The present invention relates to a method for fabricating a medical electrode device for implantation into a patient and to a medical electrode device.
A medical electrode device of this kind may, for example, serve for a neuro-stimulation and for this may be implanted into a patient, for example, in the region of the spinal cord, for example, into the epidural space near the spinal cord of the spinal column of a patient. In this way a nerve stimulation at the spinal cord may be achieved by injecting electrical stimulation currents.
An electrode device of the kind concerned herein however may also be used for emitting stimulation signals or receiving sense signals at other locations within a patient, for example within the brain or in cardiac applications.
An electrode device, for example, comprises a lead body extending along a longitudinal axis and having a proximal end and a distal end. An electrode end is arranged at the distal end of the lead body and comprises a carrier element and an arrangement of contact elements arranged on the carrier element for contacting tissue. In an implanted state, the lead body with its proximal end is connected to a generator for generating stimulation signals. The electrode end is implanted in a patient, for example in the epidural space of the spinal column, such that the contact elements of the electrode end are in contact with surrounding tissue and may be used to inject stimulation signals into the tissue in order to provide for a stimulation action in the vicinity, e.g., of the spinal cord.
The medical electrode device, for example, has the shape of a so-called paddle electrode, the electrode end having a paddle-like shape carrying, e.g., an arrangement of multiple evenly or unevenly distributed contact elements on its surface for emission of electrical signals into and/or reception of electrical signals from surrounding tissue.
Conventionally, two kinds of electrode devices for a spinal neuro-stimulation exist. Within isodiametric electrodes, contact elements are arranged on a distal portion of the electrode device, the portion of the isodiametric electrode carrying the contact elements having the same diameter as other portions of the electrode device. This allows to percutaneously implant the electrode device using an access to the epidural space in the region of the lumbar spine. For implantation, the electrode device is inserted through vertebral bodies of the spine, and the electrode device is moved in the epidural space towards a region of interest at which a therapy shall be performed. In contrast, a paddle electrode is typically implanted in a patient by surgically placing the electrode end of the electrode device at the location of interest.
U.S. Pat. No. 6,052,608 discloses an electrode device used in particular for sensing cortical electrical activity. The electrode device herein comprises an arrangement of contact elements having a semi-spherical shape, the contact elements being surrounded by an electrically insulating material of a carrier element.
Different designs of paddle electrodes are known, for example, from U.S. Pat. No. 6,895,283, U.S. Publication No. 2008/0046050 A1, U.S. Publication No. 2014/0172057 A1 and U.S. Pat. No. 9,561,363.
For a medical electrode device such as a paddle electrode, contact elements are typically formed and placed on a carrier element of an electrode end such that the contact elements are embedded within the material of the electrode end. Supply lines herein are connected to the contact elements in order to provide for an electrical connection of the contact elements, wherein the supply lines typically are connected to the contact elements by forming soldiering connections. Establishing such connections may be cumbersome and hence adds to the cost for fabricating the electrode device.
U.S. Publication No. 2004/0260310 A1 discloses a medical lead for electrical stimulation or sensing. The lead comprises a generally flat paddle on the distal end of the lead body. An electrode array is provided on the paddle. In an embodiment, herein, a supply line is connected to a contact element using an additional crimp element, the crimp element being connected to the contact element by welding.
The present disclosure is directed toward overcoming one or more of the above-mentioned problems, though not necessarily limited to embodiments that do.
It is an object of the instant invention to provide a method for fabricating a medical electrode device and a medical electrode device which allow for an easy and cost-efficient production of the electrode device.
At least this object is achieved by means of a method for fabricating a medical electrode device comprising the features of claim 1.
Accordingly, a method for fabricating a medical electrode device for implantation into a patient comprises: providing a sleeve element having an inner lumen: inserting an electrical supply line into the lumen of the sleeve element; and deforming said sleeve element to obtain a contact element for the medical electrode device, a portion of the sleeve element forming a contact face of the contact element for electrically contacting tissue, wherein as a result of deforming the sleeve element a crimp connection between the contact element and the electrical supply line is established.
According to the method, a sleeve element is provided for forming the contact element. The sleeve element, in a non-deformed, original state may, for example, have a cylindrical shape, the lumen longitudinally extending through the sleeve element such that the electrical supply line may be inserted into the lumen for establishing a connection in between the supply line and the sleeve element. For forming the contact element, the sleeve element is plastically deformed, wherein by the deforming a crimp connection in between the contact element and the electrical supply line is established. The contact element herein is formed by the sleeve element itself, a portion of the sleeve element forming a contact face of the contact element which, in an implanted state of the electrode device, serves to contact tissue.
