Improved catheters and devices and systems incorporating such catheters
The catheter's corrugated design with a transitional portion and helical support addresses the trade-offs in flexibility and torsional resistance, enabling effective navigation and aspiration in complex vasculature.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- NEUVT LTD
- Filing Date
- 2026-03-03
- Publication Date
- 2026-06-02
AI Technical Summary
Intravascular procedures face challenges due to the trade-off between catheter diameter, flexibility, and torsional resistance, which can lead to excessive force on blood vessels and limited access to tortuous vessels.
A catheter design with a corrugated outer surface and a transitional portion between proximal and distal sections, featuring varying bending stiffness, along with a helical support and fluoropolymer jacket, enhances flexibility and torsional resistance.
The design allows for improved navigation through complex vascular structures with reduced vascular damage and enhanced aspiration efficiency by optimizing bending stiffness and flexibility.
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Figure 2026090566000001_ABST
Abstract
Description
Technical Field
[0001] The present disclosure relates to catheters and devices and systems incorporating such catheters, and methods of using them. One example is a flexible catheter for intravascular procedures.
Background Art
[0002] Most intravascular procedures require the use of a flexible catheter, for example, to deliver contrast agent injection, to deliver an implantable device, to perform a vascular procedure, or to aspirate. Due to the tortuous nature of the vasculature, it is important for the catheter to be flexible enough to move through the blood vessel without applying excessive force. However, generally, there is a trade-off between characteristics such as the diameter, followability, flexibility, and torsional resistance of the catheter. Increasing the diameter of the catheter tends to increase its rigidity, which reduces its followability and may increase the shear force on the blood vessel to a dangerous level. Increasing flexibility tends to increase the tendency of the catheter to twist when pushed through the vasculature, limiting the catheter to gently curved blood vessels. Generally, reducing the wall thickness increases flexibility and allows access to tortuous blood vessels, and there is a trade-off between bending stiffness and torsional resistance.
Summary of the Invention
Problems to be Solved by the Invention
[0003] The present invention aims to provide a catheter having improved characteristics for desired bending stiffness and flexibility, thereby enabling use in difficult locations such as those with large curvatures and small dimensions in a patient's blood vessel.
[0004] The catheter comprises a jacket that defines a lumen and a helical support. The catheter has a proximal and distal portion, the distal portion having a corrugated outer surface for at least a portion of its length. The transitional portion has a bending stiffness less than that of the distal portion and greater than that of the proximal portion. The transitional portion provides an optimal transition in bending stiffness by the corrugated geometric shape of the jacket or by the jacket features including overlapping tubular layers. In some examples, the distal end of the distal portion may have an extension of folded liner material to provide a particularly soft tip. In other examples, the liner terminates before the distal tip. The catheter is particularly suitable for aspiration devices comprising a flow restrictor and a distal portion located distal to the flow restrictor. The aspiration system may use a catheter equipped with a pump that dynamically applies negative or positive pressure to optimally aspirate thrombi.
[0005] In one embodiment, a catheter is described comprising a jacket that defines a lumen and has a helical support made of a jacket material along at least a portion of its length, wherein the catheter comprises at least a proximal portion and a distal portion, and the distal portion has a corrugated outer surface for at least a portion of its length. Preferably, the catheter comprises a transition portion between the proximal and distal portions, the transition portion having a bending stiffness less than that of the distal portion and greater than that of the proximal portion. Preferably, the transition portion has a corrugated outer surface, and at least some of the corrugations on the corrugated outer surface are less in depth and / or width than the corrugations on the surface of the distal portion. Other embodiments of the catheter are shown in appended claims 4 to 88.
[0006] Furthermore, a method for manufacturing a catheter of any embodiment, wherein the jacket is made by arranging a membrane on a helical structure and the membrane reflows and forms around the helical structure A method is described in which heat is applied, a tensioned scint wire is wrapped around the outside of the film and pushed into the grooves between each loop of the helical structure, the film is heat-set to fix the waveform in a predetermined position, and the tensioned scint wire is unwound to leave the waveform.
[0007] The jacket may contain a fluoropolymer, and the fluoropolymers may be bonded to each other and / or to other polymers at bonding interfaces. Chemical treatment may be applied to the interfaces using an etching solution. The etched fluoropolymer may be coated with a thin layer of urethane such as ChronoFlex, and when heat is applied, this layer may flow and act to bond the fluoropolymer to a second etched fluoropolymer layer or another polymer layer.
[0008] In one embodiment, the method includes the steps of: providing the helical support within a polymer jacket bonded to a liner to form a base assembly; positioning an outer liner on the jacket coil that is not bonded to the polymer jacket; winding the scinch wire helically around the outside of the outer liner under tension to give it a corrugated shape; heating the material to reflow or temper it to set the material into a corrugated shape; removing the scinch wire; and peeling off the outer liner.
[0009] This specification also describes a suction device comprising a catheter and a flow restrictor according to any embodiment described herein, wherein the distal portion is distal to the flow restrictor. The catheter has a transition portion between the proximal portion and the distal portion, the transition portion having a bending stiffness smaller than that of the distal portion and greater than that of the proximal portion, and at least a portion of the transition portion extends distal to the flow restrictor.
[0010] The flow restrictor may include a balloon, which may be configured to inflate and block blood flow before drawing the thrombus into the distal portion of the catheter. Alternatively, it may be used to block blood flow prior to the precise delivery of an embolic agent to a region of the vascular system, tumor, or organ.
[0011] The length of the distal portion is suitable for reaching specific anatomical locations such as the distal internal carotid artery, the terminal portion of the internal carotid artery, proximal M1, distal M1, proximal M2, distal M2, basal M2, or vertebral vessels, and the flow limiter remains within or proximal to the C1 segment of the ICA.
[0012] The description also includes a method for using an optional embodiment of a suction device, which includes the steps of deploying the suction device into a patient's blood vessel, passing the distal portion to a thrombus in the blood vessel, blocking blood flow with the flow limiter, and creating a vacuum in the catheter to aspirate the thrombus with the distal portion.
[0013] In one example, the method is: The steps include performing angiography to determine the location of the occlusion, or the distance between the petrous portion or cavernous carotid artery and the occlusion, The steps include selecting a catheter having a distal portion length suitable for reaching the thrombus causing the occlusion and a distal tip with an outer diameter that comfortably fits the target vessel, The steps include passing the distal portion of the catheter to the thrombus, The steps include activating the flow limiter so that the flow can be stopped and minimizing any other flow paths that may reduce the effectiveness of the suction, The steps include creating a vacuum in the lumen of the catheter and aspirating the thrombus, If the thrombus is retrieved, it is removed via a balloon-guided catheter or diagnostic catheter. The steps include performing angiography and The procedure includes the step of removing the catheter.
[0014] The present invention also describes a suction system comprising a catheter of any embodiment, a pump connected to the proximal portion of the catheter, and a control unit configured to change the suction pressure during thrombus aspiration. The system may include a lumen pressure sensor, and the control unit may be configured to change the suction pressure according to the sensed pressure in the catheter lumen.
[0015] The system may include a lumen fluid flow sensor, and the control unit may be configured to change the suction pressure according to the detected fluid displacement in the lumen.
[0016] The control unit may be configured to improve the efficiency of suction by preventing blockage of the catheter and / or to facilitate the dissociation and deformation of the thrombus so that it can pass through the lumen.
[0017] The description also describes how to use an aspiration system of any embodiment in which the control unit changes the suction pressure during thrombus aspiration. A lumen pressure sensor may be provided, and the control unit may change the suction pressure according to the detected pressure in the catheter lumen. A lumen fluid flow sensor may be provided, and the control unit may change the suction pressure according to the detected fluid displacement in the lumen. Preferably, the control unit is configured to improve the efficiency of aspiration by preventing the catheter from becoming clogged and / or to facilitate the dissociation and deformation of the thrombus so that it can pass through the lumen. The control unit may also be configured to provide vacuum or positive pressure based on the measured pressure, and to change the direction to change the pressure and fluid displacement.
[0018] The control unit may define upper and lower limit values of pressure or displacement in order to determine whether to apply vacuum or pressure, and / or thereby, the control unit is configured to periodically collect on the catheter and, if necessary, discharge at least some of the thrombus, thereby causing deformation of the thrombus and improving the efficiency of the thrombus, improving the efficiency of suction, and preventing clogging of the catheter. The control unit is configured to start drawing vacuum so that a negative pressure is measured. In the absence of occlusion or partial occlusion at the catheter tip, this is a nominal reading representing free flow of fluid through the catheter. When the catheter advances and engages a thrombus, an increase in vacuum may be observed.
[0019] The control unit increases the vacuum to remove more thrombus, reverses at the lower limit value of pressure, and the lower limit value is set so that a part of the thrombus is aspirated in the vacuum, but the thrombus is not clogged irreversibly, and is set higher than the complete vacuum pressure, which can prevent the collection of large thrombus that may clog the catheter.
[0020] Other aspects of the method of operating the suction system are shown in appended claims 113 to 135. For example, the control unit may set the lower limit value between -100 mmHg and -200 mmHg, preferably between -200 mmHg and -300 mmHg, more preferably between -400 mmHg and -500 mmHg, more preferably between 600 mmHg and -700 mmHg, reverse the direction of fluid displacement of the pump, thereby increasing the measured pressure, and unload the thrombus.
Brief Description of Drawings
[0021] The present invention will be more clearly understood from the following description of several embodiments shown by way of example with reference to the accompanying drawings. [Figure 1] FIG. 1 is a schematic cross-sectional view of the distal end of a catheter. [Figure 2] FIG. 2 is a cross-sectional view of a catheter wall portion with a changing waveform depth. [Figure 3]Figure 3 shows the outer surface of the catheter shown in Figure 1. [Figure 4] Figure 4 is a cross-sectional view of the entire catheter shown in Figure 1. [Figure 5] Figure 5 is a schematic cross-sectional view of a catheter wall portion having an outer tubular layer coupled to an inner tubular layer. [Figure 6] Figure 6 is a schematic cross-sectional view of the transition between the distal wall portion and the proximal wall portion. [Figure 7] Figure 7 is a schematic cross-sectional view of another transition between the distal wall portion and the proximal wall portion. [Figure 8] Figure 8 shows the forces measured at 1 mm displacement in a three-point bend test between a conventional catheter design (0.80A urethane jacket over 0.127 millimeter (0.005 inch) NiTi coil over 0.0254 millimeter (0.001 inch) PTFE liner) and a very flexible wavy ePTFE design. [Figure 9] Figure 9 shows the behavior of a conventional catheter under compression when pushed against a restriction. [Figure 10] Figure 10 shows the behavior of a wavy catheter under compression when pushed against a restriction. [Figure 11] Figure 11 shows the use of a catheter with a progressively more flexible (or less "pushability") portion of the catheter wall within the distal tip on the distal side of the proximal portion. [Figure 12] Figure 12 is a cross-sectional view of an outer wall having a wavy surface with an inner liner. [Figure 13] Figure 13 shows a cross-section of a catheter where the inner liner terminates before the catheter. [Figure 14] Figure 14 shows a cross-section of a catheter where the helical support is not exposed within the lumen of the catheter. [Figure 15] Figure 15 shows details of a further structure of the catheter wall to achieve the desired flexibility at the proximal and distal portions. [Figure 16]Figure 16 shows an outer tubular layer added to the outside of the corrugated structure, in which a helical support is embedded to further increase the rigidity of the proximal portion of the catheter at the distal end. [Figure 17] Figure 17 shows the manufacturing steps for the catheter portion with a corrugated polymer jacket. [Figure 18] Figure 18 shows the catheter portion, which has a liner, a coil, and inner and outer tubular layers, respectively, and is filled to increase rigidity. [Figure 19] Figure 19 shows that the thickness of both the inner and outer tubular layers is increasing, and in this example, the coil may be floating or constrained between the outer layer and the inner liner. [Figure 20] Figure 20 shows a catheter portion having a liner, an outer jacket layer beneath the coil, and two layers outside the coil, in this example the coil may be floating or constrained within the jacket material. [Figure 21] Figure 21 shows multiple layers stacked to achieve a precise level of stiffness in order to achieve a controlled change in the stiffness of the distal tip, in this example the coil may be floating or constrained within the jacket material. [Figure 22] Figure 22 is a plot showing the results of a three-point bending test to evaluate stiffness. [Figure 23] Figure 23 shows the distal end of the distal section, which has been finished by inverting the inner liner on a helical support to form a continuous element, in this example the coil may be floating or constrained within the jacket material. [Figure 24] Figure 24 shows the distal portion where the softness is improved by the extension of inner and outer tubular layers beyond the last coil of the helical support, in this example the coil may be floating or constrained within the jacket material. [Figure 25]Figures 25A and 25B show further examples of catheter configurations in which the inner liner is inverted and returns as a continuous element, in which the coil may be floating or constrained within the jacket material. [Figure 26] Figure 26 shows an inner tubular layer of ePTFE material extending along the entire length of a catheter, including a distal end that is bent and then returned to a continuous position, in a catheter having a proximal end and an intermediate portion. [Figure 27] Figure 27 shows the inner tubular layer of the catheter, where the distal portion is made of ePTFE and the more proximal portion is made of PTFE, and a butt joint is used in which the proximal liner is concentric with the distal liner. [Figure 28] Figure 28 shows the proximal region of the corrugated ribs and recesses, which has an outer tubular layer made of polymer material and a distal liner transitioning to a different material, and a lap joint is used in which the distal liner is concentric within the proximal liner. [Figure 29] Figure 29 shows a further configuration of a helical support within a jacket, in which the helical support consists of a tubular layer of nitinol or other material covering a radiopaque material such as platinum, in which case the coil may be floating or embedded. [Figure 30] Figure 30 shows a further configuration of a helical support within a jacket, in which the helical support is composed of a tubular layer of nitinol or other material covering a radiopaque material such as platinum, in which case the coil may be floating or embedded. [Figure 31] Figure 31 shows a catheter with radiopaque markers at various positions along its length. [Figure 32] Figure 32 is a series of diagrams showing a typical conventional setup of a balloon-guided catheter in a thrombectomy procedure to provide proximal flow occlusion. [Figure 33] Figure 33 shows a balloon catheter with a reinforced flexible portion at its distal tip. [Figure 34] Figure 34 shows the layers and lumen of the double-lumen balloon of the catheter shown in Figure 33. [Figure 35] Figure 35 shows the tip of the corrugated tube to increase flexibility. [Figure 36] Figure 36 shows the tip of the corrugated tube to increase flexibility. [Figure 37] The left panel of Figure 37 shows an angiographic image of the external carotid artery, common carotid artery, and internal carotid artery (ICA), including the C1 and C2 segments, while the right panel shows the acceptable balloon placement. [Figure 38] Figure 38 shows a proximal and distal shaft having the same outer diameter, where the proximal shaft has two concentric lumens, and the diameter of the central lumen is smaller than the diameter of the flexible distal tip. [Figure 39] Figure 39 shows a catheter comprising a balloon and a distal portion having a smaller outer diameter than the proximal portion. [Figure 40] Figure 40 shows a catheter with a non-waveform proximal region in the distal portion. [Figure 41] Figure 41 shows a catheter device with a radiopaque marker at the distal end of a flexible distal tip. [Figure 42] Figure 42 shows a mother-daughter catheter configuration in which a larger catheter is used to occlude the inflow into the target vessel, and a smaller catheter is used to retrieve the thrombus. [Figure 43] The left panel of Figure 43 illustrates the use of a small catheter that cannot reach the distal target vessel (right) during drug or embolization, and the resulting undesirable delivery to a non-target vessel (upper left vessel). The right panel illustrates how a highly flexible, large-diameter catheter is selected to effectively occlude the target vessel and can be positioned beyond the non-target vessel, thus ensuring that embolization occurs only in the target vessel. It is preferable that the catheter remain in the target vessel. [Figure 44] Figures 44(a) to 44(e) are schematic diagrams illustrating the relationship between the pressure inside the catheter lumen and the behavior of the thrombus during aspiration. [Figure 45]Figure 45 shows a setup used to aspirate blood clots or other substances from the body using a pump. [Figure 46] Figure 46 is a flow diagram showing steps that include pressure monitoring to determine whether the pump should apply vacuum or pressurize during the suction procedure. [Figure 47-1] Figures 47(a) to 47(d) show the operation of the thrombectomy device in various embodiments. [Figure 47-2] Figures 47(e) to 47(j) show the operation of the thrombectomy device in various embodiments. [Figure 47-3] Figures 47(k) to 47(n) show the operation of the thrombectomy device in various embodiments. [Figure 48] Figures 48(a) to 48(c) show the pressure signals that vary between two vacuum levels. [Figure 49] Figure 49 is a flow diagram showing the method steps for a positive vibration or vibration signal. [Figure 50] Figures 50(a) and 50(b) are plots showing the oscillation signals. [Figure 51] Figures 51(a) and 51(b) are flow diagrams and associated plots for vacuum and positive oscillations. [Figure 52] Figures 52(a) and 52(b) are flow diagrams and associated plots for positive and negative adjustment of suction. [Figure 53] Figures 53(a) and 53(b) are images of the pump and its components (housing, connecting tube, on / off switch, battery pack, pulsating pump, motherboard, etc.), and the pressure sensor is connected to the tube (or "lumen") connected to the catheter, allowing for pressure measurement within the catheter. [Modes for carrying out the invention]
[0022] Various embodiments are depicted in the accompanying drawings for illustrative purposes and should not be construed as limiting the scope of the embodiments. Furthermore, various features of the different embodiments disclosed can be combined to form further embodiments that are part of this disclosure.
