BYPASS CATHETER

20210100974 ยท 2021-04-08

    Inventors

    Cpc classification

    International classification

    Abstract

    An innovative medical device that permits rapid, minimally invasive restoration of blood flow across a vascular blockage. A system allowing for lysis or removal of said blockage. Said device creates a temporary bypass using longitudinal structure configured for insertion into the blood vessel and adapted to deliver a side hole to a target area. The side hole defines a distal first segment and a proximal second segment with a lumen to allow blood flow therethrough to the distal end hole. In an alternate embodiment, a slidable outer sheath can cover the side hole to permit reversal of blood flow from the distal end hole to a proximal end hole located outside a patient's body by means of an aspiration controller. Alternate embodiments include an optional anchoring balloon, a macerating stent or wires, perforations for fluid delivery, and an backflow valve.

    Claims

    1-8. (canceled)

    9. An apparatus for bypassing a blocked vessel comprising a catheter body configured for insertion into a blood vessel, the catheter body including a distal opening and a circumferential outer wall with an inner surface circumscribing and defining a lumen, the circumferential outer wall including at least one perforation and a side hole in communication with the lumen such that blood flow is directed through the lumen so as to direct blood flow around a blockage in the vessel and thereby establish a bypass, the at least one perforation positioned between the side hole and the distal opening, the catheter having an outer wall and devoid of a balloon between the side hole and distal opening so outflow of clot dissolving fluid from the at least one perforation is unobstructed along a length of the catheter between the side hole and distal opening.

    10. The apparatus of claim 9, wherein the lumen is configured so blood flow is directed through the side hole, into the lumen, and exclusively out through the distal opening of the catheter body to establish the bypass, the distal opening providing a sole exit opening for the blood entering the lumen through the side hole.

    11. The apparatus of claim 9, wherein the side hole is positioned adjacent to a juncture between a proximal segment of the catheter body and a distal segment of the catheter body, and the catheter body is configured to selectively inhibit blood flow from the distal segment into the proximal segment and to selectively redirect blood flow from the distal opening proximally within the lumen of the catheter.

    12. The apparatus of claim 10, further including a valve located within the catheter body positioned adjacent to the juncture between a proximal segment of the catheter body and a distal segment of the catheter body, the valve being configured to inhibit blood flow proximally through the catheter body to prevent blood flow from the distal segment into the proximal segment.

    13. The apparatus of claim 12, wherein the valve is closable by a user.

    14. The apparatus of claim 9, wherein the lumen in a proximal segment of the catheter body has a smaller diameter than the distal opening in a distal segment of the catheter body.

    15. The apparatus of claim 9, further comprising a pressurized fluid communicating with a proximal hole of the catheter body to prevent back flow of blood which entered the side hole.

    16. The apparatus of claim 14, further comprising a pressurized fluid communicating with a proximal hole of the catheter body to prevent back flow of blood which entered the side hole.

    17. The apparatus of claim 9, further comprising a second lumen for delivering fluid through the at least one perforation into the blockage to dissolve the blockage.

    18. The apparatus of claim 9, further comprising a balloon proximal of the side hole and a third lumen in communication with the balloon.

    19. The apparatus of claim 9, further comprising a slidable support sheath for blocking the side hole to redirect blood flow through the distal opening out a proximal hole of the catheter.

    20. The apparatus of claim 9, wherein blood flows into the lumen through the distal opening.

    21. The apparatus of claim 19, wherein the sheath includes an anchoring balloon.

    22. The apparatus of claim 9, further comprising at least one macerating loop disposed on an outer surface of the catheter body distal of the side hole and proximal to the distal opening.

    23. The apparatus of claim 17, further comprising at least one macerating loop disposed on an outer surface of the catheter body distal of the side hole and proximal to the open distal end.

    24. The apparatus of claim 9, further comprising a second concentric lumen, wherein the at least one perforation communicates with an area between an internal surface of the second concentric lumen and an outer surface of the lumen for blood flow.

