The present invention relates in general to medical devices and more specifically to medical devices used in the treatment of vascular stenoses at or near a bifurcation lesion.
Stenting is a common medical procedure intended for revascularization of stenotic vessels where a blocked artery is dilated and a stent is placed in the artery to maintain vessel patency following the procedure. A stent is small mesh like tubular device, usually fabricated from metal, that can optionally be coated with a drug or a polymer containing a drug.
While stents are successful in treating a variety of lesions in the vascular system, their success has been limited in the treatment of bifurcation lesions and ostial lesions. Often, when a stent is deployed in a main vessel at a bifurcation, the stent blocks access to the side branch thereby disrupting blood flow patterns and limiting blood flow to the side branch. To address the problem, stents with a side window, a side opening or a side branch support structure are used. Such asymmetrical stent structures require rotational and axial alignment to register the side opening with the side branch ostium.
Of particular interest to the present invention, an additional stent may be placed at or through the side opening into the side branch, usually when the side branch is diseased. Placement of such “side branch stents” often leaves a gap between the main branch and side branch stents. Restenosis often occurs in this gap. Drug eluting stents often fail to inhibit restenosis at bifurcation lesions. This failing is attributed to the lack of metallic stent coverage in the gap between the main vessel stent and the side branch stent.
The gap may be eliminated by delivering the side branch stent with a portion thereof protruding into the main vessel. The protruding portion of the stent will be crushed by expanding a balloon in the main vessel, often during delivery and expansion of the main vessel stent. While effective in some instances, crushing the side branch stent can lead to undesired deformation of the stent as well as dissection of the blood vessel.
For these reasons, it would be desirable to provide improved methods and systems for vascular stenting at bifurcations. In particular, it would be desirable to provide methods and systems which provide a more complete coverage by a stent structure in the region of the ostium between a main blood vessel and a side branch blood vessel. At least some of these objectives will be met by the inventions described hereinafter.
The present invention provides methods and devices for using asymmetrical radiopaque marker configurations for the alignment and positioning of asymmetrical main branch stents and positioning of a side branch stent in a side branch vessel in association with placement of a main branch stent in the main vessel. The term “bifurcation” in this patent includes all types of bifurcation lesions and lesions near bifurcations in the vessels. The phrases “bifurcation ostium area” and “ostial lesion” apply to all types of lesions including those located at aorto-ostial and anastomosis sites.
Methods according to the present invention for deploying a stent structure at a bifurcation between a main vessel and a side branch vessel comprise deploying a first or main branch stent in the main vessel so that a side opening of the stent is positioned at least partially over an ostium of the side branch. The side opening of the stent has at least one fluoroscopic marker adjacent to a periphery of the side opening, typically having at least two fluoroscopic markers, often having four or more fluoroscopic markers surrounding or otherwise attached to the periphery. As the markers are located adjacent to the periphery, they will be asymmetrical with respect to an axis of the stent, allowing a user to fluoroscopically view the marker(s) and rotationally and axially align the stent in the lumen of the main branch vessel with the ostium of the side branch vessel prior to deployment of the first stent.
After deploying the first stent, a second stent is positioned through the side opening of the first stent. The second stent has at least one second fluoroscopic marker located near a proximal end of the stent, typically having at least two fluoroscopic markers and optionally having four or more fluoroscopic markers. The second marker(s) may be formed on or attached to the second stent but will more usually be on a delivery catheter which carries the stent. The fluoroscopic markers on the second stent are aligned with the one or more markers on the first stent prior to deploying the second stent in the side branch vessel. By maintaining the marker alignment, the proximal end of the second stent can be positioned properly relative to the first stent in order to maximize the stent coverage over the region of the side branch vessel proximate the ostium, while minimizing any protrusion of the second stent into the lumen of the main branch vessel.
In a preferred embodiment of the methods of the present invention, the side opening of the first stent will comprise a side structure which opens into the side branch to cover the ostium of the side branch. While in some instances the second or side branch stent may be deployed independently of the first stent itself, for example by using a balloon placed within the side structure, it will be particularly preferred to use self-opening side structures as described, for example, in copending application Ser. Nos. 11/330,382 (Attorney Docket No. 022246-000240US), filed on Jan. 10, 2006; 11/406,139 (Attorney Docket No. 022246-000310US), filed on Apr. 17, 2006; and 11/439,707 (Attorney Docket No. 022246-000410US), filed on May 23, 2006, the full disclosures of which are incorporated herein by reference. In all cases, the at least one fluoroscopic marker of the first stent will be positioned on the side structure so that the marker will usually open through the ostium and into the proximal portion of the side branch lumen after the side structure has been deployed.
In the illustrated embodiments, the first stent is deployed using a balloon catheter for expansion of the stent, where the side structure opens in response to deployment of the first stent. The second stent is then positioned through the side structure using a second balloon catheter. Alternatively, the second stent may be a self-expanding stent which may be positioned by releasing the second stent from constraint at a desired position within the side branch lumen. In either case, before deploying the second stent, the user will axially and rotationally position the second stent within the side branch lumen so that the markers at the proximal end of the second or side branch stent are properly aligned with the previously deployed markers on the first or main branch stent. Usually, the markers will be aligned to overlap each other. Alternatively, the markers may be aligned in any position which has been pre-selected to indicate that the positions of the two stents within the main branch vessel and side branch vessel are proper.