[0023] term The “jacket” is the wall of the catheter, and these terms are interchangeable. It may be wavy in all or part of its length (longitudinal direction). It may consist of either or all of a helical support (or “coil”) covered by the jacket material and an inner liner. The inner liner defines the lumen if present, but if absent, the other jacket material defines the lumen. If a liner is present, it may terminate at some point in the catheter.
[0024] The "tubular layer" is a layer of material in the jacket. "Indentation" is understood as the transmission of force and / or displacement applied to the proximal portion of the catheter to the more distal portion along its length. The higher the bending stiffness, the higher the indentation. The "waveform" refers to the shape of the ribs and recesses on the outer surface of the catheter, which is often a spiral pattern. "Distal" means farther from the clinician using the catheter and closer to the catheter tip in the longitudinal direction, while "proximal" means closer to the clinician.
[0025] Figure 1 shows an embodiment of a highly flexible and twist-resistant catheter 1. The catheter 1 includes a distal portion 3, a proximal portion 2, a central lumen 5, and reinforcing structures such as a helical support 6 extending along the length of the catheter. The proximal portion and / or the transition between the distal and proximal portions are, in various embodiments, described in the attached U.S. Patent Application filed July 12, 2017, entitled “Highly Flexible, Twist-Resistant Catheter Shaft”. The catheter may include any of the corresponding features described in No. 15 / 647,763. The inner tubular layer and / or outer tubular layer may include PTFE, ePTFE, electrospan PTFE, silicone, latex, TecoThane, nylon, PET, Carbonthane (Bionate), SIBS, Tecoflex, Pellethane, PGLA, or Kynar, polyethylene, cyclic olefin copolymer, or PEEK.
[0026] At least the inner and outer tubular layers of the distal portion (Figure 1) can be formed from a single section of material or from multiple different sections of similar or different materials. In this embodiment, the outer tubular layer 11 of the distal portion is formed from polyurethane (e.g., Pellethane 80AE), and the inner tubular layer 5 is made from ePTFE and / or PTF. It is formed from E.
[0027] In this case, the catheter jacket consists of an inner liner 5 and an outer tube 11 with a helical support 6. The highly flexible distal portion 3 (left side) of the catheter is created by forming a corrugated 15 on the outer surface of the outer tubular layer 11. The helical support 6 is enclosed between the corrugated outer tubular layer 11 and the smooth outer surface of the inner tubular layer 5, as shown in Figure 1. The formation of the curved corrugated wall structure reduces the possibility of twisting and provides flexibility. In addition, the corrugated outer surface can reduce resistance when the outer surface of the catheter contacts the blood vessel wall. The depth of the corrugation can be adjusted to provide a desired change in stiffness along the length of the catheter, as shown in Figure 2.
[0028] As shown in Figure 1, parameter "D" is the depth of the waveform, and parameter "W" is the width of the waveform. The width is the effective width of the valleys rather than the distance from peak to peak. In fact, in many embodiments, this is provided during manufacturing by clamping a scint wire around a tubular layer, heat-treating it, and then removing the scint wire to provide the corrugated surface. In this case, the width W is approximately the same as the diameter of the scint wire. The depth D is not necessarily uniform because the pressure applied by the scint wire varies along the length of the catheter, which may form deeper depressions in some places than in others.
[0029] Figure 2 shows a cross-sectional view of the wall of a catheter tip 50 having an inner layer 51, a helical coil support structure 52, and an outer layer 53 with a corrugated surface 53. The corrugation depth A on the left is greater than the depth B on the right. The section with the lower corrugation depth B functions as a transitional region before the more flexible tip (left side).
[0030] In the examples in Figures 1 and 3, the coil is embedded in the jacket, restricting its movement relative to the surrounding jacket material.
[0031] Furthermore, variations in pitch or waveform width may be used to control the local flexibility of the waveform region. Flexibility may also be set during manufacturing by selecting the length of the coils embedded in or floating within the jacket, with regions having floating coils being more flexible. A floating coil refers to a situation where the tubular layer of the jacket is attached to the space between the ribs of the waveform, such as to the inner liner.
[0032] The outer tubular layer may extend at least over the length of the highly flexible distal portion, or extend beyond the distal portion for a certain distance along the proximal (intermediate) length, or extend along the entire length of the catheter, as shown in Figures 3 and 4 (showing the catheter in Figure 1 in its entirety). By extending the outer tubular layer at least to some extent beyond the highly flexible distal portion of the catheter, a controlled stiffness transition between the distal and proximal portions of the catheter and stiffness between the outer tubular layer and any further outer jacket material are achieved. This allows for the formation of a rigid bond. Similarly, flexibility can be set during manufacturing by selecting the length of the coil to be embedded in the jacket or to float, as in either of the embodiments described with reference to Figure 3 or Figure 4.
[0033] To form a corrugated shape on a tubular membrane, the membrane can first be placed on a helical reinforcing structure. When heat is applied, the outer tubular membrane reflows and forms around the helical structure. Next, a tensioned wire can be wrapped around the outside of the tubular membrane, pushing a portion of the membrane into the grooves between each loop of the supporting helical structure. Then, the tubular membrane can be heat-set to fix the corrugation in place. After this process, the tensioned wire is released, leaving the corrugation.
[0034] The inner tubular layer extends to the proximal portion of the catheter, providing a continuous lumen and potentially joining or improving the joint strength between the highly flexible distal portion of the catheter and the proximal portion. The diameter of the inner tubular layer may be constant (e.g., smooth surface). As shown in Figure 4, the inner tubular layer may form at least part or all of the liner. The inner tubular layer may be made from a low-friction material such as ePTFE or PTFE.
[0035] As explained above, at least the outer tubular layer of the distal portion is formed from polyurethane (e.g., Pellethane 80AE), and the inner tubular layer is made of ePTFE and / or formed from a PTFE liner. These layers need to be attached together, and this is not easily achieved because fluoropolymers do not form strong bonds with other materials.
[0036] To facilitate bonding between fluoropolymers (e.g., ePTFE or PTFE) and between fluoropolymers and other polymers such as polyurethanes (e.g., Pellethane), the outside or bonding surfaces of the fluoropolymers may be chemically treated with a sodium-based etching solution such as FluoroEtch. The etching solution removes fluorine atoms from the surface of the fluoropolymer, preparing it for bonding.
[0037] Next, the etched fluoropolymer can be coated with a thin layer of urethane such as ChronoFlex. When heat is applied, this thin ChronoFlex layer flows and functions to bond the fluoropolymer to a second etched fluoropolymer layer or another polymer layer, as shown in Figure 5. This embeds the coil.
[0038] This figure shows a portion of the catheter's cross-section at its distal portion 150. This includes an ePTFE or PTFE liner 151 and a binding layer 152 of urethane or FEP tape or FEP powder. Additionally, a Nitinol® coil 153 is present in the outer jacket 154 of ePTFE or urethane material. The Nitinol coil 153 is sealed between the outer tubular corrugated layer and the smooth inner tubular layer 151. The binding layer 151 serves to attach the liner 151 to the outer jacket material. If the liner is made of ePTFE material, it may need to be etched to remove fluorine atoms and form a better bond with the binding layer.
[0039] In this case as well, flexibility can be set during manufacturing by selecting the length of the coil to be embedded in the jacket or to float, similar to any of the embodiments described below with reference to Figures 6 and 7.
[0040] Because the ChronoFlex® bonding layer 152 is very thin, it does not cause a significant change in wall thickness. Alternative forms of the bonding layer include the use of FEP. The fluoropolymer may be sputter-coated with FEP powder under heat and pressure to form a bond between the coated fluoropolymer layer and the second layer. Ultra-thin FEP tape is also an option. It can be used in the application of [this].
[0041] The helical support is enclosed between the corrugated outer tubular layer and the smooth inner tubular layer, as shown in Figure 5. The inner and outer tubular layers are bonded together in the space between adjacent loops of the helical support by a structure such as a bonding layer. The helical support is bonded within the helical channel formed by the corrugated outer tubular layer; that is, the helical support is molecularly or physically bonded to the outer tubular layer. Alternatively, the helical support may be bonded to the outer surface of the smooth inner tubular layer. The distal portion of the catheter retains high flexibility and torsional resistance due to the inherent advantages of the corrugated outer structure and the use of materials with appropriate stiffness and thickness.
[0042] In the configuration of the present invention, the pitch of the helical support may vary over the length of the catheter, affecting the bending stiffness of the catheter. For example, the helical support may have a different pitch in the proximal loop compared to the distal loop.
[0043] If the outer tubular layer of the distal portion of the catheter is formed of a fluoropolymer such as ePTFE or PTFE, and the outer tubular layer of the proximal portion is formed of a different polymer, and good bonding is achieved, then resisting delamination, especially during migration, can be difficult. This can be overcome by sandwiching the outer layer of the proximal portion of the catheter between the inner and outer tubular layers of the distal portion of the catheter, as shown in Figure 6.
[0044] Figure 6 shows the lumen 201 with a liner and the outer layer of Pellethane 80AE material. The image shows a portion of the catheter 200 having a 203 and a nitinol coil 206. On the right, the catheter has a smooth outer surface 203, and the distal transition section has a shallower waveform 204 and a deeper waveform 205 further distal to increase flexibility. A configuration with a transition section between the proximal and distal sections may be called a “sandwich configuration”.
[0045] If the inner tubular layer of the distal portion of the catheter is formed from a different material or a different material portion than the inner tubular layer of the proximal portion, the tubular layers can be joined by creating a small slit or window in one tubular layer and pulling the joint length of the other tubular layer through it, as shown in Figure 7. Then, a helical support is wrapped around the outside of these layers to bring them together.
[0046] Figure 7 shows a catheter section 250 having a proximal end 251, a transition section 252, and a distal tip 253, and a spliced proximal layer 260 having a window 261.
[0047] In various embodiments, the helical support is physically attached by being constrained or embedded in the catheter wall and moves together with the surrounding wall material. Such embedding can be achieved at the interface between the coil and the jacket material only, or at a combination of the interface between the jacket material and the inner liner.
