. As used herein and shown in
In alternate embodiments, the helical threaded portion may instead have a single start thread formed by a single groove 452. In these embodiments, the release knob 404 can include only a single tooth 446 which is configured to mate with the single groove 452. In the single start thread embodiment, the helical threaded portion can have a lead of 1.5 inches and a pitch of 1.5 inches or a lead of at least 1 inche and a pitch of at least 1 inch.
As shown in
Thus, each tooth 446 can be shaped to fit within the corresponding groove 452. For example, as shown in
While each groove 452 curves around the outer surface 454 and extends from the proximal end 476 to the distal end 474 of the main body 456 of the drive screw 406, each tooth 446 only extends a portion of the total distance (e.g., length) 448 between the proximal end 426 and the distal end 424 of the release knob 404. Thus, a path length 478 (as shown in
As explained further below with reference to
In some embodiments, a material of the drive screw 406 and release knob 404 can also be selected to provide a desired amount of engagement between the teeth 446 of the release knob 404 and the grooves 452 of the drive screw 406. For example, in some embodiments, the materials of the drive screw 406 and at least the teeth 446 of the release knob 404 can be selected to allow the teeth 446 to slide more easily along the grooves 452. In some embodiments, the drive screw 406 and/or the release knob 404 can comprise materials that provide each of these components with relatively low friction contacting surfaces, such as thermoplastic polymers. In some embodiments, the drive screw 406 and the release knob 404 can comprise different polymeric materials (e.g., different thermoplastic polymers) that are configured to promote sliding between surfaces of the drive screw 406 and release knob 404. Possible polymeric materials can include polycarbonate, acrylonitrile butadiene styrene (ABS), polytetrafluoroethylene (PTFE), ABS impregnated with PTFE or another lubricous additive, nylon, and/or polyethylene. For example, in some embodiments, the drive screw 406 can comprise polycarbonate and the release knob can comprise ABS (or vice versa). Further, in some embodiments, together the material of the drive screw 406 and/or the release knob 404 and the lead of the grooves 452 and the teeth 446 can be selected to provide the desired level of engagement, as explained above.
As shown in
In some embodiments, as shown in
Returning to
As shown in
In some embodiments, as shown in
In some embodiments, as shown in
In some embodiments, as shown in
Method 500 begins at 502 and includes advancing a distal end portion of a delivery apparatus (e.g., distal end portion shown in
In some embodiments, the curved portion of the patient's vasculature may include an aortic arch. An example of a distal end portion of delivery apparatus being articulated around a simulated, aortic arch is shown in
At 504, the method includes, after reaching the target implantation site, translating the capsule covering the radially compressed prosthetic heart valve (or alternate implantable medical device) away from the valve to uncover the prosthetic heart valve. In some embodiments, after retracting the capsule away from the radially compressed valve, the valve may self-expand to a radially expanded configuration. In some embodiments, the translating the capsule may be in response to actuation of one or more buttons on a handle portion of the delivery apparatus. For example, when a user actuates the one or more buttons, as described above with reference to
After uncovering the prosthetic heart valve or other medical device at 504, method 500 proceeds to 506. At 506, the method includes rotating a knob of a release mechanism (e.g., release knob 404 of release mechanism 402, as shown in
In some embodiments, as described herein with reference to
As shown in
Further, in the starting, locked position or configuration, each tooth 446 can be arranged within a first linear thread portion 462 of a corresponding retaining element 458 (as shown at
Upon initial rotation of the knob 404 (e.g., via a user), each tooth 446 can overcome the protruding member 460 of the retaining element 458, by moving over and past the protruding member 460, to the second linear thread portion 464 which is connected to a corresponding groove 452. In this way, rotating the knob at 506 may first include initially rotating the knob to uncouple (or release) the teeth 446 from the corresponding retaining element 458. A user may feel an initial resistance in overcoming the retaining element 458, due to the protruding member 460. However, after passing over the protruding member 460, the user may feel less resistance in turning the knob 404. The tooth 446 can then slide and travel along the path of the groove, as the knob 404 is turned. As the tooth 446 travels along the groove 452, in response to the knob 404 turning, the drive screw 406 translates proximally in the axial direction while the axial position of the knob 404 remains fixed. For example, the proximal end 476 of the drive screw 406 extends further outside of the knob 404, as each tooth 446 continues to travel along the corresponding groove 452.