    25. An apparatus for bypassing a blocked vessel comprising a catheter body configured for insertion into a blood vessel, the catheter body including a distal opening and a circumferential outer wall with an inner surface circumscribing and defining a lumen, the circumferential outer wall including at least one perforation and a side hole in communication with the lumen so as to direct blood flow around a blockage in the vessel and thereby establish a bypass, the at least one perforation positioned between the side hole and the distal opening, and at least one macerating loop disposed on an outer surface of the catheter body distal of the side hole and proximal to the distal opening.

    26. The apparatus of claim 25, wherein the lumen is configured so blood flow is directed through the side hole, into the lumen, and exclusively out through the distal opening of the catheter body to thereby establish the bypass, wherein the distal opening provides a sole exit opening for the blood entering the lumen through the side hole.

    27. The apparatus of claim 25, wherein the lumen in a proximal segment is smaller than the exit opening in a distal segment.

    28. The apparatus of claim 26, further comprising a slidable support sheath for blocking the side hole to redirect blood flow through the open distal end and out a proximal hole of the catheter.

    29. The apparatus of claim 25, wherein the sheath includes an anchoring balloon.

    30. The apparatus of claim 25 further comprising a balloon proximal of the side hole and a second lumen in communication with a balloon proximal of the side hole.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0014] The invention will be better understood and objects other than those set forth above will become apparent when consideration is given to the following detailed description thereof. Such description makes reference to the annexed drawings wherein:

    [0015] FIG. 1 is a side view of the current invention.

    [0016] FIG. 2 is a side view of the current invention showing the inner segment with dashed lines.

    [0017] FIG. 3 depicts the first segment of the current invention connected to a pressurized fluid column.

    [0018] FIG. 4 is a side view of the current invention with perforations allowing infusion of medication from the proximal end.

    [0019] FIG. 5 depicts an alternative embodiment of the current invention.

    DETAILED DESCRIPTION OF THE INVENTION

    [0020] The present invention combines elements of three prior inventions by Walzman, namely a temporary bypass catheter and balloon, a single lumen support catheter, and the rotating irrigating and aspirating thrombectomy device.

    [0021] The current invention is composed of a catheter with at least one distal end hole, and at least one bypass window proximal to said end hole. The present invention is capable of deploying said catheter across a blockage in a vessel.

    [0022] The temporary balloon element, when present on the bypass catheter, is composed of a catheter with at least one distal end hole, at least one bypass window proximal to said end hole and a balloon element between said end hole and said bypass window. The present invention is capable of deploying said balloon element, before inflation, across a blockage in a vessel.

    [0023] Referring now to FIG. 1, the current invention (1) there is a distal end hole (4) and a side hole (2) disposed upon the outer diameter of the device (1) of the current invention at the juncture of first segment (5) and second segment (6). Side hole (2) defines the end of second segment (6) through proximal end hole (7) from first segment (5) through distal end hole (4). The outer diameter of first segment (5) and second segment (6) are the same in some but not all embodiments.

    [0024] The bypass catheter device (1) of the current invention is introduced through an incision in a patient's vessel and often directed to a target site by means of standard endovascular techniques, with the aid of wires and/or other delivery catheters, often under fluoroscopic guidance.

    [0025] Returning to FIG. 1, first segment (5) is used to anchor device (1) so as to position side hole (2) at the desired location. Optionally, first segment (5) may be attached to a balloon (8) which, upon inflation, further anchors device (1) of the current invention in the desired position.

    [0026] The present invention is positioned such that side hole (2) is positioned to accept blood flow from the patient and direct the blood through first segment (5) out through distal hole (4), bypassing said blood flow past a blockage. The current invention prevents backflow of blood in three ways, or any combination thereof.

    [0027] FIG. 1 illustrates an embodiment employing valve (3) disposed at the juncture of second section (6) with side hole (2). In this embodiment, once the device (1) of the current invention is positioned in the desired position, valve (3) is closed by the user to prevent blood entering side hole (2) from flowing back into said second segment (6). The blood is thereby directed through first segment (5), through and out end hole (4), and allowed to perfuse the at risk tissue.