[0048] Embedding can be achieved by a very tight fit between the coil and the surrounding material. Generally, there is no gap between the coil and the surrounding wall material. Due to the three-dimensional shape of the coil, it cannot move independently within the surrounding material.
[0049] Due to the manufacturing technique of forming the material around the coil, there is no play between the coil and the jacket, and they cannot move independently. In other words, the coil cannot be moved without simultaneously moving or deforming the surrounding jacket material.
[0050] This lack of play and the tight fit imply the presence of interface friction between the coil and the surrounding material, which further provides constraint, meaning the coil and the surrounding material must move together.
[0051] In other embodiments, the coil may float, meaning there may not be a tight fit between the material in the jacket and the helical coil. In these examples, there is some play between the helical support and the jacket. This is especially true when the jacket material covering the helical support is made of ePEFE. In this case, even if a relatively tight geometric fit is present, the material is very flexible and can move the helical support relative to the ePTFE.
[0052] In general, the following are some preferred parameter ranges for the catheter configuration. For at least a portion of the catheter's length, the waveform width is less than 50% of the waveform pitch. In at least a portion of the length of the catheter, the waveform width is between 5% and 49% of the waveform pitch, and more preferably, the waveform width is between 15% and 45% of the waveform pitch. For at least part of the catheter's length, the waveform width is between 20% and 45% of the waveform pitch.
[0053] For at least a portion of the catheter's length, the waveform width is at least 10% of the jacket thickness. For at least part of the length of the tapere, the width of the waveform is at least 20% of the thickness of the jacket.
[0054] In the most distal region of the distal section, the waveform width is at least 60% of the jacket thickness. In the most distal region of the distal section, the waveform width is at least 60% of the wall thickness, and the waveform depth is at least 70% of the wall thickness.
[0055] The ratio of waveform width to waveform depth is at least 0.5 in at least one region of the catheter.
[0056] In the embodiments described below, unless otherwise specified, the coil may be embedded in or floating within part or all of the catheter.
[0057] Referring again to the catheter structure configuration, a catheter with a highly flexible distal tip is realized, ensuring that a smoother transition of bending rigidity and pushability is achieved between the flexible distal and proximal portions of the catheter compared to conventional configurations. This smooth transition prevents areas of stress and strain concentration within the catheter shaft. Such areas can lead to catheter twisting, delamination of material layers, and / or key bonds within the catheter. This could lead to damage to the body.
[0058] Tabletop testing reveals a significant difference in rigidity between conventional catheter tip designs and highly flexible waveform designs. Bridging this gap smoothly presents technical challenges.
[0059] Figure 8 shows a conventional catheter design (0.80A urethane jacket on a 0.45 mm (0.018 inch) NiTi coil on a 0.025 mm (0.001 inch) PTFE liner) and a highly flexible corrugated ePTFE design (0.05 mm (0.002 inch) ePTFE wall on the inside and outside, 0.9 g / cm²). 3 Density, 0.125mm(0. The force is shown measured at a 1 mm displacement in a three-point bending test with a 0.005 inch (0.018 inch) NiTi coil (pitch 0.45 mm).
[0060] The exceptional flexibility of the catheter shaft allows the catheter to navigate very winding paths with minimal force, reducing the likelihood of vascular damage, but it should be understood that this may result in some degree of reduced pushability. For clarity, pushability is understood as the transmission of force and / or displacement applied to the proximal portion of the catheter to the more distal portion along its length.
[0061] The flexibility of a catheter can limit the transmission of displacement applied to the proximal portion of the catheter to the distal portion. This means that some of the displacement is absorbed by the overall deformation of the catheter, as shown in Figure 9. Figure 9 shows the behavior of a conventional catheter under compression when pressed against a limit. In this example, the length of catheter 600 does not change. Generally, what occurs in catheters of conventional construction is in the form of shortening.
[0062] Figure 10 shows the behavior of the corrugated catheter 650 under compression when pressed against a limit. In the case of the corrugated outer jacket with thin inner and outer tubular layers, the deformation is absorbed by the catheter wall. The inner and outer tubular layers of the catheter may deform locally, especially in recesses, resulting in a shortening of the overall length. Some overall deformation of the catheter is also expected, as shown in Figure 9.
[0063] This gentle compression action is advantageous at the distal tip because it limits the catheter tip's ability to move forward, which could cause damage or incision of the blood vessel. However, if the distal tip is very long, a certain degree of upward force in the proximal portion of the tip may be preferable so that the catheter can be advanced distally and proximal as intended by the physician.
[0064] In one configuration, one or more regions of varying indentation and flexibility are present within the catheter tip, which consists of one or more regions of ribs and recessed structures. Figure 11 shows the use of progressively more flexible or less indentational portions of the catheter wall 701 within the distal tip, which is distal to the proximal portion 702, in catheter 700. In one configuration, the most flexible region is located at the distal tip of the catheter.
[0065] These regions where indentation / bending stiffness increases / decreases are achieved through multiple methods, such as embedding a helical support, modifying the inner and outer tubular layers, or using fillers (the helical support may or may not float between the inner and outer tubular layers).
[0066] Changes in stiffness or indentation across the transition region may be gradual or occur in multiple stages. These gradual or gradual changes can be achieved by terminating specific tubular layers, or by changes in the degree of corrugation or material.
[0067] It is envisioned that one or all of these approaches will be combined in part or all of the catheter shaft. An example is shown below.
[0068] The distal tip consists of a corrugated material in which at least a portion of a helical support is embedded, and the degree of corrugation is gradually changed towards the proximal direction to achieve increased rigidity. The most distal region may or may not have a liner. The liner is made of ePTFE and transitions to PTFE in the more proximal region. The most proximal portion does not have to be corrugated.
[0069] At least a portion of the distal tip consisted of floating coils between ePTFE layers with a waveform design. The thickness of the ePTFE material increases gradually or stepwise towards the proximal end. This can be achieved by increasing the thickness of the wall layer or by adding material to the layer. The ePTFE liner transitions to PTFE in the more proximal region. The most proximal portion does not need to be corrugated.
[0070] The distal region may consist of floating coils between the corrugated ePTFE layers, a more proximal portion with embedded corrugations, and a more proximal portion that is again non-corrugated. The ePTFE liner transitions to PTFE in the more proximal region. The distal corrugated region may be combined with the more proximal corrugated region by increasing the wall thickness or by adding layers of material to the wall to increase its rigidity. The most proximal portion does not have to be corrugated.
[0071] In one configuration, the helical support is embedded by bonding it to an outer jacket made of, for example, ePTFE material. This has the effect of reinforcing the structure of the catheter wall compared to a floating helical support, reducing flexibility and improving indentation.
[0072] In one configuration, in the catheter portion 750, the helical support 752 is embedded in a matrix 753 of a continuous porous flexible material such as ePTFE. As shown in Figure 12, the outer wall has a corrugated surface. As shown in Figure 12, the inner tubular layer, or liner 751, may not be required.
[0073] ePTFE provides a very soft and flexible material for catheter structures, but its porosity also makes it compressible. Furthermore, when used as a thin tubular layer that is easily deformed locally, if the area of the catheter is obstructed, the overall indentation can be impaired, especially if the distal tip encounters resistance. To improve indentation while maintaining high flexibility, a non-compressible, flexible material may be used for implantation purposes instead of porous materials such as ePTFE. This means that it can adapt to deformation more easily than a non-porous material.
[0074] The waveform allows for localized deformation, while the continuous, incompressible region of material ensures efficient transmission of axial force and displacement along the length of the catheter. By reducing the depth of the waveform and correspondingly increasing the thickness of the continuous material, the catheter's indentation can be increased, although flexibility is reduced. This can be described as a waveform jacket design.
[0075] In one embodiment, the inner tubular layer is made of ePTFE. In one configuration, the spiral The support is moved away from the inner liner so as not to be exposed to the liner. This prevents the helical support from moving or detaching and prevents localized stress or strain from being applied to the catheter liner. The corrugated shape can be semicircular, U-shaped groove, V-shaped, or square groove.
[0076] In one configuration, the waveform width at the catheter surface is at least 5% of the wall thickness at the wall. Preferably, in at least one section, the waveform width at the catheter surface is at least 10% of the wall thickness at the wall. Preferably, in at least one region of the distal tip, the waveform width at the catheter surface is at least 30% of the wall thickness at the wall.
[0077] In one embodiment, the waveform depth is between 5% and 95% of the catheter wall thickness. In one configuration, the waveform depth is at least 20% of the catheter wall thickness in at least one section of the catheter.
[0078] In one embodiment, the waveform depth varies along the waveform region of the catheter, from a large depth distally to a small depth proximal to the same depth. In one embodiment, the waveform width is the waveform region of the catheter. The depth of the waveform varies from a large distal depth to a small proximal depth. In another embodiment, the depth of the waveform varies from a large distal depth to a small proximal depth, and the width is substantially constant along the length of the waveform portion of the catheter.
[0079] In one embodiment, the waveform represents the effect of a circular helical wire wound to a depth and width that is unaffected, i.e., no waveform, up to a depth of at least 50% of the wall thickness. In this case, it should be understood that the waveform width changes from 0 to a maximum width equal to the diameter of the helical wire, or to the effect remaining after the removal of the helical wire.
[0080] It should be understood that tension is required in the wound scinch helical wire to generate a waveform. For example, with a 0.127 mm (0.005 inch) circular cross-section wire of 304 stainless steel wound with a force of 1 N and a tension of 1 N on a 0.1524 mm (0.006 inch) wall thickness 80A jacket with an inner diameter of 2.2352 mm (0.088 inch), the waveform depth will be 10-20%. Increasing the tension of the 1 N winding to a force of 7 N will result in a waveform depth of 40-70%. Varying the force level will produce waveforms of varying degrees. It should be understood that the catheter portion can be bent with relatively low force due to a waveform of height D as shown in Figure 1. This is because the overall bend of the catheter is concentrated precisely within the concave part of the waveform.
[0081] However, if the waveform is very narrow, even if it is very deep and numerous, there is a limit to the degree of bending that the catheter can accommodate. This is because adjacent waveforms begin to come into contact with each other. Therefore, the bending stiffness is low until adjacent waveforms come into contact with each other, or until it "bottoms out," and from that point onward, the bending stiffness increases. Subsequently, the rest of the catheter wall deforms to accommodate the bending (primarily out of the concave areas).
[0082] This bottom-out means the catheter shaft has a lower limit to its bending radius, which is achieved through deformation within the recess. Bending deformation beyond the bottom-out is possible, but it is not addressed by deformation within the recess of the waveform, but rather by pressing adjacent waveforms against each other. This generally requires a much larger force compared to the deformation that occurs at lower bending radii when the deformation is concentrated in the recess.
[0083] The width of the waveform needs to be controlled to be large enough to accommodate sufficient deformation within the recess and to reach the desired lower limit of the bending radius with relatively low bending force. This is important because physicians generally want to be able to manipulate the catheter with little force so that the possibility of vascular damage is reduced and the catheter can advance without deforming the vessel.
[0084] The width and depth of the waveform contribute to the bending stiffness of the catheter, but the width can define the lower limit of the bending radius that the catheter can deform. Therefore, the wider the waveform, the smaller the bending radius that can be achieved with small bending forces.
[0085] Consider an example where a nitinol helical support with an inner diameter of 2.2 mm (0.088 inches), a wall thickness of 0.15 mm (0.066 inches), and a diameter of 0.125 mm (0.005 inches) is embedded in 80A on an ePTFE liner. In a sample with a width of 0.1 mm (0.004 inches) and a corrugation depth of 0.1524 mm (0.006 inches), a three-point bend of 0.05 N produces a displacement of 1 mm and a bottom-out radius of 5 mm. In a sample with a corrugation width of 0.175 mm (0.007 inches) and a corrugation depth of 0.1524 mm (0.006 inches), a three-point bend produces a similar force, but the bottom-out radius is 3.5 mm.
[0086] To ensure that large catheters can safely enter cerebral blood vessels and to accommodate low-radius bends such as carotid siphons, the waveform width must be minimized relative to pitch and wall thickness. It is required.
[0087] In one embodiment, the width of the waveform is 50% or less of the pitch of the waveform (same as the pitch of the helical support). Preferably, the width of the waveform is between 5% and 49% of the pitch of the waveform. More preferably, the width of the waveform is between 15% and 45% of the waveform. More preferably, the width of the waveform is between 20% and 45% of the waveform.
[0088] In one embodiment, the width of the waveform is at least 10% of the wall thickness. Preferably, the width of the waveform is at least 20% of the wall thickness. In one embodiment, at the most distal section of the tip, the width of the waveform is at least 60% of the wall thickness.
[0089] In one embodiment, in the most distal section of the tip, the width of the waveform is at least 60% of the wall thickness, and the depth of the waveform is at least 70% of the wall thickness.
[0090] In another embodiment, the waveform represents the effect of a circular helical wire wound to a depth and width where there is no effect, i.e., from the unwavering depth to a depth of at least 70% of the wall thickness.
[0091] In one configuration, the inner tubular layer (liner) terminates in the region proximal to the distal end of the catheter. This further reduces the rigidity of the catheter, whether corrugated or non-corrugated. In this case, the region without the liner may be sticky, especially if the catheter wall is made of a material such as silicone, urethane, or Pebax. In one embodiment, the lumen region of the catheter without the liner has a hydrophilic or hydrophobic coating to improve lubrication. This is shown in Figure 13 for a catheter portion 760 having a helical support 761 embedded in an outer jacket 762, with an inner liner 763 extending over part of this length and terminating in front of the distal end (left side).
[0092] In one embodiment, the unlined portion is at least 1 cm long, preferably at least 2 cm long. The liner end is advantageous in that it allows for a more flexible portion of the catheter. However, this can cause abrupt changes in bending stiffness and locations where twisting or high stress or strain may occur. This can be managed by using changes in waveform parameters or by machining the liner. In another embodiment, the liner end is skive or angular cut.