The method at 506 can further include, while the drive screw 406 is translating in the proximal, axial direction, linearly translating the inner shaft 488 fixedly coupled with the drive screw 406 (
In the released position or configuration of the release mechanism 402 (and the drive screw 406), the drive screw 406 extends proximally outward, in the axial direction, from the proximal end of the release knob 404 (as shown in
Continuing to 508, the method can include, after releasing the prosthetic heart valve (or other implantable medical device), adjusting (e.g., actuating) the steering mechanism to unflex the distal end portion of the delivery apparatus and passively retracting the drive screw in a distal, axial direction, partially into the knob to release tension during the unflexing. As explained above, tension in the shafts of the delivery apparatus can be created during releasing the valve from the delivery apparatus, while the distal end portion of the delivery apparatus is being unflexed. Thus, this tension needs to be relieved to enable complete and successful unflexing of the distal end portion of the delivery apparatus and removal of the delivery apparatus from the implantation site. By allowing the drive screw 406 to passively retract into the knob 404, thereby linearly translating the inner shaft 488 distally, in the axial direction, the tension created during the unflexing can be relieved, as the distal end portion of the delivery apparatus is unflexed (e.g., via actuating the steering mechanism, such as via rotation of the steering knob 418).
For example, from the released configuration of the release mechanism 402 (shown at
Thus, the method at 510 includes, after unflexing the distal end portion of the delivery apparatus at 508, removing the delivery apparatus from the implantation site (and the patient).
In view of the above described implementations of the disclosed subject matter, this application discloses the additional examples enumerated below. It should be noted that one feature of an example in isolation or more than one feature of the example taken in combination and, optionally, in combination with one or more features of one or more further examples are further examples also falling within the disclosure of this application.
Example 1. A delivery apparatus for an expandable, implantable medical device, the delivery apparatus comprising: a handle portion including a release mechanism configured to adjust a linear position, relative to a central longitudinal axis of the delivery apparatus, of a component of the delivery apparatus, the release mechanism comprising: a threaded drive screw including a helical threaded portion having a lead of at least one inch, where the helical threaded portion includes one or more grooves extending around the drive screw, the drive screw coupled to the component; and a rotatable knob surrounding and coaxial with the drive screw, the knob including one or more teeth arranged at a proximal end of the knob, each tooth of the one or more teeth configured to interface with a corresponding groove of the one or more grooves of the drive screw, wherein each tooth of the one or more teeth extends from the proximal end, toward a distal end of the knob, only a portion of a total distance between the proximal end and the distal end, wherein the portion is less than ¼ the total distance.
Example 2. The delivery apparatus of any example herein, particularly example 1, wherein the threaded drive screw includes one or more retaining elements arranged at a proximal end of the drive screw, wherein the one or more grooves of the helical threaded portion are each connected to a corresponding retaining element of the one or more retaining elements and extend around the drive screw, from the corresponding retaining element to a distal end of the drive screw, and wherein each tooth of the one or more teeth is configured to interface with a corresponding retaining element.
Example 3. The delivery apparatus of any example herein, particularly example 2, wherein each tooth is configured to mate with and travel along the corresponding groove, as the knob is rotated about the central longitudinal axis, wherein the drive screw is configured to move linearly, in an axial direction relative to the knob, as the knob rotates and the tooth travels along the corresponding groove, wherein the knob is fixed from translating in the axial direction, wherein the axial direction is relative to the central longitudinal axis, wherein the knob includes a collar extending distally from the distal end of the knob into an interior of a housing of the handle portion, the collar including one or more collar grooves extending around a circumference of the collar, each collar groove mating with a corresponding annular protrusion extending radially from an inner surface of the housing of the handle portion, and wherein the knob is fixed from translating in the axial direction and is configured to rotate about the central longitudinal axis, relative to the housing of the handle portion, via a mating connection between each collar groove and the corresponding annular protrusion.