    [0028] In an alternative embodiment better depicted in FIG. 2, the inner diameter (10) of second segment (6) is less than the inner diameter of first segment (5). Inner diameter (10) terminates at inner hole (11). Inner hole (11) is smaller than distal end hole (4). The differential acts to constrict backflow and direct blood through first segment (5) to and out end hole (4).

    [0029] In a preferred embodiment, a valve (3) and a reduced inner diameter (10) and inner hole (11) are employed to constrict backflow of blood.

    [0030] In a still further embodiment depicted in FIG. 3, pressurized fluid may be introduced into second segment (6) to prevent the backflow of blood. FIG. 3 depicts device (1) of the current invention connected to pressurized fluid bag (12) interfacing with proximal end hole (7). Proximal end hole (7) communicates with second segment (6) through to first segment (5). Said pressurized fluid bag (12) may be connected to a flow regulator which is outside the patient's body to allow the user of the current invention to control flow of fluid through the second segment (6).

    [0031] In another embodiment, pressurized fluid may be used in conjunction with valve (3) and/or inner hole (11) to prevent backflow of blood. In a still further embodiment, pressurized fluid, valve (3) and differential inner diameter (10) and inner hole (11) may be used concurrently.

    [0032] As shown in FIG. 4, first segment (5) may optionally be perforated with at least one perforation (30). Perforations (30) are end holes for a lumen which extends from said perforations (30) and communicating with a separate irrigation channel (not shown) disposed at proximal end hole (7) and in communication with an additional controller (not shown). The fluid typically introduced into the separate channel exiting perforations (30) is designed to dissolve vessel-clogging material. For example, the fluid may be a lytic such as Alteplase, which dissolves blood clots. Said additional controller is capable of sending medication from said additional controller through communicating lumen and out perforations (30) to facilitate the irrigation of clots near first segment (5). Said medication has the capability of softening and/or changing the chemical makeup of clots proximal to perforations (30) for purposes of dislocating and/or dissolving said clot(s) or other blockage. In an alternate embodiment, the present invention device (1) is composed of co-centric lumens wherein perforations (30) communicate with the area between the internal surface of the outer lumen and the outer surface of the inner lumen, said gap extends from perforations (30) to proximal end hole (7) and communicates with said additional controller, allowing medication to be pumped from said additional controller through the area between the internal surface of the outer lumen and the outer surface of the inner lumen and out perforations (30) to allow the infusion of medication to soften, lyse, or alter the composition of clots or blockages. In the preferred embodiment, the inner channel (or area between the internal surface of the outer lumen and the outer surface of the inner lumen) terminates at the most distal perforation (30). Alternatively, the inner channel may terminate in the first segment at or near the end hole (4).

    [0033] Referring now to FIG. 5, an alternate embodiment of the device (1) of the present invention further includes rotating, macerating and irrigating elements, more particularly, an slidable outer support sheath (60), macerating elements or loops (70), and/or perforations (30) used as irrigating elements. Said slidable outer support sheath (60) is capable of snugly closing side hole (2) when first segment (5) is withdrawn inside of said sheath (60). This action of withdrawing side hole (2) into outer support sheath (60) results in changing the blood-flow bypass from side hole (2) through distal end hole (4), redirecting the blood flow from distal end hole (4) out proximal end hole (7) due to an aspiration controller communicating with proximal end hole (7). Also shown in this embodiment are optional backflow valve (3) and optional anchoring balloon (50). If the operator chooses to aspirate from distal end hole (4), the bypass catheter (1) can be pulled back so that the side hole (2) is temporarily positioned within sheath (60), which is sized for a snug fit around bypass catheter (1), and aspiration force applied at proximal hole (7) will be transmitted to end hole (4), provided valve (3), when present, is open during said aspiration. It should be noted that for optimal use of this embodiment of the present invention, first segment (5) must fit snugly inside slidable outer support sheath (60).

    [0034] It will be understood that the above particular embodiments are shown and described by way of illustration only. The principles and the features of the present disclosure may be employed in various and numerous embodiments thereof without departing from the scope and spirit of the disclosure as claimed. The above-described embodiments illustrate the scope of the disclosure but do not restrict the scope of the disclosure.