[0093] In one configuration, the section of unlined jacket material adjacent to the liner proximal to the liner has less wavy than the distal and proximal sections of the unlined jacket. This may be achieved by reducing the depth of the wavy. In another configuration, the wavy section of the lined jacket adjacent to the unlined jacket has a longer pitch than the distal and proximal sections of the unlined jacket.
[0094] In one configuration, the helical support is moved away from the inner liner so as not to be exposed in the lumen of the catheter, as shown in Figure 14, and has a helical support 771 on the outer jacket 772. This is to prevent the helical support from protruding into the catheter lumen when the catheter bends. In one embodiment, the distance from the lumen to the helical support is at least 0.005 mm.
[0095] Referring to Figure 15, the catheter portion 780 includes a helical support 781, an outer jacket 782, and an inner liner 783. The outer jacket 783 has a proximal portion 784 without a wavy design and a distal portion 785 with a wavy design. The inner liner 783 terminates proximal to the distal end at 786. This means that the most distal section of the distal tip consists of a wavy jacket without a liner, while the more proximal section has a wavy liner. This is an example of a configuration in which at least one more proximal section is more corrugated, and at least one more even more proximal section is again not corrugated. In one embodiment, all sections of the jacket are of the same material durometer. In one embodiment, the material is urethane with a durometer of 80A. In another embodiment, there is a more proximal jacket or Pebax made of a harder urethane. The liner is made of ePTFE. In the more proximal sections of the shaft, the liner transitions to PTFE. In one embodiment, this transition is made of a durometer material that is harder than that of the jacket at the distal tip of the corrugated section.
[0096] In one embodiment, the catheter portion 800, like the catheter portion 750, has a liner 751, a helical support 752, and an outer jacket 753. However, in this example, an outer tubular layer 801 is added outside the corrugated structure, which, as shown in Figure 16, incorporates the helical support to further increase the rigidity of the proximal section of the distal end of the catheter. This layer may be made of the same or different material as the material used to cover the helical support. In this example, PET, nylon, PEEK, and Other rigid materials, such as polymers, can be used without significantly increasing the shape. In one embodiment, a layer of PET having a thickness of 0.05 mm or less, preferably 0.025 mm or less, and more preferably 0.0125 mm or less, is added.
[0097] Several approaches can be taken to manufacture a catheter section with a corrugated polymer jacket. As shown in Figure 17, the following steps can be used.
[0098] A conventional catheter structure, which houses a coil 752 embedded within a polymer jacket 753, is constructed to be coupled to a PTFE liner 751 to form a base assembly.
[0099] Next, an outer liner 811, which is not bonded to the polymer jacket, is placed on top of the jacketed coil. A highly flexible fluoropolymer such as FEP, PTFE, or more preferably ePTFE can be used.
[0100] Wire 810 is wound helically around the outside of the outer liner under tension, giving the structure a corrugated shape. This may be called a "cinch wire."
[0101] The structure is heated to reflow or temper the material and set it into a corrugated shape. Cool the assembly. Remove the 810 cinch wire. Remove the outer liner 811 from the assembly to complete the process.
[0102] The filler material may be used to control flexibility and improve indentation, and if used, a coil may be embedded. Figure 18 shows a catheter portion 850 comprising a liner 851, a coil 852, and inner and outer tubular layers 853, 854, respectively, and a filler material to increase rigidity.
[0103] In one embodiment, the material is used only to partially fill the space around the helical support, as shown in Figure 18. In another embodiment, the filler completely fills the helical channel around the helical support between the inner and outer tubular layers. In yet another embodiment, the filler is melted to form a layer of the material on all surfaces within the helical channel.
[0104] In one embodiment, the outer and inner tubular layers are made of ePTFE or PTFE. The filler material is PET, PEEK, or FEP.
[0105] The helical channel may be formed using a helically wound wire (scinch wire) temporarily placed outside the outer tubular layer. To permanently form the helical channel, the structure may then be heated so that the packing layer melts and flows between the helical support, the outer tubular layer, and the inner tubular layer. When the helically wound scinch wire in the outer tubular layer is cooled and removed, the corrugated shape is maintained and an adhesive chemical bond is achieved between the components via the packing material.
[0106] In one configuration, the filler may be polyurethane, Pebax, PET, silicone, latex, TecoThane, nylon, PET, Carbonhane, SIBS, Tecoflex, Pellethane, PGLA, or Kynar, polyethylene, cyclic olefin copolymer, or PEEK.
[0107] In one configuration, the inner and outer tubular layers of ePTFE are bonded together by sintering. It should be understood that, in the case of fluoropolymers, particularly ePTFE or PTFE used for the inner and outer tubular layers, the temperature required for sintering can exceed 500°C. In this example, it may be desirable to use filler materials with high processing and decomposition temperatures, such as PET, FEP, or PEEK. Other materials, such as urethane or Pebax, are unsuitable because they degrade at low temperatures.
[0108] Because PET is a relatively rigid material, it can be introduced in small amounts to harden the waveform structure without significantly affecting the catheter's shape or completely filling the helical channel. This provides areas for floating and embedded coils.
[0109] In one configuration, increased indentation or stiffness is achieved by varying the thickness of one or both of the tubular layers. As the thickness increases, the intrinsic stiffness of the wall increases. Also, the space available for local bending and deformation of the material decreases, which can reduce flexibility. Furthermore, as the thickness increases, the axial cross-sectional area along the force transmission axis and the displacement along the catheter increase.
[0110] In one embodiment, as shown in Figure 19, the catheter portion 950 has increased thickness in both its inner and outer tubular layers compared to the catheter portion 900. The catheter portion 900 includes an inner liner 901, a coil 902, and an outer tubular layer 903. The catheter portion 950 includes a thicker inner liner 951, a coil 952, and a thicker outer tubular layer 953. In another embodiment, only the thickness of the inner tubular layer is increased. In yet another embodiment, only the thickness of the outer tubular layer is increased.
[0111] In an alternative configuration, the overall thickness of the outer tubular wall can be changed by adding one or more layers of the same material. Referring to Figure 20, the catheter portion 1000 has a liner 1001, an outer jacket layer 1002 beneath the coil 1005, and two outer layers 1003, 1004 beyond the coil 1005.
[0112] The overall thickness of the inner tubular layer walls can be increased by adding one or more layers. These layers may be made of the same or different materials. In the case of ePTFE, the total thickness of the inner tubular layer in an unconstrained configuration may be between 0.025 mm and 0.3 mm, preferably between 0.05 mm and 0.2 mm.
[0113] In one configuration, the inner and outer tubular layers are composed of multiple layers of ePTFE, with at least one layer between the outer and inner tubular layers. The total thickness of the tubular layer (e.g., ePTFE) may be between 0.025 mm and 0.3 mm, preferably between 0.05 mm and 0.2 mm. The density of the material (again, ePTFE, etc.) is approximately 0.9 g / cm³. 3 Therefore, increasing or decreasing the density of the material requires increasing or decreasing the thickness of the wall to achieve the same effect.
[0114] In another embodiment, the thickness of the inner tubular layer is constant along the length of the tip, while the thickness of the outer tubular layer is greater in at least one region. In yet another embodiment, the thickness of the outer tubular layer increases at least once proximal along the length of the catheter tip.
[0115] To achieve a controlled change in the stiffness of the distal tip, multiple layers can be stacked to achieve a precise level of stiffness, as shown in Figure 21, where an additional outer layer 1010 is present on a portion of the catheter. This principle can be used with any number of layers to achieve the desired change in stiffness. Similarly, a single thicker layer may be used proximal to connect to a thinner layer further distal to achieve the same effect.
[0116] In one embodiment, the tip has one outer tubular layer of 0.025 mm to 0.75 mm in thickness along the length of the tip. A second further outer tubular layer of 0.025 mm to 0.75 mm in thickness is present in a more proximal region. A third further outer tubular layer of 0.025 mm to 0.75 mm in thickness is present in an even more proximal region. A fourth further layer of 0.025 mm to 0.75 mm in thickness is present in an even more proximal region.
[0117] In one embodiment, the distal tip includes an outer tubular layer 0.05 mm thick along the length of the tip. A second further outer tubular layer 0.05 mm thick is present in a more proximal region. A third further outer tubular layer 0.05 mm thick is present in an even more proximal region. A fourth further layer 0.05 mm thick is present in an even more proximal region.
[0118] In one configuration, the tubular layers are joined to each other. The joining may exist across the entire interface of the tubular layers. Alternatively, the joining may exist only in the corrugated recesses in the areas where the inner and outer tubular layers are in contact. In yet another embodiment, the joining exists between the layers in the corrugated rib regions and recessed regions. In yet another embodiment, the rigidity of the wall may be increased by changing the material of the inner or outer tubular layer to one with higher rigidity.
[0119] It should be noted that the use of localized compression (pressure) to ensure strong bonding between tubular layers may result in some localized variation in the thickness of the tubular layers, following the bonding of the inner and outer tubular layers, or their constituent layers. This is particularly true for ePTFE, a porous, compressible material. This localized compression may reduce the wall thickness in that region.
[0120] To evaluate a subset of the embodiments described above, 2.2 mm (0.088 inch) 8F catheter samples were constructed and tested in a three-point bending test. The force at a displacement of 1 mm was measured using a 50 N load cell on a Zwick-Roel tensile testing machine. The distance between supports was 20 mm. Using the various configurations outlined above, distinct changes in stiffness were achieved.
[0121] It should be understood that the embodiments described above can be used to modify the stiffness of the catheter wall as needed. For comparison, the 6F Microvention Sofia Plus catheter, which has been shown to be used in the neurovascular system, is included. Figure 22 shows the results of a three-point bending test to evaluate the stiffness of the various embodiments described above.
[0122] In the neurovascular system, when it enters delicate blood vessels such as the M1, M2, ICA, vertebral artery, and basilar artery... Therefore, a non-traumatic tip is extremely important. The distal tip should preferably have the minimum length of its most flexible portion so that the catheter tip distorts or absorbs deformation rather than causing damage to the blood vessel.
[0123] In one embodiment, the distal and flexible section of a catheter with a corrugated rib and recessed design consists of inner and outer tubular layers in a corrugated configuration, with a minimum length of 1 cm and a helical support that floats within a helical channel. In one embodiment of the distal tip of an 8F catheter, the force in a three-point bending test with a 1 mm deflection over a 20 mm span does not exceed 0.1 N.
[0124] As shown in Figure 23, in one configuration, the most distal end 1050 of the distal portion is finished by inverting the inner tubular layer 1051 on the helical support to form a continuous element.
[0125] Referring to Figure 24, in another embodiment, at the distal end 1060, the softness of the distal tip is improved by extending the inner and outer tubular layers 1061 and 1062 beyond the last coil of the helical support.
[0126] As shown in Figure 25A, in the distal section 1070, the inner tubular layer 1071 is inverted at the distal end 1072 and returns as a continuous element. The inner and outer tubular layers are made of the same material and are continuous. There is an ePTFE extension at the end 1072 of the corrugated section to improve tip flexibility. Preferably, the extension beyond the last coil is between 0.5 and 5.0 mm. More preferably, the extension beyond the last coil is between 1.0 and 0.3 mm. The distal section 1070 also has an outer tubular layer 1073 that terminates before the distal end 1072 and a further outer tubular layer 1074 that is concentric around layer 1073 for a portion of the length of layer 1073. This staggered overlapping configuration provides a transitional section with a stepwise change in bending stiffness.
[0127] Figure 25B shows the distal portion 1080 of the catheter, with an inner liner 1081 that extends outward at the distal tip to form an extension. In this example, there are also overlapping, staggered outer tubular layers 1083 and 1084.
[0128] In catheter 1070, two or more layers are achieved by using identical material pieces that have been inverted and returned along the length or part of the catheter. In one example, two ePTFE pieces are used to achieve one inner tubular layer and three outer corrugated tubular layers.
[0129] In catheter 1080, additional layers are added individually. In another embodiment, a combination of inverted continuous and discrete layers is used. The proximal portion of the catheter (shown not as a waveform) may or may not be waveform-shaped.
[0130] Because PTFE material is relatively harder than ePTFE, it is desirable to avoid using PTFE as the inner tubular layer (liner), especially in areas where it bends significantly when passing through winding blood vessels. In one embodiment, as shown in Figure 26, in a catheter 1100 having a proximal end 1101 and an intermediate portion 1102, the inner tubular layer is made of ePTFE material, which extends along the entire length of the catheter including the distal end 1103 and is bent at the distal end 1103 to be continuous with the outer tubular layer.
[0131] In one configuration, the inner tubular layer of a catheter 1150 having a proximal end 1151, an intermediate portion 1152, and a distal portion 1153 is, as shown in Figure 27, ePTFE in the distal portion of the catheter and PTFE in the more proximal portion of the catheter. The row region has a transition region 1154 where the outer jacket layer of the layer is fused and bonded to the outer jacket of the PTFE material. The transition from ePTFE to PTFE can be achieved by a "butt" joint, in which the inner tubular layers of PTFE and ePTFE come into contact without overlapping.
[0132] In another embodiment, the transition from the inner tubular layer of ePTFE to PTFE occurs in a region of the catheter that does not undergo significant bending during use. In one configuration, the device dimensions are suitable for placement in the neurovascular system, including the M2, M1, and distal internal carotid arteries. Preferably, the transition from ePTFE to PTFE occurs proximal to the pyramidal portion of the ICA. In one configuration, the transition from ePTFE to the inner tubular layer of PTFE occurs between 3 and 40 cm from the distal end of the catheter, preferably between 5 and 30 cm from the distal end, and more preferably at least 10 cm from the distal end.