Example 4. The delivery apparatus of any example herein, particularly any one of examples 2 and 3, wherein the drive screw is linearly movable between a starting, locked configuration where each tooth is coupled to the corresponding retaining element and an entirety of the helical threaded portion of the drive screw is arranged within an interior of the knob and the handle portion and a released configuration where each tooth is mated with a distal portion of the corresponding groove, the distal portion arranged closer to the distal end than the proximal end of the drive screw, and a majority of the helical threaded portion of the drive screw extends outward of the proximal end of the knob, in the axial direction.
Example 5. The delivery apparatus of any example herein, particularly example 4, wherein each retaining element includes a protruding member, a first linear thread portion arranged on a first side of the protruding member, and a second linear thread portion arranged on a second side of the protruding member, the second linear thread portion connected to and continuous with a corresponding groove of the one or more grooves of the drive screw.
Example 6. The delivery apparatus of any example herein, particularly example 5, wherein in the starting, locked configuration, each tooth is arranged within the first linear thread portion of the corresponding retaining element.
Example 7. The delivery apparatus of any example herein, particularly any one of examples 2-6, further comprising a rod including a distal end fixedly coupled to an internal surface of the handle portion and wherein the drive screw includes an extension portion extending axially outward from the distal end of the drive screw, the extension portion including an internal bore mounted around the rod and configured to slide linearly along the rod.
Example 8. The delivery apparatus of any example herein, particularly example 7, wherein a proximal end of the rod includes a stop element that is wider than a largest width of the internal bore of the drive screw and wherein the stop element is arranged within an open cavity of an interior of the drive screw, the open cavity arranged between the proximal end and the distal end of the drive screw.
Example 9. The delivery apparatus of any example herein, particularly any one of examples 7 and 8, wherein the extension portion further includes a central bore centered along the central longitudinal axis, where the internal bore is radially offset from the central bore, and wherein the central bore is configured to receive an inner shaft of the delivery apparatus therethrough.
Example 10. The delivery apparatus of any example herein, particularly any one of examples 1-9, wherein the component of the delivery apparatus which the release mechanism is configured to adjust the linear position of includes one or more release members removably coupled to the implantable medical device.
Example 11. The delivery apparatus of any example herein, particularly example 10, further comprising an inner shaft including a proximal end fixedly coupled to a cap of the release mechanism, the cap coupled to the proximal end of the drive screw, wherein the inner shaft extends to a distal end of the delivery apparatus, and wherein the one or more release members are fixedly coupled to a distal end portion of the inner shaft.
Example 12. The delivery apparatus of any example herein, particularly any one of examples 1-11, wherein threads formed by the one or more grooves of the helical threaded portion are double start threads formed by two grooves and wherein the drive screw has two retaining elements, each groove extending from a different one of the two retaining elements, and wherein the knob includes two teeth, each configured to mate with and slide along a different one of the two grooves.
Example 13. The delivery apparatus of any example herein, particularly example 12, wherein the two teeth are spaced apart from one another around a circumference of the proximal end of the knob.
Example 14. The delivery apparatus of any example herein, particularly any one of examples 1-13, wherein the handle portion further comprises a steering mechanism including a steering knob configured to rotate relative to a housing of the handle portion and adjust a curvature of one or more shafts of the delivery apparatus, at a distal end portion of the delivery apparatus.
Example 15. The delivery apparatus of any example herein, particularly example 14, wherein the steering knob is coupled to a distal end of the housing of the handle portion and the knob of the release mechanism is coupled to a proximal end of the housing of the handle portion.