In another aspect of the present invention, a stenting system comprises a main branch stent and a side branch stent. The main branch stent has a side opening for alignment with an ostium of a side branch in a patient's vasculature. One or more first fluoroscopic markers are positioned near a periphery of the side opening to allow for axial and rotational positioning of the main branch stent prior to deployment. The side branch stent has an end which is adapted to be positioned at the side branch opening of the main branch stent. In particular, the end is adapted so that it may be positioned immediately adjacent to the side opening, or more usually within a side structure of the side opening after deployment of the main branch stent. The adapted end of the side branch stent includes one or more second fluoroscopic markers which allow the side branch stent to be aligned with the marker(s) on the main branch stent in order to properly position the two stents relative to each other at a vascular bifurcation. The second markers may be on the second stent but will more usually be on a delivery catheter which carries the second stent.
In the exemplary systems herein, the main branch stent includes a side structure adapted to open laterally from the main branch stent, typically being formed as part of the body of the main branch stent so that it lies flat within or over the body prior to deployment. In those cases, the at least one fluoroscopic marker will be positioned on the side structure so that it will open into the side branch lumen when the side structure is deployed.
In a preferred aspect of the stenting system of the present invention, the side structure opens at least partially in response to radial expansion of the body of the main branch stent. Alternatively, however, the side structure of the main branch stent could open in response to a separate action, such as balloon expansion within the side opening to deploy the structure. In the self-deploying embodiments, the side structure typically comprises at least one wing that opens laterally, more typically comprising two or more wings which are interlinked to open together in response to expansion of the main branch stent. For example, the side structure may include a leverage mechanism that transfers displacement and expansion forces from the main body to open the side structure during radial expansion of the main body stent.
The fluoroscopic markers on the delivery catheter and/or side branch stent are typically positioned at one end of the side branch stent, usually being positioned to align with the at least one marker on the side structure after the side structure is opened.
The current clinical practice of stenting utilizes angiographic images to navigate and deploy stents. Those images are two dimensional and are generated using x-ray radiation. The image can be taken from multiple angles and positions. Radiopaque or fluoroscopic markers have been used to mark ends and other parts of stent delivery systems, angioplasty balloons and guidewires. By using asymmetrical markers and/or asymmetrical configuration of symmetrical markers (i.e. spherical), the present invention enables the alignment of asymmetrical stents using angiography. One example is a stent with a side opening where the side opening in intended to be aligned with the bifurcation or side branch ostium. One or more radiopaque fluoroscopic markers can be attached around the periphery of the side opening or to the struts covering or protruding into the side branch ostium area. Two radio-opaque markers can be attached side by side close the side opening of the stent (rather then the distal or proximal ends of the opening). This will allow the physician to see not only where the side opening is positioned axially, but also the rotational position of the side opening versus the bifurcation ostium. After the first stent is placed, a second stent may be inserted into the side branch, and these markers will help position the second stent. In accordance with the present invention, the second or side branch often will have a marker near a proximal end adapted to or deployed at or in the side opening of the first or main branch stent.
Alternatively a single marker with no symmetry or symmetry in at least one preferred axis and not more than two axes can be used for the same purpose. Projection of this marker to two dimensional image will result in a different shape depending from which side of the marker the x-ray detector is placed. If the position of the x-ray detector is temporarily fixed, the shape projected will give the operator information on the relative position of the marker to the anatomy, typically as the operator rotates the stent, a different image of the marker will show on the screen. For example, a round marker will show rectangular shape when seen from the side.
Referring now to
Of particular interest to the present invention, the stent 10 will include a side opening 16, shown in broken line in
The stent systems of the present invention will also comprise a second or side branch stent 20, as schematically illustrated in
Of particular interest to the present invention, the main branch stent will include one or more first radiopaque fluoroscopic markers 24 which surround the side opening 16 after deployment. As shown in
Referring now to
The first or main branch stent 10 may be delivered to the region of the ostium O when the delivery catheter 30 where the stent is placed on an expandable balloon 32. Delivery will typically be over a guidewire GW. As shown in
An exemplary view of the stenting system of the present invention via fluoroscopy is shown in
When the stent is rotated to the desired position, only two radiopaque markers are visible, indicating that the stent is rotationally aligned with the ostium of the side branch as shown in
Placement of a side branch stent in the side branch is shown in
The second stent catheter normally has two radiopaque markers attached to the catheter at both ends of the stent. Aligning the second stent proximal marker with the side portion markers will result in accurate placement as shown in
While the above is a complete description of the preferred embodiments of the invention, various alternatives, modifications, and equivalents may be used. Therefore, the above description should not be taken as limiting the scope of the invention which is defined by the appended claims.
The present application claims the benefit of provisional application No. 60/869,515 (Attorney Docket No. 022246-000800US) filed on Dec. 11, 2006, the full disclosure of which is incorporated herein by reference.
Number | Date | Country | |
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60869515 | Dec 2006 | US |