[0133] In one configuration, the transition from the inner tubular layer of ePTFE to PTFE occurs in the region close to the catheter area of the ribs and corrugated recesses. In another configuration, the transition from the inner tubular layer of ePTFE to PTFE occurs proximal to the most flexible region of the corrugated design of the ribs and recesses, but also occurs within the rigider regions of the corrugated design of the ribs and recesses.
[0134] In one embodiment, the proximal region of the ribs and concave corrugations has an outer tubular layer made of a polymer material, as shown in Figure 28. In one configuration, the polymer material is urethane or Pebax. In one embodiment, the polymer material is 80A urethane. Figure 40 shows a catheter 1200 having a proximal end 1201, an intermediate portion 1202, a distal portion 1203, and a transition region 1204. The inner tubular layer (liner) 1207 of ePTFE transitions into the PTFE jacket 1205 in the intermediate portion within the corrugated section at the distal tip. A lap joint is used in which the PTFE tubular layer 1208 is concentric with the ePTFE tubular layer 1207.
[0135] In another embodiment, the transition from ePTFE to PTFE may be achieved via a "lap" joint where the tubular layers of ePTFE and PTFE overlap. The overlap between PTFE and ePTFE is between 1 mm and 30 mm in length. Using this overlap increases the surface area of the interface for bonding, thereby improving the bonding strength.
[0136] As shown in Figure 29, in one example, the ePTFE is concentric within the PTFE. In this figure, the catheter 1250 has a proximal end 1251, an intermediate portion 1252, and a distal portion 1253. The inner liner 1260 is bent beyond the distal end, forming the outer jacket portion of the distal portion 1253. In the transition region between the intermediate portion 1252 and the distal portion 1253, the inner liner 1260 is within the tube of the PTFE material 1261, with an overlap length of at least 2 mm, preferably at least 5 mm. The tubular layer 1261 extends proximal within the jacket material 1262 of the intermediate portion 1252. This provides a configuration in which the inner tubular layer (liner) transitions into PTFE in the ePTFE within the corrugated section of the distal tip. The ePTFE tubular layer 1260 is concentric within the ePTFE tubular layer 1261 in a lap joint. The character "ト" is used.
[0137] In one configuration, a marker made of a platinum helical coil is located at the distal tip. In one embodiment, the helical support may be composed of a radiopaque material such as platinum wire. In another embodiment, to take advantage of the radiopaque and superelastic properties of nitinol, the helical support may be composed of a drawn nitinol tube (such as nitinol #1 DFT, Fort Wayne Metals) filled with platinum or other radiopaque material. This allows the physician to observe the behavior of the distal tip on X-ray throughout the procedure. In one embodiment, the helical support tube is composed of at least 10% platinum It is composed of a catheter portion 1280 having a radiopaque helical coil 1281 with a coating 1282 around it, and a tubular layer 1283 on an outer jacket.
[0138] In one configuration, the radiopaqueness of the distal tip is further enhanced through a region where the helical support pitch is reduced, so that a region of higher density radiopaqueness is achieved.
[0139] Figure 31 shows a catheter with radiopaque markers 1270 at various positions along its length. The advantage and novel aspect is that physicians can ensure a rigider area so that the catheter is not placed in more delicate areas of the vascular system. For example, a proximal marker at the starting point of the flexible distal tip can be used to determine the area of the proximal catheter that should not be placed beyond the cervical C1 segment of the internal carotid artery. Furthermore, an intermediate marker can be used to distinguish the end of an intermediate flexible area that should not be placed anterior, mid, or antefront of the cavernous portion C4. The area between the intermediate and distal markers establishes the C4–C7 region of the internal carotid artery and the most flexible area suitable for placement in more distal vessels.
[0140] In one embodiment where the device is suitable for placement in the neurovascular system, the distal flexible tip is at least 10 cm long, and the unlined distal portion is at least 3 cm long. In another embodiment where the device is suitable for placement in the peripheral vascular system,
[0141] A suction device including a catheter. Any example of a catheter may be used, for example, for thrombectomy.
[0142] Recent clinical data indicate that using balloon-guided catheters to halt blood flow can improve outcomes during thrombectomy. This is achieved by: While the balloon is inflated proximal to the thrombus in the intravascular occlusion (ICA), blood flow to the thrombus is reduced. By reducing blood flow, the likelihood of the distal embolus rupturing or being carried distally during thrombus retrieval using a stent retriever or aspiration catheter is reduced. The thrombus is taken into the BGC by a stent retriever or suction catheter, and after being pulled from the target site, a lumen for suction is provided as the thrombus enters the BGC.
[0143] Prior art setups for balloon-guided catheters in thrombectomy procedures, having balloon 1300 and tip 1301, are schematically shown in Figure 32. Balloon-guided catheters for use in thrombectomy must facilitate the insertion of microcatheters and distal access catheters. To achieve this, the inner diameter of the balloon guide must be in the range of 5F or greater. The outer diameter of the catheter is typically in the range of 8F or 9F.
[0144] Existing catheter technology with the dimensions mentioned above is extremely rigid. This is due to the materials, design, and construction of the catheters used. Therefore, the distal tip of a balloon-guided catheter cannot be positioned beyond the pyramidal portion. Excessive rigidity means that the catheter is not flexible enough to follow the tortuousness of the distal ICA and other target vessels where thrombi may be located, increasing the likelihood of vascular damage or perforation.
[0145] Ideally, the tip of the balloon-guided catheter should be as close to the thrombus as possible. This reduces the distance the thrombus has to be pulled from the target vessel to the tip of the balloon-guided catheter. Additionally, the catheter tip can engage with the thrombus, potentially allowing the physician to locally and directly aspirate the thrombus.
[0146] In some scenarios, remote aspiration of the thrombus is performed using a balloon-guided catheter while the balloon is inflating. Remote aspiration is a procedure in which the thrombus is aspirated without the tip of the catheter coming into contact with the thrombus. This works particularly well in closed systems where there are no alternative pathways. The success of this technique is often limited by the fact that the tip of the catheter is far away from the thrombus.
[0147] Balloon catheters, whether used for PTA or embolization protection, typically have a double-layered structure with a double lumen along the length adjacent to the balloon. This ensures two lumens: one for the guidewire, catheter, or fluid passage, and the other for inflation. This double-layered structure does not always provide the desired flexibility and is prone to twisting.
[0148] Therefore, there is a need for a balloon-guided catheter that incorporates a highly flexible distal section that can stop flow and navigate through winding vessels such as distal ICAs, or reach MIs or other vascular systems.
[0149] In one embodiment, a shaft or section with enhanced flexibility is present distal to the balloon of a balloon catheter compared to the proximal section. This flexible section allows the tip of the balloon to be positioned more distally in the vascular system. This enhanced flexibility section consists of the type, corrugated structure, or other designs (both included in the appendices) described in U.S. Patent Application No. 15 / 647763, filed July 12, 2017, entitled “Highly Flexible, Twist-Resistant Catheter Shaft”, and U.S. Provisional Patent Application No. 62 / 599560, filed December 15, 2017, entitled “Highly Flexible, Twist-Resistant Catheter Shaft”.
[0150] The device may be designed such that its distal tip is flexible enough to reach and touch the thrombus for vacuum aspiration. The distal portion of the flow restrictor (such as a balloon) includes at least a portion of the distal portion, preferably the transition portion. There may be a further portion of the proximal transition portion of the flow restrictor.
[0151] The length of this flexible section may be varied to reach specific anatomical locations such as the distal internal carotid artery, the terminal internal carotid artery, proximal MI, distal MI, proximal M2, distal M2, basal carotid artery, or spinal vessels. This length also helps prevent the balloon from passing through the cavernous or petrosal portion of the ICA when the catheter tip can reach the target vessel. If the balloon inflates beyond these segments, it may result in damage to the vessel. The length of the flexible section may be 1 cm to 20 cm, preferably 3 cm to 15 cm.
[0152] The outer diameter of this flexible tip may differ from the outer diameter of the proximal section of the catheter. In one embodiment, the distal section has a larger diameter than the proximal section. In yet another embodiment, the outer diameter has a smaller diameter than the proximal section of the catheter. Variations such as a taper in the diameter of the distal section may also be used. A distal section with a different diameter helps to ensure access to specific blood vessels beyond the area where the balloon is positioned.
[0153] Figure 33 shows a device 350 with a flexible distal catheter tip 1351 that extends from a balloon 1352 and has a catheter main section 1353 extending proximal to a Y-shaped component 1354. Figure 10 shows the balloon 352, the inner expansion lumen 1360, and the outer expansion lumen 1361.
[0154] In one configuration, the outer layer of the balloon inflatable lumen may be reinforced in flexibility, and the inner layer of the balloon inflatable lumen may be a conventional structure comprising a single layer material, braided extrusion, coil extrusion, or other structure. These layers are schematically shown in Figure 34, including the inner layer 1360 and the outer layer 1361. In this way, the outer layer can minimize compromise in terms of flexibility, while the catheter's indentation capacity can be maintained by the inner layer. Furthermore, mechanically, as the ratio of the inner diameter to the outer diameter of the tube increases, torsional resistance decreases, thus this structure helps prevent twisting. Using a reinforced flexible outer structure solves the problem of conventional structures that are prone to twisting.
[0155] In another embodiment, a double-layered balloon catheter comprises both an inner and outer layer of a balloon inflation lumen with an enhanced flexibility structure. This would result in a highly flexible and torsion-resistant balloon catheter.
[0156] In other configurations, the proximal section may inflate the balloon using other structures such as a single-lumen design with vents and leak-proof seals, a coaxial lumen, or other designs.
[0157] It should be noted that balloon-guided catheters with long distal tips that can reach thrombi can be used as thrombectomy devices as follows: Angiography is performed to determine the location of the occlusion and the distance between the petrous or cavernous carotid artery and the occlusion. Select a balloon catheter with a distal tip length suitable for reaching the thrombus, and ensure that the balloon does not inflate beyond the pyramidal or cavernous carotid artery. The distal tip of the catheter is manipulated to reach the thrombus. Inflate the balloon to stop the flow and minimize alternative pathways that could reduce the effectiveness of the suction. The catheter lumen is evacuated to remove the blood clot. Once the thrombus is retrieved, another angiography is performed via a balloon-guided catheter or diagnostic catheter. Remove the balloon-guided catheter. The procedure is now complete.
[0158] It should be noted that using the distal tip with a diameter close to that of the target vessel increases the likelihood of complete thrombus removal.
[0159] In yet another embodiment, enhanced flexibility and torsional resistance of the catheter shaft can be achieved using a simple tubular structure having a corrugated structure instead of further helical wire support. The corrugation can be defined as adjacent circular indentations in the thickness of the tube wall, or as a continuous helical indentation, as shown in Figures 35 and 36, respectively. In these figures, the tip has an outer layer 1400 with a corrugation 1401 (Figure 35) and an outer layer 1450 with a shallower corrugation for desired flexibility.
[0160] The device may be designed so that its distal tip is flexible enough to reach and touch the thrombus for vacuum aspiration. Typical target vessels are M1, M2, M3, and distal ICA.
[0161] The distal tip must be long enough to reach the target vessel, but not long enough so that the balloon does not pass through the pyramidal portion of the internal carotid artery (known as C2). This is because the vessel and surrounding tissue beyond the pyramidal segment are susceptible to damage, which can lead to catastrophic consequences.
[0162] It is preferable to ensure that the balloon is positioned within the C1 segment of the carotid artery when inflated. It is also preferable that the balloon be distal to the external carotid artery to ensure effective blood flow restriction and / or regurgitation. The length of the flexible portion may be between 1 cm and 20 cm, preferably between 3 cm and 20 cm.
[0163] The left image in Figure 37 shows an angiographic diagram of the external carotid artery, common carotid artery, and internal carotid artery (ICA), including the C1 and C2 segments, while the right image shows the acceptable position of the balloon 2282 within catheter 2280 proximal to the distal tip 2281. The length of the distal tip of the catheter must be sufficient to reach the ligation while ensuring a safe position within or proximal to the C2 segment of the ICA.
[0164] Any or all of the above embodiments may be used to refine the transition from the rigidity of the proximal portion of the distal tip to the most distal portion.
[0165] The proximal shaft serves two functions and must have at least two lumens: one for balloon inflation, one for fluid and device delivery, and the main lumen for suction. Since the flexible tip requires only one lumen, it is likely to have a larger lumen than the proximal section.
[0166] In one embodiment, the inner diameter of the flexible tip is the same as the inner diameter of the proximal shaft. In another embodiment, the proximal and distal shafts have the same outer diameter, and the proximal shaft has two concentric lumens, with the diameter of the central lumen being smaller than the diameter of the flexible distal tip, as shown in Figure 38. This figure shows a balloon-guided catheter 2300 with a flexible corrugated distal tip 2302 and a balloon 2301. In this example, the inner diameter of the proximal shaft lumen 2303 is smaller than the inner diameter of the flexible corrugated distal tip 2302. The proximal and distal shafts have the same outer diameter.
[0167] In another embodiment, the inner diameter of the proximal shaft is the same as the inner diameter of the flexible distal tip. In yet another embodiment, the outer diameter of the distal tip is smaller than the outer diameter of the proximal shaft. The inner diameter of the distal tip may be the same as or smaller than the inner diameter of the proximal shaft. Figure 39 shows a catheter 1400 comprising a balloon 2401 and a distal portion 2402 having a smaller outer diameter than the proximal portion 2403.
[0168] In one configuration, the distal tip consists of a flexible waveform section distally and a non-waveform section proximal to proximal. Figure 40 shows catheter 1500 with a non-waveform proximal region 2501 of the distal region 2502.
[0169] In one configuration, as shown in Figure 41 for catheter device 2600, a radiopaque marker is located at the distal end of the flexible distal tip. Markers are also present immediately distal to or proximal to the balloon to define the balloon's position. Further intermediate-distal markers may be present within the distal tip to define a proximal region with increased rigidity that is unsuitable for placement distal to the C2 segment of the ICA.