Example 16. The delivery apparatus of any example herein, particularly any one of examples 1-15, wherein the implantable medical device is a prosthetic heart valve configured to radially self-expand to a functional size of the prosthetic heart valve.
Example 17. The delivery apparatus of any example herein, particularly any one of examples 1-16, wherein the portion of the total distance between the proximal end and the distal end is less than 1/10 the total distance.
Example 18. A method for implanting an implantable medical device with a delivery apparatus, comprising: advancing a distal end portion of a delivery apparatus to a target implantation site using a handle portion of the delivery apparatus, the implantable medical device arranged in a radially compressed configuration on the distal end portion; and after reaching the target implantation site, uncovering the radially compressed implantable medical device and releasing the implantable medical device from the delivery apparatus, the releasing including: from a starting position, rotating a knob of a release mechanism of the handle portion of the delivery apparatus and moving one or more teeth of the knob along one or more corresponding grooves of a drive screw of the release mechanism to linearly translate the drive screw in a proximal direction, along an axis that is parallel to a central longitudinal axis of the delivery apparatus, until the drive screw reaches a released position; while and as a result of the drive screw translating in the proximal direction, linearly translating an inner shaft fixedly coupled with the drive screw and one or more release members fixedly coupled to a distal end portion of the inner shaft to release the implantable medical device from the delivery apparatus; and actuating a steering mechanism of the delivery apparatus to unflex a distal end portion of the delivery apparatus and passively retracting the drive screw in a distal direction, partially into the knob to automatically release tension during the unflexing, the distal direction opposite to the proximal direction.
Example 19. The method of any example herein, particularly example 18, wherein the rotating from the starting position includes initially rotating the knob to release each tooth of the one or more teeth of the knob from a corresponding retaining element arranged at a proximal end of the drive screw and connected to a corresponding groove of the one or more grooves and then continuing to rotate the knob to move the one or more teeth along the one or more grooves of the drive screw and linearly translate the drive screw in the proximal direction.
Example 20. The method of any example herein, particularly example 19, wherein in the starting position each tooth is arranged within a first linear thread portion of the corresponding retaining element and retained within the first linear thread portion via a protruding member of the retaining element which protrudes radially outward relative to the first liner thread portion and wherein the retaining element includes a second linear thread portion arranged on an opposite side of the protruding member from the first linear thread portion and directly connected to the corresponding groove.
Example 21. The method of any example herein, particularly any one of examples 19 and 20, further comprising, during the advancing the distal end portion to the target implantation site, adjusting a steering mechanism of the delivery apparatus to flex and articulate the distal end portion of the delivery apparatus around one or more curves of a lumen of a patient's body, en route to the target implantation site, and during the adjusting the steering mechanism, maintaining the one or more teeth of the knob within the corresponding retaining element of the drive screw.
Example 22. The method of any example herein, particularly any one of examples 18-21, wherein in the starting position, the release members are coupled to the implantable medical device.
Example 23. The method of any example herein, particularly any one of examples 18-22, wherein the one or more grooves of the drive screw include two helical grooves that curve around an outer surface of a main body of the drive screw, from a proximal end to a distal end of the main body, wherein the drive screw has a double start thread formed by the two grooves, and wherein the one or more teeth of the knob includes two teeth spaced apart from one another around a circumference of a proximal end of the knob.
Example 24. The method of any example herein, particularly example 23, wherein a lead of the double start thread is at least one inch.
Example 25. The method of any example herein, particularly any one of examples 18-24, wherein each tooth of the one or more teeth of the knob is arranged at a proximal end of the knob and extends only a portion of a total length of an inner surface of the knob, the length extending in an axial direction, the axial direction parallel to the central longitudinal axis, from the proximal end to a distal end of the knob, wherein the portion is less than ¼ the total length, and wherein each of the one or more grooves curves around an outer surface of a main body of the drive screw, from a proximal end to a distal end of the main body, the main body longer than the inner surface of the knob.