Because the contact element is formed from the sleeve element and because, when forming the contact element, the supply line is immediately connected to the contact element, an easy and cost-efficient fabrication of contact elements and hence of an electrode device can be achieved.
In particular, no additional elements or steps for establishing a connection in between the supply line and the contact element are required. When forming the contact element from the sleeve element, the supply line is immediately connected to the contact element such that the forming of the contact element and the connection of the supply line can be achieved simultaneously in a single step during fabrication.
As no additional soldiering step four connecting the supply line to the contact element is necessary, the fabrication may be eased. In addition, because generally an electrical insulation of the supply line does not have to be removed from the supply line for establishing an electrical connection during the crimping, also a step for removing an insulating cover may no longer be required.
In one embodiment, the sleeve element, prior to the deforming, comprises a cylindrical shape, the lumen extending through the sleeve element. The sleeve element hence may comprise the shape of a tube section, wherein the sleeve element is formed from an electrically conductive material, in particular a metal material, such as a platinum iridium material.
In one embodiment, the deforming step includes: compressing the sleeve element such that the lumen is effectively eliminated. For connecting the electrical supply line to the contact element, the supply line is introduced into the lumen of the sleeve element. By compressing the sleeve element, then, the crimp connection in between the supply line and the contact element is established, wherein by deforming the sleeve element also the contact element may be brought into a desired shape.
In one embodiment, as a result of the deforming, the contact face comprises a convex curvature. Generally, the deforming of the sleeve element may take place in a single step or in multiple steps.
For example, in a first step the sleeve element may be compressed such that a generally flat element is formed from the sleeve element. In a second step, then, the contact element may be formed from the generally flat element, for example by employing a deep-drawing technique or the like, to obtain a three-dimensionally curved contact element.
In another embodiment, the contact element is formed from the sleeve element in a single deformation step, wherein during the deforming the sleeve element is compressed to establish a crimp connection with the electrical supply line and to at the same time form the contact element to assume a desired (three-dimensional) shape.
A convex curvature at the contact face of the contact element may in particular be beneficial for neuro-stimulation applications, a convex curvature allowing for a reliable, efficient contacting of tissue surrounding the electrode device in an implanted state.
In one embodiment, the deforming includes: forming at least one claw portion of the contact element for engaging with a carrier element of the electrode device. By means of such a claw portion the fastening of the contact element on material of the carrier element of the electrode device may be improved in that the claw portion engages with the material of the carrier element and in this way forms a positive-locking or force-locking connection of the contact element to the carrier element.
Claw portions may, for example, be formed at corners of the contact element, wherein, for example, four claw portions may be provided at the four corners of a generally rectangular contact element.
In one embodiment, the step of deforming includes: forming at least one depression groove on the contact element for interacting with the electrical supply line. For establishing the connection of the electrical supply line to the contact element the supply line is introduced into the lumen of the sleeve element prior to deforming the sleeve element. The lumen herein extends longitudinally through the sleeve element, wherein the lumen substantially is eliminated by deforming the sleeve element. In order to improve the axial fixation of the supply line within the contact element, herein, a depression groove may be formed on the contact element, the depression groove, for example, extending transversely to the longitudinal direction and hence transversely to the supply line received in the contact element. By means of the depression groove, hence, an axial fixation may be established, wherein by means of the depression groove in addition the electrical contacting of the supply line may be reliably established.
In one embodiment, the step of inserting the supply line into the sleeve element includes: inserting the electrical supply line into the lumen of the sleeve element with a portion carrying an electrically insulating cover, wherein as a result of the deforming an electrical connection between the contact element and the electrical supply line is established. When forming a crimp connection with the supply line when deforming the sleeve element, the material of the sleeve element cuts through the electrically insulating cover of the supply line, such that an electrically conductive core of the supply line is electrically contacted and hence an electrical connection in between the contact element and the supply line is established. As no further measures are required for removing the electrically insulating cover from the supply line, the fabrication becomes easy in particular in terms of connecting the supply line to the contact element.