[0170] In one configuration, the balloon catheter is suitable for use via direct carotid artery access. In this case, a shorter proximal shaft is ergonomically improved for the physician. In this example, the length of the catheter shaft proximal to the balloon should not exceed 40 cm, preferably not exceeding 30 cm.
[0171] Flow restriction using a large-diameter catheter by near-vascular occlusion or wedging. In the above-described embodiment, physicians can insert catheters more distally than when using conventional catheter techniques. Larger bore catheters can be placed. However, it may not be possible to place a larger catheter in the target vessel because the diameter of the vessel is smaller than the catheter itself. In this case, a larger catheter may be used to achieve flow restriction.
[0172] In some cases, additional vessels may be present to perfuse the treatment area. For example, in the case of the anterior cerebral artery, proximal occlusion using a balloon-guided catheter placed in the ICA does not obstruct blood flow to the target treatment site. This is also a problem in posterior stroke, where there are two important afferent vessels (left and right vertebral arteries) and the target treatment site is the basilar artery or posterior communicating artery.
[0173] In one embodiment, the system consists of "mother" and "daughter" catheters, and significant blood flow restriction or cessation may be achieved by positioning or pushing a large-bore, highly flexible mother catheter to a proximal vascular location at the target treatment site. A smaller daughter catheter is then delivered to the treatment site through the mother catheter. In this case, a proximal balloon for blood flow restriction is not required. Without pushing the catheter, if the vessel is nearly occluded, blood flow is also dramatically reduced. This is shown in Figure 42, where there is a large catheter 2702 and a small catheter 2703 for aspirating tubing 2701. The large-bore, highly flexible catheter can allow for the most distal blood flow cessation possible.
[0174] In other cases, such as embolization, flow restriction using a larger bore catheter may be advantageous. For example, in embolization where the primary concern is embolization of non-target vessels, further embolization procedures to occlude adjacent non-target vessels are often used. Non-target embolization can result in non-target vessel occlusion or delivery of the drug to non-target tissue. This can be avoided by positioning a large-bore, highly flexible catheter distal to the vessel supplying the target area for embolic delivery, such as by pushing the catheter tip in. Once the embolic agent is injected, the pushed-in state prevents backflow of the embolic agent and prevents non-target embolism. Furthermore, the pressure gradient within the vessel reflects the proximal injection pressure rather than hemodynamic pressure, allowing the physician to have complete control over embolic delivery.
[0175] Figure 43 shows such a configuration in catheter 2800 with distal portion 2801, where the left side illustrates the use of a small catheter that cannot reach the distal target vessel (right-side vessel) during drug or embolic agent delivery, and the resulting undesirable delivery to a non-target vessel (upper left vessel). The right-side diagram illustrates the use of a method in which a very flexible, large-diameter catheter is selected to effectively occlude the target vessel and can be positioned beyond the non-target vessel, resulting in embolic agent generation occurring only in the target vessel. It is preferable that the catheter be pushed into the target vessel.
[0176] Furthermore, the distal nature of the vessels targeted for embolization means that, today, often only microcatheters can enter the vessel. This limits the types of embolic agents that can be used (for example, if a larger 035 coil or plug is desired, or if the desired particles are packed into the only microcatheter that can enter the vessel, then 018 microcoils must be used). The technical success of these procedures (especially embolization of BPH) is also limited by the inability to place larger support catheters distally.
[0177] With or without a transition configuration, the wavy catheter section can be used as the proximal section of the catheter as an access sheath, providing controlled flexibility around specific bends, for example, around the iliac arch. These configurations can also be incorporated into more flexible urethral stent designs or Foley-style catheters, and can be incorporated for flexible endoscopes with wavy walls.
[0178] The device may be used to block blood flow prior to the precise delivery of an embolizing agent to a vascular system, tumor, or organ area.
[0179] Suction system with pressure control pump Aspiration has been shown to be safe for retrieving thrombi from the cerebrovascular system. However, the technique has some limitations. In particular, it often fails to remove thrombi at the targeted treatment site. This is especially true when the thrombus is hard, large in diameter, and long.
[0180] If the thrombus is not completely removed, the doctor will attempt to withdraw the catheter and associated thrombus from the patient under continuous vacuum. This procedure is risky, time-consuming, and means the doctor may lose access to the target vessel.
[0181] If, according to angiography, the physician determines that the target area has not been reperfused, further attempts are needed to retrieve the thrombus. Typically, up to five attempts, known as "passes," are required. On average, two attempts are needed. In 20% to 30% of cases, aspiration is unsuccessful despite multiple attempts, and the physician switches to using a stent retrieval device (Almandoz et al., 2015; Lapergue et al., 2017; Blanc et al., 2017; Moehlenbruch et al., 2016). This further increases the time and cost of the procedure.
[0182] When a physician withdraws the catheter towards the proximal access site (usually the femoral or radial artery), some or all of the thrombus may break apart. These fragments of the thrombus are known as emboli. Distal emboli, as evaluated by angiography or other imaging techniques, lead to poor reperfusion outcomes. Poor reperfusion, as defined on the TICI scale, is associated with poor patient recovery.
[0183] Another limitation of aspiration techniques is that it is not always possible to advance the catheter tip to the surface of the thrombus. This is due to the extreme tortuosity that may be present in the patient. In other words, often only small-diameter catheters, such as microcatheters, can reach the thrombus. Larger-diameter catheters are known to be more likely to aspirate thrombi, but they are often too rigid to move to the thrombus surface. In this case, the physician uses a small-diameter catheter, but the chances of successfully aspirating the thrombus are lower.
[0184] Depending on the inner diameter of the catheter and the characteristics of the thrombus (diameter, length, hardness / durometer, elasticity, etc.), there are limitations to the amount of thrombus that can be aspirated into the catheter lumen. At this limit, the catheter may become clogged. Catheters with larger lumens can aspirate more thrombus than catheters with smaller lumens without becoming clogged. During aspiration, the limit on the amount of thrombus that can be aspirated may be reached before a complete vacuum is achieved. This means that applying further vacuum after a certain limit has been reached does not necessarily increase the amount of thrombus aspirated. This is schematically illustrated in Figures 44(a) to 44(e), which show catheter tip 3500 being used to attempt aspiration of thrombus 3501. As illustrated, there is incomplete aspiration. Existing vacuum techniques (vacuum pumps and syringes) have limitations in that the applied vacuum is not designed to prevent clogging or maximize aspiration efficiency.
[0185] Based on the issues outlined above, it is desirable that the thrombus be removed from the target site in a single procedure. This saves time, reduces procedural complexity, and minimizes the possibility of thrombus fragmentation during collection.
[0186] A pump is disclosed for use in any embodiment in conjunction with a catheter as described above to aspirate thrombi or other material from blood vessels or other areas of the body. A suction device is schematically shown in Figure 45 and comprises a catheter 3500, a guide 3502, a tube 3503, and a pump and reservoir assembly 3504.
[0187] This invention utilizes control and / or changes in vacuum pressure and / or fluid displacement during suction to improve suction efficiency. Pressure changes and / or fluid displacement at the catheter tip can help achieve the following: - Prevent catheter blockage - Promote the dissociation and deformation of the thrombus, allowing it to pass through the lumen.
[0188] Pump 3504 may provide negative fluid displacement, thereby reducing the pressure (enabling a vacuum), or positive displacement, thereby increasing the pressure. The pump is connected to a catheter and can apply positive or negative pressure to the catheter lumen. The pump incorporates a sensor to measure the pressure in the catheter lumen.
[0189] The magnitude of this pressure can be used to determine whether a vacuum or pressurized signal should be applied to the catheter. Based on the measured pressure, the pump changes direction, thereby altering the pressure and fluid displacement.
[0190] In one embodiment schematically shown in the form of a phase diagram in Figure 46, the pump uses defined upper and lower limits to determine whether to apply vacuum or pressurization. These limits allow the catheter to circulate and remove at least some of the thrombus and, if necessary, discharge it. This deformation of the thrombus improves the efficiency of suction and prevents the catheter from becoming clogged.
[0191] For illustrative purposes, the initial pressure before the pump is activated in Figure 47(a) is defined as 0 mmHg (0 inch Hg) in all figures. In reality, due to blood pressure, a pressure other than zero exists. This can be in the range of 60 to 120 mmHg (2.4 to 4.8 inch Hg).
[0192] The pump continuously measures the pressure within the catheter lumen during the procedure. If the pump is stopped, this measurement will be the arterial pressure. Once the pump is activated and some vacuum begins to be drawn in, a negative pressure is measured (Figure 47(b)). If there is no occlusion or partial occlusion at the catheter tip, this is the nominal reading and represents the free flow of fluid through the catheter. As the catheter advances and engages with a thrombus, an increase in vacuum is observed (Figure 47(c)).
[0193] When the pump is first activated, a vacuum is applied, allowing the catheter to remove a portion of the thrombus (Figure 47(d)). As the vacuum increases further, more of the thrombus is removed (Figure 47(e)), but the increase in efficiency of thrombus removal with increasing vacuum pressure decreases (Figure 47(f)). For this reason, the pump reverses at a certain lower pressure limit (Figure 47(g)). The lower limit is defined so that a portion of the thrombus is aspirated in the vacuum, but not to the point of irreversible blockage. An important aspect would be to set the lower limit of the vacuum much higher than the full vacuum pressure of -760 mmHg to prevent the removal of thrombuses that are too large and could potentially block the catheter. In one embodiment, the lower limit is set between -100 mmHg and -200 mmHg. In another embodiment, the lower limit is set between -200 mmHg and -300 mmHg. In yet another embodiment, the lower limit is set between -400 mmHg and -500 mmHg. In another embodiment, the lower limit is set between -600 mmHg and -700 mmHg.
[0194] The direction of the fluid displacement of the pump is reversed. When reversed, the catheter begins to pressurize, and the pressure measured thereby increases (Figure 47(g)). As the catheter is pressurized (vacuum reversed), the load applied to remove the thrombus is reduced, thereby unloading the thrombus and even allowing part or all of the thrombus to be pushed distally toward the tip of the catheter (Figure 47(h)). During this loading / unloading, the thrombus dissociates. Because of this, it becomes more "free" within the catheter.
[0195] The pressure increases further until an upper limit is reached. In one embodiment, this upper limit is defined as the point at which the removed thrombus is not completely expelled from the catheter.
[0196] Further circulation of the thrombus between the lower and upper limits (Figures 47(i) to (j)) further dissociates the thrombus, allowing more of it to be removed by the same lower limit vacuum (Figure 47(m)), and ultimately leading to complete removal of the thrombus (Figure 47(n)).
[0197] In one embodiment, the upper limit is negative pressure. In another embodiment, the upper limit may be 0 mmHg. In yet another preferred embodiment, the upper limit is positive pressure (Figures 48(a) to (c)).
[0198] In the absence of a pressure signal from the pump, the presence of intravascular blood pressure means that there is a force supporting the delivery of material from the distal tip of the catheter to the pump. In one embodiment, an initial blood pressure measurement may be taken before the procedure is initiated. This reading may be used to calculate the exact upper limit required. Mean arterial pressure, systolic blood pressure, or diastolic blood pressure may be used. A novel aspect of this pump system is incorporating feedback into the pump algorithm to generate more effective pressure cycles; that is, the pump's ability to measure its state (e.g., pressure or fluid displacement) and continue or modify its operation.
[0199] In one embodiment, the applied pressure signal incorporates an oscillation or "shake" signal. The shake signal means applying pulse cycling between two pressure limits, as shown in Figures 50(a) and (b). The signal provides abrupt aspiration of the thrombus to improve delivery through the catheter by causing deformation and / or fragmentation of the thrombus. Another aspect is the incorporation of a ratio-based cycling of negative and positive pressure signals. An oscillation frequency may be defined that can cause the elastic modulus of the thrombus to exceed the thrombus's modulus, thereby fragmenting the thrombus in the catheter and facilitating delivery. This additional vibration is shown in the phase diagram in Figure 49.
[0200] In one embodiment, the oscillating signal may be initiated after a predetermined number of cycles. In another embodiment, the oscillating signal may be used until the pressure returns to blood pressure. In this case, the material in the catheter can flow effectively without significant resistance. In yet another embodiment, the oscillating signal may be initiated based on a specific pressure indicating catheter occlusion or partial occlusion, and terminated based on a measurement of the pressure in the catheter indicating free flow or partial occlusion.
[0201] These figures generally show a triangular wave of pressure against time, but it should be noted that this is not necessarily the case in practice. The graphs are intended to show the directional change of pressure initiated and controlled by the present invention. For example, depending on the characteristics of the thrombus and the speed of pump initiation or retrograde movement, the signal may take the shape of a square, sawtooth, or sinusoidal wave. Furthermore, the resulting pressure-time relationship may not have any repetitions at all.
[0202] In one embodiment, the present invention includes both vibration or oscillation signals in a vacuum and a positive pressure signal. This is schematically shown in Figures 51(a) and (b). In yet another embodiment, the system may incorporate only vacuum vibration.
[0203] The range between the lower and upper pressure limits can improve the efficiency of thrombus transport compared to static aspiration techniques. In one embodiment, the amount of thrombus that can be removed is maximized in a single cycle. It is preferable to set the pressure lower limit accordingly. In another embodiment, it is preferable that the pressure lower limit is set so as not to maximize the amount of thrombus that can be removed in a single cycle, but rather to represent an intermediate state between small and maximum thrombus removal. Actual figures may be added in the future based on experiments.
[0204] In another embodiment, the lower limit may be defined in real time. In one embodiment, a change in the rate of pressure change during a vacuum cycle may be used. For example, when a catheter becomes clogged, the vacuum pressure generally increases rapidly. This sudden change in vacuum pressure can be used as a signal to switch the direction of the pump. Similarly, the upper pressure limit may be defined based on a sudden change in pressure during a pressurizing cycle. In one embodiment, this may be defined to identify a condition in which the catheter is clogged.