Example 26. The method of any example herein, particularly any one of examples 18-25, wherein in the released position, each tooth of the one or more teeth of the knob is engaged with a corresponding groove of the one or more grooves of the drive screw, at a distal end portion of a main body of the drive screw, the one or more grooves arranged in the main body.
Example 27. The method of any example herein, particularly any one of examples 18-26, wherein linearly translating the drive screw in the proximal direction includes sliding an inner bore arranged in an extension portion of the drive screw that extends outward, in the distal direction, from a distal end of a main body of the drive screw, the main body including the one or more helical grooves therein, along a rod coupled to an interior of the handle portion at a distal end of the rod, and wherein in the released position, a stop element arranged at a proximal end of the rod is arranged proximate to an internal surface of the distal end of the main body of the drive screw, the internal surface arranged normal to the rod.
Example 28. The method of any example herein, particularly any one of examples 18-27, wherein in the released position, the release members are arranged away from and uncoupled from the implantable medical device.
Example 29. The method of any example herein, particularly any one of examples 18-28, wherein linearly translating the drive screw until the drive screw reaches the released position includes translating the inner shaft and the one or more release members until a spool coupled to the distal end portion of the inner shaft reaches a spool stop of the delivery apparatus that is axially fixed relative to the inner shaft.
Example 30. The method of any example herein, particularly any one of examples 18-29, wherein the passively retracting the drive screw includes, in response to a force pulling the inner shaft in the distal direction during the unflexing, retracting the drive screw in the distal direction, back into an interior of the knob and moving the one or more teeth of the knob along the one or more corresponding grooves of the drive screw, from a distal end, toward a proximal end of the one or more corresponding grooves.
Example 31. The method of any example herein, particularly any one of examples 18-30, further comprising, during the advancing the distal end portion to the target implantation site, adjusting the steering mechanism of the delivery apparatus to flex and articulate the distal end portion of the delivery apparatus around one or more curves of a lumen of a patient's body, en route to the target implantation site.
Example 32. The method of any example herein, particularly example 31, wherein the steering mechanism includes a steering knob coupled to a distal end of a housing of the handle portion and wherein the knob of the release mechanism is coupled to a proximal end of the housing of the handle portion.
Example 33. The method of any example herein, particularly any one of examples 18-32, further comprising, after unflexing the distal end portion of the delivery apparatus, removing the delivery apparatus from the implantation site.
Example 34. The method of any example herein, particularly any one of examples 18-33, wherein uncovering the radially compressed implantable medical device includes retracting a capsule coupled to an outer shaft of the delivery apparatus away from the radially compressed implantable medical device, in response to actuation of one or more buttons on the handle portion.
Example 35. The method of any example herein, particularly any one of examples 18-34, wherein the implantable medical device is a self-expanding prosthetic heart valve.
Example 36. A method for operating a release mechanism of a handle portion of a delivery apparatus configured to deliver an implantable medical device to a target implantation site, comprising: from a starting, locked position of the release mechanism, moving one or more teeth of a knob of the release mechanism along one or more corresponding grooves of a drive screw of the release mechanism to linearly translate the drive screw in a proximal direction, along an axis that is parallel to a central longitudinal axis of the delivery apparatus, until the drive screw reaches a released position, in response to rotation of the knob, wherein in the starting, locked position a main body of the drive screw including the one or more grooves is arranged within an interior of the knob and in the released position, a majority of the main body extends outside of the knob; while the drive screw is translating in the proximal direction, linearly translating an inner shaft fixedly coupled with the drive screw and one or more release members fixedly coupled to a distal end portion of the inner shaft to release the implantable medical device mounted on the distal end portion of the delivery apparatus from the delivery apparatus; and unflexing the distal end portion of the delivery apparatus in response to actuation of a steering mechanism of the delivery apparatus and, during the unflexing, passively retracting the drive screw in a distal direction, partially into the knob to automatically release tension in the distal end portion of the delivery apparatus and enable the unflexing, the distal direction opposite the proximal direction.