In one embodiment, the contact element is placed on a carrier element of the medical electrode device after the sleeve element is deformed and hence the contact element is formed. The contact element hence is placed on and fastened to the carrier element after forming the contact element from the sleeve element. When placing the contact element on the carrier element, the contact element, for example, may be embedded in the material of the carrier element, for example by pressing the contact element into the material of the carrier element.
To embed the contact element in the material of the carrier element, herein, the contact element may, for example, be heated, for example to a temperature above 150° C., for example above 180° C., for example at 190° C., wherein upon heating the contact element the contact element is placed on the carrier element and is pressed into the carrier element in order to embed the contact element in the material of the carrier element.
In one embodiment, after placing the contact element on the carrier element the contact face of the contact element is flush with a face of the carrier element. On the face of the carrier element, herein, a multiplicity of contact elements may be arranged, such that an arrangement of evenly or unevenly spaced contact elements is provided on the face of the carrier element. Via the face of the carrier element, hence, the medical electrode device may be brought into electrical contact with tissue in an implanted state of the electrode device.
In another embodiment, the sleeve element may be placed on a carrier element of the medical electrode device prior to deforming the sleeve element. Herein, as a result of deforming the sleeve element, the contact element is fastened to the carrier element. Hence, according to this embodiment the sleeve element prior to deforming is placed on the carrier element, and the sleeve element is deformed on the carrier element in order to form the contact element.
In one embodiment, for placing the sleeve element on the carrier element, the sleeve element may be heated, for example to a temperature above 150° C., beneficially above 180° C., for example at 190° C., in order to allow for an embedding of the sleeve element in the material of the carrier element.
In another embodiment, the carrier element may comprise a reception opening, wherein the sleeve element is placed in the reception opening of the carrier element and is deformed within the reception opening in order to form the contact element on the carrier element. After deforming the sleeve element, the contact element substantially fills the reception opening and is fastened to the carrier element in the reception opening.
In one embodiment, the carrier element may form a protruding portion which reaches into the reception opening and which engages with the lumen of the sleeve element when placing the sleeve element in the reception opening. When deforming the sleeve element, herein, the protruding portion is compressed with the sleeve element and hence improves the mechanical connection of the contact element to the carrier element.
In one embodiment, the contact face of the contact element is flush with a face of the carrier element after deforming the sleeve element on the carrier element. Again, on the face of the carrier element a multiplicity of contact elements may be arranged for electrically contacting with tissue in an implanted state of the electrode device.
The carrier element may, for example, be made from an electrically insulating material, for example a thermoplastic material, such as a polyurethane material. The carrier element, in one embodiment, may, for example, have the shape of a polyurethane foil having a thickness in between 0.1 mm and 1 mm, for example 0.2 mm. The carrier element may have, in a lateral plane of extension, a width between 4 mm to 10 mm, for example 5 mm, and a length in between 50 mm and 80 mm, for example 60 mm.
The sleeve element, prior to the deforming, may, for example, have a diameter between 1 mm and 2 mm, for example 1.15 mm, and a length in between 2 mm and 5 mm, for example between 3 mm and 4 mm. The sleeve element may have a wall thickness of 0.1 mm and may have a cylindrical tube shape forming the inner lumen to receive the supply line therein.
The supply line may, for example, be formed by an electrically conductive wire, such as a DFT wire.
In another aspect, a medical electrode device for implantation into a patient comprises: a lead body extending longitudinally along a longitudinal axis: and a flattened electrode end arranged at a distal end of the electrode body and comprising a carrier element and a multiplicity of contact elements arranged on the carrier element, wherein at least one of the contact elements is formed by crimping from a sleeve element, an electrical supply line being inserted into the sleeve element and being connected to the contact element by a crimp connection formed by the sleeve element, wherein a portion of the sleeve element forms a contact face of the contact element for electrically contacting tissue.
The medical electrode device beneficially is fabricated using a method as described above.
The advantages and advantageous embodiments described above for the method equally apply also to the medical electrode device.
The contact element hence is formed from a sleeve element, wherein after deforming the sleeve element portions of the sleeve element establish a crimp connection in between the contact element and the electrical supply line. The supply line hence is received in between portions of the contact element, wherein by forming the crimp connection at the same time an electrical connection in between the supply line and the contact element is established.
Additional features, aspects, objects, advantages, and possible applications of the present disclosure will become apparent from a study of the exemplary embodiments and examples described below, in combination with the Figures and the appended claims.