[0205] It should be understood that upper and lower limits can be defined by a combination of the rate of change in pressure, a specific pressure value, or a combination of both.
[0206] In other configurations, a flow displacement or flow meter is incorporated. This can be used to define upper and lower limits for establishing the pump direction (suction or vacuum). In one embodiment, the flow meter can detect whether there is any fluid displacement that suggests a blockage in the catheter.
[0207] In another embodiment, the pump may alternately feed and aspirate the catheter using positive and negative fluid displacements. In one embodiment, the ratio of feed-to-aspirate cycles may be between 0.01 and 0.99. Preferably, the ratio would be between 0.1 and 0.9, or more preferably between 0.4 and 0.9.
[0208] In one configuration, the pump is a sterile unit that can be used within a sterile field or on a patient table adjacent to the patient. This allows physicians to perform all operations without requiring technicians outside the sterile area. The unit may be disposable after single use.
[0209] In one configuration, the pump incorporates a peristaltic pump mechanism, eliminating blood contact with the pump components. The pump may also incorporate a reservoir for collecting aspirated fluid. Figures 53(a) and 53(b) show the pump and its components. The housing connecting the tubing, on / off switch, battery pack, pulsating pump, and motherboard is shown. A pressure sensor is connected to the lumen of the tubing connected to the catheter, allowing for pressure measurement within the catheter.
[0210] In one embodiment, the pump incorporates a series of LEDs or indicators. These are intended to provide feedback to the physician based on the state of interaction between the catheter tip and the thrombus. This is provided by the pressure within the catheter, for example, the pressure range related to free flow within the catheter, or partial occlusion, complete occlusion, aspiration, or blockage.
[0211] Furthermore, the indicator may be used to show a physician that the pump is in a vibrating or oscillating state.
[0212] A method is disclosed in which physicians use feedback from indicators to define the necessary adjustments to the catheter tip.
[0213] Position the tip of the catheter adjacent to the thrombus. Activate the pump. If the pump indicates free flow, move the catheter distally to further engage with the thrombus. If the catheter is aspirating due to a partial or complete blockage, the physician waits until the pump is free to flow again. The physician then moves the tip of the catheter distally again to engage with the next thrombus. In this way, the thrombus can be removed from the entire vessel. If the pump is blocked, the physician may be given a signal that conventional catheter removal techniques may be appropriate.
[0214] The embodiments described in this application are generally intended to allow physicians to access areas of the body that offer difficult anatomical structures using highly flexible, corrugated catheters. The catheter design is optimized by transitions, as well as the addition of other elements such as flow limiters and highly effective pumps. The ability to create larger catheters while maintaining controlled flexibility in these embodiments enables improved treatments such as thrombus removal and embolic delivery to the body.
[0215] The present invention is not limited to the embodiments described and may be modified in structure and details.
Claims
1. A catheter (1) comprising a jacket defining a lumen, and a helical support made of the jacket material along at least a portion of its length, wherein the catheter comprises at least a proximal portion (2) and a distal portion (3), the distal portion having a wavy outer surface (15) along at least a portion of its length.
2. The catheter according to claim 1, wherein the catheter comprises a transition portion (53, 54, 204, 782) between the proximal portion (1152) and the distal portion (1153), and the transition portion (1154) has a bending rigidity smaller than that of the distal portion and greater than that of the proximal portion.
3. The catheter (780) according to claim 2, wherein the transition portion has a waveform outer surface, and at least some of the waveforms on the waveform outer surface have a depth smaller than the waveforms on the surface of the distal portion.
4. The catheter according to claim 2 or 3, wherein the transition portion has higher bending rigidity than the distal portion due to the waveform having a different pitch.
5. The catheter according to any one of claims 2 to 4, wherein the transition portion has a greater width due to the waveform, and has higher bending rigidity than the distal portion.
6. The catheter according to any one of claims 2 to 5, wherein the transition portion is configured to provide a stepwise controlled rigidity transition between the distal portion and the proximal portion.
7. The catheter according to any one of claims 2 to 6, wherein the transition portion has a waveform depth smaller than that of the distal portion (782).
8. The catheter according to any one of claims 2 to 7, wherein the transition portion includes a further outer tubular layer (801) along at least a portion of its length, and the outer tubular layer is not present in the distal portion.
9. The catheter according to claim 8, wherein the outer tubular layer has a thickness of 0.05 mm or less, preferably 0.025 mm or less, and more preferably 0.0125 mm or less.
10. The catheter according to claim 8 or 9, wherein the outer tubular layer is a PET composition.
11. The catheter according to any one of claims 2 to 10, wherein in the transition portion, an increase in rigidity is achieved by a change in the thickness of the jacket.
12. The catheter according to any one of claims 2 to 11, wherein the jacket includes an inner liner (1071) defining the lumen, and in the transition portion, an increase in rigidity is achieved by a change in the thickness of the outer jacket material (1073, 1074) around the helical support or the inner liner.
13. The catheter according to any one of claims 1 to 12, wherein the jacket includes an inner liner (1071) defining the lumen, and the thickness of the inner liner is between 0.025 mm and 0.3 mm, preferably between 0.05 mm and 0.2 mm.
14. The thickness of the jacket is between 0.025 mm and 0.30 mm, preferably 0.05 mm. A catheter according to any one of claims 1 to 13, wherein the length is between m and 0.2 mm.
15. The catheter according to any one of claims 1 to 14, wherein the width (W) of the waveform is at least 10% of the thickness of the jacket, and preferably the width of the waveform is at least 20% of the thickness of the jacket.
16. The catheter according to any one of claims 1 to 15, wherein in the distal portion, the width of the waveform is at least 60% of the thickness of the jacket.
17. The catheter according to any one of claims 1 to 16, wherein in the distal portion, the width of the waveform is at least 60% of the thickness of the jacket, and the depth of the waveform is at least 70% of the thickness of the jacket.
18. The catheter according to any one of claims 1 to 17, wherein the jacket includes an inner liner (1071) defining the lumen, the thickness of the inner liner being constant along the length of the distal portion, and the thickness of the outer jacket being greater in at least one region.
19. The catheter according to any one of claims 2 to 18, wherein the thickness of the jacket increases at least once toward the proximal end along the length of the distal and / or transitional portion of the catheter.
20. The catheter according to any one of claims 2 to 19, wherein the transition portion has a controlled change in rigidity resulting from a plurality of layers (1073, 1074) stacked in an alternating configuration, with at least one tubular layer terminating proximal to the end of another tubular layer.
21. The catheter according to any one of claims 1 to 20, wherein the most distal end (1050) of the distal portion is provided by a returned portion of a jacket tubular layer that forms a surface continuous with the distal end of the distal portion, and the layer is folded back and overlaps at the distal end.
22. The catheter according to claim 21, wherein the returned layer (1051) overlaps the helical support.
23. The catheter according to any one of claims 1 to 22, wherein the distal portion includes an extension (1082) of a tubular layer that extends distally from the other layer and the helical support and is folded back to form a distal edge, thereby providing a distal extension with lower rigidity.
24. The catheter according to claim 23, wherein the jacket includes an inner liner defining the lumen, and the extensions (1072, 1082) are all or part of the inner liner.
25. The catheter according to claim 23 or 24, wherein the extension has a length in the range of 0.5 mm to 5.0 mm, more preferably between 0.5 mm and 0.3 mm.
26. The catheter according to any one of claims 2 to 25, wherein the transition portion includes a region without waveforms.
27. The catheter according to any one of claims 2 to 26, wherein the jacket includes an inner liner defining the lumen, and the transition portion includes a joint (1154) between the inner liner and the outer jacket material.
28. The catheter according to claim 27, wherein the joint is located between an inner liner made of ePTFE material and an outer jacket made of PTFE material.
29. The catheter according to any one of claims 2 to 28, wherein the transitional jacket includes lap joints (1207, 1208) between concentric tubular layers.
30. The catheter according to claim 29, wherein the lap joint is located between two tubular layers of ePTFE material and one tubular layer of PTFE material.
31. The catheter according to claim 29 or 30, wherein the lap joint has a length between 1 mm and 30 mm.
32. The catheter according to any one of claims 2 to 31, wherein the degree of waveform in the transition portion is gradually changed toward the proximal portion to achieve increased rigidity, the jacket includes an inner liner, the inner liner extends distally and terminates before the most distal region of the distal portion, the inner liner is an ePTFE composition, and at least a portion of the proximal portion is not waveform.
33. The catheter according to any one of claims 1 to 32, wherein the distal portion includes a region of the helical support floating within the jacket material.
34. The catheter according to any one of claims 1 to 33, wherein the jacket comprises a material of an ePTFE composition surrounding at least a portion of the helical support, the thickness of the ePTFE material increases distally, and the jacket comprises PTFE proximal to the ePTFE material.
35. The catheter according to any one of claims 2 to 34, wherein the transition portion includes a distal region in which the helical support floats between ePTFE layers of the jacket material and a proximal region in which the helical support is embedded in the jacket material.
36. The catheter according to any one of claims 1 to 35, wherein at least one region of the helical support (6) is embedded in a jacket material, thereby restricting its movement relative to the jacket material.
37. The catheter according to claim 36, wherein the helical support (752) is embedded in the jacket within a matrix (753) of a continuous porous flexible material such as ePTFE, or in the jacket within a matrix of an incompressible material such as urethane.
38. The catheter according to any one of claims 1 to 37, wherein the jacket includes a liner defining the lumen, and the jacket includes at least one layer around the liner and a filler (851 / 854) between the inner liner and the jacket layer, or between a plurality of tubular layers of the jacket material.
39. The catheter according to claim 38, wherein the filler is used solely to partially fill the space around the helical support.
40. The catheter according to claim 38 or 39, wherein the filler completely fills the helical channel around the helical support.
41. The catheter according to claim 40, wherein the filler is melted to form a layer of material on all surfaces within the helical channel.
42. The catheter according to any one of claims 1 to 41, wherein the jacket includes an inner liner defining the lumen, and the helical channel of the jacket includes a molten and cooled filler between the helical support and the jacket, and an adhesive chemical bond is formed at the interface with the filler.
43. The catheter according to any one of claims 1 to 42, wherein the jacket includes an inner liner defining the lumen, and the inner liner and the outer tubular layer of the jacket are bonded to each other by sintering.
44. The catheter according to any one of claims 1 to 43, wherein the jacket includes an inner liner (5) that defines the lumen.
45. The catheter according to claim 44, wherein the inner liner extends between the distal portion and the proximal portion.
46. The catheter according to claim 44 or 45, wherein the diameter of the inner liner is constant and the tubular surface is smooth.
47. The catheter according to any one of claims 44 to 46, wherein the inner liner comprises a low-friction material such as ePTFE.
48. The catheter according to any one of claims 44 to 47, wherein at least in the distal portion, the jacket material comprises polyurethane (e.g., Pellethane 80AE) and the inner liner comprises ePTFE.
49. The catheter according to any one of claims 44 to 48, wherein the outer tubular layer of the jacket is bonded to the inner liner or to a bonding layer around the inner liner.
50. The catheter according to claim 49, wherein the distal portion comprises a bonding layer for attaching the inner liner to the outer jacket material.
51. The catheter according to claim 50, wherein the bonding layer comprises a fluoropolymer layer sputter-coated with FEP powder, and a bond is formed between the coated fluoropolymer layer and the second layer under heat and pressure.
52. The catheter according to claim 50 or 51, wherein the binding layer comprises FEP or urethane.
53. The catheter according to any one of claims 44 to 52, wherein the helical support is bonded to the outer surface of the inner liner or to a bonding layer around the liner.
54. The catheter according to any one of claims 44 to 53, wherein the outer tubular layer of the jacket in the proximal portion is sandwiched between the inner liner and another outer tubular layer.
55. The inner liner of the distal portion is formed from a different material than the inner liner of the proximal portion, and the liner material has small slits or windows formed in one layer. The catheter according to any one of claims 44 to 54, wherein the joined lengths of the outer jacket are joined by pulling through the slit or window, and the helical support is wrapped around the outside of these layers to bring them together.
56. The catheter according to any one of claims 44 to 55, wherein the helical support (771) is separated from or moved away from the inner liner so as not to be exposed to the liner.
57. The catheter according to any one of claims 1 to 56, wherein the waveform on the surface of the jacket is at least 5% of the thickness of the jacket.
58. The catheter according to any one of claims 1 to 57, wherein in at least one region, the width of the waveform on the surface of the catheter is at least 10% of the thickness of the jacket.
59. The catheter according to any one of claims 1 to 58, wherein in at least one region of the distal portion, the width of the waveform is at least 30% of the wall thickness.
60. The catheter according to claim 1, wherein the depth of the waveform is between 5% and 95% of the thickness of the jacket in at least one region of the catheter, and preferably the depth of the waveform is at least 20% of the thickness of the wall of the catheter in at least one region of the catheter.
61. The catheter according to any one of claims 1 to 60, wherein the depth of the waveform changes along the waveform region of the catheter from a relatively large depth distally to a relatively small depth proximally.
62. The catheter according to any one of claims 1 to 61, wherein the width of the waveform changes along the waveform region of the catheter from a relatively large depth distally to a relatively small depth proximally.
63. The catheter according to any one of claims 2 to 62, wherein in the transition portion, the depth of the waveform changes from a relatively large depth distally to a relatively small depth proximally, and the width of the waveform is constant in the region.
64. The catheter according to any one of claims 1 to 63, wherein the waveform represents the effect of a circular helical scintillator wire wound around the jacket material during manufacturing.
65. The catheter according to claim 64, wherein the waveform represents the effect of a circular helical scintillator wire wound to a depth of at least 50% of the jacket thickness, from a depth and width where there is no waveform and no influence.