Example 37. The method of any example herein, particularly example 36, wherein the moving the one or more teeth of the knob from the starting locked position includes initially moving each tooth of the one or more teeth from a first linear thread portion of a corresponding retaining element of one or more retaining elements arranged at a proximal end of the main body of the drive screw, over a protruding member of the corresponding retaining element and to a second linear thread portion arranged on an opposite side of the protruding member from the first linear thread portion and connected to a proximal end of a corresponding groove of the one or more grooves, in order to release each tooth of the one or more teeth from the corresponding retaining element, and then continuing to move each tooth along the corresponding groove and linearly translate the drive screw in the proximal direction, in response to rotation of the knob.
Example 38. The method of any example herein, particularly any one of examples 36-37, wherein in the starting, locked position, the release members are coupled to the implantable medical device.
Example 39. The method of any example herein, particularly any one of examples 36-38, wherein the one or more grooves of the drive screw include two helical grooves that curve around an outer surface of the main body of the drive screw, from a proximal end to a distal end of the main body, wherein the drive screw has a double start thread formed by the two grooves, and wherein the one or more teeth of the knob includes two teeth spaced apart from one another around a circumference of a proximal end of the knob.
Example 40. The method of any example herein, particularly example 39, wherein a lead of the double start thread is at least one inch.
Example 41. The method of any example herein, particularly any one of examples 36-40, wherein each of the one or more teeth of the knob are arranged at a proximal end of the knob and extend only a portion of a total length of an inner surface of the knob, the length extending in an axial direction that is parallel to the central longitudinal axis, from the proximal end to a distal end of the knob, wherein the portion is less than ¼ the total length, and wherein each of the one or more grooves curves around an outer surface of the main body of the drive screw, from a proximal end to a distal end of the main body, the main body longer than the inner surface of the knob.
Example 42. The method of any example herein, particularly any one of examples 36-41, wherein in the released position, each tooth of the one or more teeth of the knob is engaged with a corresponding groove of the one or more grooves of the drive screw, at a distal end portion of the main body of the drive screw.
Example 43. The method of any example herein, particularly any one of examples 36-42, wherein linearly translating the drive screw in the proximal direction includes sliding an inner bore arranged in an extension portion of the drive screw that extends outward, in the distal direction, from a distal end of the main body of the drive screw, along a rod coupled to an interior of the handle portion at a distal end of the rod, and wherein in the released position, a stop element arranged at a proximal end of the rod is arranged proximate to an internal surface of the distal end of the main body of the drive screw, the internal surface arranged normal to the rod.
Example 44. The method of any example herein, particularly any one of examples 36-43, wherein in the released position, the release members are arranged away from and uncoupled from the implantable medical device.
Example 45. The method of any example herein, particularly any one of examples 36-44, wherein linearly translating the drive screw until the drive screw reaches the released position includes translating the inner shaft and the one or more release members until a spool coupled to the distal end portion of the inner shaft reaches a spool stop of the delivery apparatus that is axially fixed relative to the inner shaft.
Example 46. The method of any example herein, particularly any one of examples 36-45, wherein the passively retracting the drive screw includes, in response to a force pulling the inner shaft in the distal direction during the unflexing, retracting the drive screw in the distal direction, back into an interior of the knob and moving the one or more teeth of the knob along the one or more corresponding grooves of the drive screw, from a distal end, toward a proximal end of the one or more corresponding grooves.
Example 47. The method of any example herein, particularly any one of examples 36-46, wherein the steering mechanism includes a steering knob coupled to a distal end of a housing of the handle portion and wherein the knob of the release mechanism is coupled to a proximal end of the housing of the handle portion.
Example 48. The method of any example herein, particularly any one of examples 36-47, wherein the implantable medical device is a self-expanding prosthetic heart valve.