The various features and advantages of the present invention may be more readily understood with reference to the following detailed description and the embodiments shown in the drawings. Herein,
An electrode device 1, as shown in an embodiment in
The electrode device 1 at a proximal end 100 of the lead body 10 is connected to a connector block 20 of a stimulation device 2, via which stimulation currents can be delivered to the electrode device 1 and output via the electrode arrangement arranged on the electrode end 11 to stimulate the spinal cord R in the region of the spinal column W.
As can be seen from the sectional view of
While the lead body 10, for example, comprises a circular (isodiametric) cross-section, the electrode device 1 is flattened in the area of the electrode end 11 which, as can be seen in
As further illustrated in
As shown in
In an electrode device 1 as shown in
For fabricating the electrode device 1, it is required to connect the supply lines 13 to the contact elements 12, wherein, for example, an individual supply line 13 is connected to each contact element 12, as illustrated in
There is a general desire to allow for an easy and cost-efficient fabrication of the electrode device 1.
Referring now to
In particular, for forming the contact element 12, the supply line 13 is inserted into the lumen 120 of the sleeve element 12′, as shown in
Because the connection of the supply length 13 to the contact element 12 is established by crimping, it is not required to remove an electrically insulating cover of the supply line 13 prior to establishing the connection. Rather, when deforming the sleeve element 12′ for establishing the crimp connection the material of the sleeve element 12′ engages with and cuts through the electrical insulation of the supply line 13 to reliably establish an electrical connection in between the supply line 13 and the contact element 12, in addition to forming a mechanical connection.
The contact element 12 hence is formed by deforming the sleeve element 12′. A portion of the sleeve element 12′ herein forms a contact face 123 of the contact element 12, the contact face 123 being shaped to contact tissue when used on an electrode end 11 of the electrode device 1.
The contact element 12 may be arbitrarily shaped from the sleeve element 12′.
In one embodiment, the contact element 12 may assume a substantially two-dimensional, plate-like shape, as shown in
In another embodiment, the contact element 12 may assume a curved shape, with a contact face 123 having a convex curvature, such that the contact element 12 is three-dimensionally formed to establish a beneficial contact to surrounding tissue in an implanted state of the electrode device 1.
The sleeve element 12′ may be formed in a single step to obtain a curved contact element 12 as shown in
In another embodiment, the sleeve element 12′ may in a first step be compressed to establish a crimp connection with the supply line 13 by forming a flat, plate-like element, as shown in
In the embodiment of
In another embodiment shown in
Referring now to
In particular, the contact element 12 may in this way be formed on the carrier element 14 such that the contact face 123 of the contact element 12 serving to contact tissue in an implanted state of the electrode device 1 is flush which a corresponding face 142 of the carrier element 14.
Referring now to
In the embodiments of
The contact element 12 may be placed on the carrier element 14 by deforming the sleeve element 12′ immediately on the carrier element 14, as in the embodiments of
The idea underlying the present invention is not limited to the embodiments described above, but may be implemented in an entirely different fashion.
An electrode device as described herein may in particular be used for a neuro-stimulation in the region of the spinal column of a patient.
An electrode end herein may comprise an arrangement of regularly or irregularly placed contact elements, for example a number of 4 to 32 contact elements, e.g., 16 contact elements, for injecting stimulation signals into tissue or receiving sense signals from tissue.
It will be apparent to those skilled in the art that numerous modifications and variations of the described examples and embodiments are possible in light of the above teachings of the disclosure. The disclosed examples and embodiments are presented for purposes of illustration only. Other alternate embodiments may include some or all of the features disclosed herein. Therefore, it is the intent to cover all such modifications and alternate embodiments as may come within the true scope of this invention, which is to be given the full breadth thereof. Additionally, the disclosure of a range of values is a disclosure of every numerical value within that range, including the end points.
Number | Date | Country | Kind |
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21186646.2 | Jul 2021 | EP | regional |
This application is the United States National Phase under 35 U.S.C. § 371 of PCT International Patent Application No. PCT/EP2022/065780, filed on Jun. 10, 2022, which claims the benefit of European Patent Application No. 21186646.2, filed on Jul. 20, 2021, the disclosures of which are hereby incorporated by reference herein in their entireties.
Filing Document | Filing Date | Country | Kind |
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PCT/EP2022/065780 | 6/10/2022 | WO |