66. The catheter according to claim 65, wherein the waveform represents the effect of a circular helical scintillator wire wound to a depth of at least 70% of the jacket thickness, from a depth and width where there is no waveform and no influence.
67. The catheter according to claim 66, wherein the waveform represents the effect of a circular helical wire wound to a depth of at least 95% of the jacket thickness, from a depth and width where there is no waveform and no influence.
68. The catheter according to any one of claims 44 to 67, wherein the inner liner terminates in a region proximal to the distal end of the distal portion.
69. The catheter according to claim 68, wherein the region (760) of the inner lumen of the catheter without the inner liner (763) has a hydrophilic or hydrophobic coating to improve lubricity.
70. The catheter according to claim 68 or 69, wherein the unlined portion is at least 1 cm long, preferably at least 2 cm long.
71. The catheter according to any one of claims 67 to 70, wherein the abrupt change in bending stiffness at the end of the liner is reduced by a change in the waveform parameter or by cutting the liner with an angled notch.
72. The catheter according to any one of claims 68 to 71, wherein the region of the unlined jacket material proximal to the liner has fewer waveforms than the distal and proximal regions of the unlined jacket.
73. The catheter according to any one of claims 68 to 72, wherein the corrugated region of the lined jacket adjacent to the region of the unlined jacket has a longer pitch than the region of the unlined jacket.
74. The jacket (783) has a proximal portion (784) of the catheter proximal portion without a waveform and a distal portion (785) of the catheter distal portion having a waveform, and the inner liner (783) terminates proximal to the distal end (786). The catheter according to any one of claims 44 to 73.
75. The catheter according to any one of claims 2 to 74, wherein the jacket material comprises regions of different materials having different durometer values.
76. The catheter according to any one of claims 1 to 75, wherein the catheter has a plurality of radiopaque markers (1270) along its length, and optionally, at least a portion of the helical support is provided with radiopaque markers.
77. The catheter according to claim 76, wherein the helical support comprises a radiopaque material such as platinum wire.
78. The catheter according to claim 76 or 77, wherein the helical support (6) comprises a stretched nitinol tube or wire filled with a radiopaque material.
79. The catheter according to claim 76, 77, or 78, wherein the helical support (1281) contains at least 10 w / w% platinum.
80. The catheter according to any one of claims 76 to 79, wherein the radiopaqueness of the distal portion is enhanced by having a reduced helical pitch length.
81. The catheter according to any one of claims 1 to 80, wherein in at least a portion of the length of the catheter, the width of the waveform is 50% or less of the pitch of the waveform.
82. In at least a portion of the length of the catheter, the width of the waveform is equal to the pitch of the waveform. A catheter according to any one of claims 1 to 81, wherein the waveform width is between 5% and 49%, and more preferably between 15% and 45% of the pitch of the waveform.
83. The catheter according to any one of claims 1 to 82, wherein in at least a portion of the length of the catheter, the width of the waveform is between 20% and 45% of the pitch of the waveform.
84. The catheter according to any one of claims 1 to 83, wherein in at least a portion of the length of the catheter, the width of the waveform is at least 10% of the thickness of the jacket.
85. The catheter according to any one of claims 1 to 84, wherein in at least a portion of the length of the catheter, the width of the waveform is at least 20% of the thickness of the jacket.
86. The catheter according to any one of claims 1 to 85, wherein in the most distal region of the distal portion, the width of the waveform is at least 60% of the thickness of the jacket.
87. The catheter according to any one of claims 1 to 86, wherein in the most distal region of the distal portion, the width of the waveform is at least 60% of the wall thickness, and the depth of the waveform is at least 70% of the wall thickness.
88. The catheter according to any one of claims 1 to 87, wherein the ratio of the width of the waveform to the depth of the waveform is at least 0.5 in at least one region of the catheter.
89. A method for manufacturing a catheter according to any one of claims 1 to 88, The method for the jacket involves arranging a membrane on a helical structure, applying heat to the membrane so that it reflows and forms around the helical structure, winding a tensioned scint wire around the outside of the membrane and pushing it into the grooves between each loop of the helical structure, heat-setting the membrane to fix the waveform in place, and unwinding the tensioned scint wire to leave the waveform.
90. The method according to claim 89, wherein the jacket comprises a fluoropolymer, and the fluoropolymers are bonded to each other and / or to other polymers at bonding interfaces.
91. The method according to claim 89 or 90, wherein a chemical treatment is applied to the interface using an etching solution.
92. The method according to claim 91, wherein the etched fluoropolymer is coated with a thin layer of urethane such as ChronoFlex, and when heat is applied, this layer flows and acts to bond the fluoropolymer to a second etched fluoropolymer layer or another polymer layer.
93. The method according to any one of claims 89 to 92, comprising the steps of: providing the helical support (752) within a polymer jacket (753) bonded to a liner (751) to form a base assembly; positioning an outer liner on the jacket coil that is not bonded to the polymer jacket; winding the scintillating wire helically around the outside of the outer liner under tension to give it a corrugated shape; heating the material to reflow or temper it to set the material into a corrugated shape; removing the scintillating wire (810); and peeling off the outer liner.
94. A suction device (1350) comprising a catheter (1353) and a flow restrictor (1352) according to any one of claims 1 to 88, wherein the distal portion (1351) is distal to the flow restrictor.
95. The suction device according to claim 94, wherein the catheter comprises a transition portion (1400) between the proximal portion and the distal portion, the transition portion having a bending rigidity smaller than that of the distal portion and greater than that of the proximal portion, and at least a portion of the transition portion extends distal to the flow limiter.
96. The suction device according to claim 94 or 95, wherein the flow limiter comprises a balloon (1352), the balloon being configured to inflate and block blood flow before aspirating a thrombus to the distal portion of the catheter.
97. The length of the distal portion (1351) is suitable for reaching specific anatomical locations such as the distal internal carotid artery, the terminal portion of the internal carotid artery, proximal M1, distal M1, proximal M2, distal M2, base of the brain, or vertebral vessels, and the flow limiter remains within or proximal to the C1 segment of the ICA, as described in any one of claims 94 to 96.
98. The suction device according to any one of claims 94 to 97, wherein the outer diameter of the distal portion (2402) is different from the outer diameter of the proximal portion (2403) of the catheter.
99. The suction device according to any one of claims 94 to 98, wherein the distal portion (2402) has a larger inner diameter than the proximal portion (2403).
100. The suction device according to any one of claims 94 to 99, wherein the diameter of the distal portion and the proximal portion are tapered.
101. The suction device according to any one of claims 94 to 100, further comprising a balloon expansion lumen (2403), wherein the outer layer of the balloon expansion lumen is more flexible than the inner layer of the balloon expansion lumen.
102. The suction device according to any one of claims 94 to 101, wherein the catheter comprises a proximal portion (2301) having at least two lumens, including a first lumen (2403) for balloon inflation and a second lumen for delivery of fluid and the device, and the distal portion (2302) is for suction.
103. The suction device according to any one of claims 94 to 102, wherein the distal portion of the lumen has an internal width dimension greater than the internal width dimension of the second lumen of the proximal portion.
104. The suction device according to claim 102 or 103, wherein the first and second lumens of the proximal portion are concentric.
105. The aspiration device according to any one of claims 94 to 104, wherein the device is for direct carotid artery access, and the length of the catheter proximal to the flow limiter is less than 40 cm, preferably less than 30 cm.
106. The suction device according to any one of claims 94 to 105, wherein the flow limiter comprises a portion of the proximal portion of the catheter.
107. The catheter comprises a first (2702) and a second (2703) shaft, The suction device according to any one of claims 94 to 106, wherein the first shaft is configured to perform significant flow restriction at a vascular location proximal to the target treatment site, and the second catheter shaft has a smaller diameter and can pass through the first catheter shaft to the treatment site.
108. The suction device according to any one of claims 94 to 107, wherein the flow limiter includes a funnel that opens distally.
109. The suction device according to any one of claims 94 to 108, wherein the flow limiter is deployable or activatable but remains attached to the catheter.
110. The suction device according to claim 109, wherein the flow limiter is a deployable funnel, the open side of the funnel facing distally, and the catheter is movable proximal with the funnel while the funnel continues to perform flow limiting.
111. A suction device according to any one of claims 94 to 110, comprising the steps of deploying the device according to any one of claims 94 to 110 into a patient's blood vessel, passing the distal portion to a thrombus in the blood vessel, blocking blood flow with the flow limiter, and creating a vacuum in the catheter to aspirate the thrombus to the distal portion.
112. The method according to claim 111, wherein the method is The steps include performing angiography to determine the location of the occlusion, or the distance between the petrous portion or cavernous carotid artery and the occlusion, The steps include selecting a catheter having a distal portion length suitable for reaching the thrombus causing the occlusion and such that the flow restrictor does not extend beyond the carotid artery, and having a distal tip with an outer diameter that comfortably fits the target vessel, The steps include passing the distal portion of the catheter to the thrombus, The steps include activating the flow limiter so that the flow can be stopped and minimizing any other flow paths that may reduce the effectiveness of the suction, The steps include creating a vacuum in the lumen of the catheter and aspirating the thrombus, If the thrombus is recovered, the next step is to perform another angiography via a balloon-guided catheter or diagnostic catheter. A method comprising the step of removing the catheter.
113. A suction system (3500) comprising a catheter according to any one of claims 1 to 88, a pump (3504) connected to the proximal portion (3503) of the catheter, and a control unit configured to change the suction pressure during thrombus aspiration.
114. The suction system according to claim 113, wherein the system comprises a lumen pressure sensor, and the control unit is configured to change the suction pressure according to the detected pressure in the catheter lumen.
115. The suction system according to claim 113 or 114, wherein the system comprises a lumen fluid flow sensor, and the control unit is configured to change the suction pressure according to the detected fluid displacement in the lumen.
116. The suction system according to any one of claims 113 to 115, wherein the control unit is configured to improve the efficiency of suction by preventing blockage of the catheter and / or to facilitate the dissociation and deformation of the thrombus so that it can pass through the lumen.
117. The suction system according to any one of claims 113 to 116, wherein the control unit is configured to provide a vacuum or positive pressure based on the measured pressure and to change the direction to change the pressure and fluid displacement.
118. The suction system according to any one of claims 113 to 117, wherein the control unit defines upper and lower limits for pressure or displacement to determine whether to apply vacuum or pressurize.
119. The suction system according to any one of claims 113 to 118, wherein the control unit is configured to periodically collect thrombi into the catheter and, if necessary, to discharge at least a portion of the thrombi, thereby causing deformation of the thrombi, improving the efficiency of thrombosis, improving the efficiency of suction, and preventing the catheter from becoming clogged.
120. The control unit is configured to initiate a vacuum and measure a negative pressure, which, in the absence of occlusion or partial occlusion of the catheter tip, is a nominal reading representing the free flow of fluid through the catheter, and as the catheter advances and engages with a thrombus, an increase in the vacuum is observed, according to any one of claims 113 to 119.
121. The suction system according to any one of claims 113 to 120, wherein the control unit is configured to increase the vacuum to remove more thrombi and to reverse at a lower pressure limit, the lower pressure limit being set higher than a complete vacuum pressure so that a portion of the thrombi is aspirated into the vacuum but not to the extent that the thrombi irreversibly clog the catheter.
122. The suction system according to claim 121, wherein the control unit is configured to set the lower limit between -100 mmHg and -200 mmHg, preferably between -200 mmHg and -300 mmHg, more preferably between -400 mmHg and -500 mmHg, and more preferably between 600 mmHg and -700 mmHg.
123. The suction system according to any one of claims 113 to 122, wherein the control unit is configured to reverse the direction of fluid displacement of the pump, thereby increasing the measured pressure and unloading the thrombus.
124. The control unit is configured to push part or all of the thrombus distally toward the catheter tip, thereby understanding the blood clot and making it more free within the catheter, according to any one of claims 113 to 123.
125. The suction system according to any one of claims 113 to 124, wherein the control unit is configured to increase the pressure until it reaches a detected pressure limit.
126. The aspiration system according to claim 125, wherein the control unit is configured to set the upper limit so that the collected thrombus is not completely discharged from the catheter.
127. The suction system according to claim 124 or 126, wherein the control unit is configured to store an initial blood pressure measurement before the procedure is initiated, read this pressure, and calculate the upper limit.
128. The suction system according to any one of claims 113 to 127, wherein the control unit is configured to use the patient's mean blood pressure, systolic blood pressure, or diastolic blood pressure for pump control.
129. The control unit is configured to apply pulse cycling between two pressure limits or a ratio cycling of a negative pressure signal and a positive pressure signal using a defined vibration frequency that can induce elasticity, wherein a vibration frequency exceeding the elastic modulus of the thrombus is defined, thereby fragmenting the thrombus in the catheter to facilitate delivery, according to any one of claims 113 to 128.
130. The suction system according to any one of claims 113 to 129, wherein the control unit is configured to initiate a vibration signal for a predetermined number of cycles or until the pressure returns to blood pressure.
131. The suction system according to any one of claims 121 to 130, wherein the control unit is preferably configured to set the lower limit in real time by a change in the rate of change of pressure.
132. The suction system according to any one of claims 113 to 131, wherein the control unit is configured to recognize a sudden change in the pressure of the catheter as a signal to switch the direction of the pump.
133. The suction system according to any one of claims 113 to 132, wherein the control unit is configured to receive feedback from a flow meter.
134. The suction system according to any one of claims 113 to 133, wherein the control unit is configured to alternately feed and aspirate the catheter using positive and negative fluid displacements.
135. The suction system according to any one of claims 113 to 134, wherein the system comprises an output indicator, and the control unit is configured to provide feedback to the physician based on the catheter-thrombus interaction state, for example, the pressure in the catheter, the pressure range related to free flow in the catheter, or partial or complete occlusion, suction or blockage, and to indicate to the physician that the pump is in a vibrating or oscillating state.