Example 49. A delivery apparatus for an expandable, implantable medical device, the delivery apparatus comprising: an inner shaft; one or more release members, each including a proximal end coupled to an outer surface of a distal end portion of the inner shaft and a distal end configured to be releasably coupled to the implantable medical device arranged around the distal end portion of the inner shaft, distal to where the proximal end couples to the inner shaft; and a handle portion, including: a steering mechanism configured to adjust a curvature of and flex one or more shafts of the delivery apparatus, including the inner shaft, at a distal end portion of the delivery apparatus; and a release mechanism configured to adjust a linear position of the inner shaft and the one or more release members, along a central longitudinal axis of the delivery apparatus, relative to an outer housing of the handle portion, the release mechanism comprising: a threaded drive screw coupled to a proximal end of the inner shaft and including a helical threaded portion arranged in a main body of the drive screw, where one or more grooves forming the helical threaded portion extend from a proximal end to a distal end of the main body of the drive screw; and a rotatable release knob coupled to the housing of the handle portion and surrounding and coaxial with the drive screw, the release knob including one or more teeth arranged at a proximal end of the knob and configured to interface with the one or more grooves of the drive screw, wherein the drive screw is adapted to move linearly, along the central longitudinal axis, relative to the release knob, in response to rotation of the release knob and sliding of the one or more teeth along the one or more grooves, and wherein actuating the steering mechanism to unflex the one or more shafts of the delivery apparatus allows the drive screw to move distally, along the central longitudinal axis, to release tension created in the distal end portion of the delivery apparatus.
Example 50. The delivery apparatus of any example herein, particularly example 49, where each tooth of the one or more teeth of the release knob is less than a full thread and curves less than 45 degrees around a circumference of the proximal end of the release knob.
Example 51. The delivery apparatus of any example herein, particularly any one of examples 49-50, wherein the main body of the drive screw further includes one or more retaining elements arranged at the proximal end of the main body, where each groove of the one or more grooves of the helical threaded portion is connected to a corresponding retaining element of the one or more retaining elements and curves around an outer surface of the main body and extends from the retaining element to the distal end of the main body.
Example 52. The delivery apparatus of any example herein, particularly example 51, wherein the drive screw is linearly movable between a starting, locked configuration where each tooth of the one or more teeth is coupled to a corresponding retaining element of the one or more retaining elements and an entirety of the helical threaded portion of the drive screw is arranged within an interior of the release knob and the handle portion and a released configuration where each tooth is mated with a distal portion of the corresponding groove, the distal portion arranged closer to the distal end than the proximal end of the main body, and a majority of the helical threaded portion of the drive screw extends outward of the proximal end of the release knob, in the axial direction.
Example 53. The delivery apparatus of any example herein, particularly example 52, wherein each retaining element includes a protruding member, a first linear thread portion arranged on a first side of the protruding member, and a second linear thread portion arranged on a second side of the protruding member, the second linear thread portion connected to and continuous with a corresponding groove of the one or more grooves of the drive screw.
Example 54. The delivery apparatus of any example herein, particularly example 53, wherein in the starting, locked configuration, each tooth is arranged within the first linear thread portion of the corresponding retaining element.
Example 55. The delivery apparatus of any example herein, particularly any one of examples 49-54, wherein the drive screw includes an extension portion extending axially outward from the distal end of the main body, the extension portion including a central bore centered along the central longitudinal axis and two side bores that are radially offset from the central bore, on either side of the central bore.
Example 56. The delivery apparatus of any example herein, particularly example 55, wherein the inner shaft extends through the central bore.
Example 57. The delivery apparatus of any example herein, particularly any one of examples 55 and 56, further comprising two rods, each including a distal end fixedly coupled to an internal connecting element of the handle portion and a proximal end including a stop element having a dimension that is wider than a diameter of the rod, wherein each rod extends through a corresponding one of the two side bores of the drive screw and the stop element is arranged within an open cavity within an interior of the main body of the drive screw, the open cavity arranged between the proximal end and the distal end of the main body, and wherein the drive screw is configured to move linearly along the two rods.
Example 58. The delivery apparatus of any example herein, particularly example 57, wherein the stop element is wider than a largest width of the side bore of the drive screw and wherein the open cavity is formed by an internal wall of the main body and an internal surface arranged between the extension portion and the distal end of the main body, the internal surface arranged normal to the central longitudinal axis.
Example 59. The delivery apparatus of any example herein, particularly any one of examples 49-58, wherein threads formed by the one or more grooves of the helical threaded portion are double start threads formed by two grooves and wherein the release knob includes two teeth, each configured to mate with and slide along a different one of the two grooves.
Example 60. The delivery apparatus of any example herein, particularly example 59, wherein the two teeth are spaced apart from one another around a circumference of the proximal end of the release knob.
Example 61. The delivery apparatus of any example herein, particularly any one of examples 59 and 60, wherein the threads of the drive screw have a lead of at least 1 inch and a pitch of at least 0.5 inches.
Example 62. The delivery apparatus of any example herein, particularly any one of examples 59 and 60, wherein the threads of the drive screw have a lead in a range of 1 to 1.75 inches.
Example 63. The delivery apparatus of any example herein, particularly any one of examples 49-62, wherein the steering mechanism includes a steering knob configured to rotate relative to a housing of the handle portion and wherein the steering knob is coupled to a distal end of the housing of the handle portion and the release knob of the release mechanism is coupled to a proximal end of the housing of the handle portion.
Example 64. The delivery apparatus of any example herein, particularly any one of examples 49-63, wherein each tooth of the one or more teeth of the release knob extends from the proximal end of the release knob, toward a distal end of the release knob, only a portion of a total distance between the proximal end and the distal end, wherein the portion is less than 1/10 the total distance.
Example 65. The delivery apparatus of any example herein, particularly any one of examples 49-64, further comprising an outer shaft including a proximal end portion coupled to the handle portion and a distal end portion and further comprising a capsule coupled to the distal end portion of the outer shaft, wherein the inner shaft is concentric with an arranged interior to the outer shaft, and wherein the capsule is configured to house the implantable medical device in a radially compressed state on the distal end portion of the inner shaft.
Example 66. The delivery apparatus of any example herein, particularly any one of examples 49-65, wherein the implantable medical device is a prosthetic heart valve configured to radially self-expand to a functional size of the prosthetic heart valve.
Example 67. The delivery apparatus of any example herein, particularly any one of examples 49-66, wherein the release knob includes a main body arranged outside of the housing of the handle portion and a collar extending distally from a distal end of the main body of the release knob, into an interior of the housing of the handle portion, the collar including one or more collar grooves extending around a circumference of the collar, each collar groove mating with a corresponding annular protrusion extending radially from an inner surface of the housing of the handle portion, wherein the release knob is fixed from translating in the axial direction and is configured to rotate about the central longitudinal axis, relative to the housing of the handle portion, via a mating connection between each collar groove and the corresponding annular protrusion.
In view of the many possible embodiments to which the principles of the disclosed technology may be applied, it should be recognized that the illustrated embodiments are only preferred examples of the disclosed technology and should not be taken as limiting the scope of the claimed subject matter. Rather, the scope of the claimed subject matter is defined by the following claims and their equivalents.
This application is a continuation of PCT patent application number PCT/US2021/036717, filed on Jun. 10, 2021, which application claims the benefit of U.S. Provisional Patent Application No. 63/037,501, filed on Jun. 10, 2020, each of which application being incorporated herein by reference in its entirety.
Number | Date | Country | |
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63037501 | Jun 2020 | US |
Number | Date | Country | |
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Parent | PCT/US2021/036717 | Jun 2021 | US |
Child | 18063910 | US |