Suction catheter systems for applying effective aspiration in remote vessels, especially cerebral arteries

JP2025172958A5Pending Publication Date: 2025-12-19ROUTE 92 MEDICAL INC
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Patent Information

Application Number
JP2025150325
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2017-12-20
Filing Date
2025-09-10
Publication Date
2025-12-19

AI Technical Summary

Technical Problem

Existing aspiration catheters face difficulties in navigating the complex and tortuous paths of cerebral arteries to effectively remove blood clots, which are critical for restoring blood flow and mitigating ischemic injury, particularly due to the time-sensitive nature of stroke treatment.

Method used

An aspiration catheter system comprising a guide catheter and a slidable suction extension with a non-circular cross-section connecting section that allows for adjustable positioning within the guide catheter lumen, enabling effective suction and clot removal, combined with a pressure sensor for real-time monitoring.

Benefits of technology

Facilitates rapid and safe removal of blood clots from small, tortuous cerebral arteries by providing powerful suction and real-time pressure feedback, enhancing procedural efficiency and safety.

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Abstract

To provide a suction catheter system with a suction extension part.SOLUTION: A suction extension part is interfaced with a guide catheter to form a continuous suction lumen extending through a portion of the guide catheter and through the suction extension part. The suction extension part can be positioned by tracking the suction nozzle through a vessel while moving a proximal portion of the suction extension part within a lumen of the guide catheter. The suction extension part can include a connecting section 400 with a non-circular cross section for interfacing with the inner lumen of an engagement section of the guide catheter. A tubular body of the guide catheter can have a reduced diameter distal section that can be useful to restrain the movement of the suction extension part. Proximal fittings attached to the guide catheter can facilitate safe removal of the catheter system from the patient by allowing for the removal of some or all of an annular extension part of the suction extension part from the guide catheter behind a hemostatic seal.SELECTED DRAWING: Figure 21
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Description

[Technical Field]

[0001] The present invention relates to catheters designed for use in body vessels having tortuous paths, such as the cerebral arteries. In particular, the present invention relates to an aspiration catheter system including a guide catheter and an aspiration extension slidably disposed within the guide catheter. [Background technology]

[0002] Treatment of intracerebral blood vessels is becoming a popular approach for ameliorating acute stroke events or other interventions within intracerebral blood vessels. Intracerebral blood vessels can follow particularly complex and tortuous paths, making it more difficult to reach target locations within these vessels. Other blood vessels in a patient may also follow tortuous paths, making it more difficult to reach target locations.

[0003] Aspiration catheters have been used in connection with the removal of blood clots from blood vessels. Furthermore, a significant reason for ischemic injury during percutaneous procedures can be the formation of blood clots, which clog smaller, more peripheral blood vessels. Aspiration catheters used alone or in conjunction with embolic protection devices can be effective in capturing blood clots that form during procedures. However, it remains difficult to deliver effective instruments to the small blood vessels of the brain to remove and / or capture blood clots.

[0004] Ischemic attacks can be caused by blood clots in cerebral arteries. Clots can block blood flow, which can cut off brain tissue from its blood supply. The clots can be localized thrombi or emboli that have traveled to the site of the vascular occlusion from elsewhere. Time is a critical factor to mitigate the effects of the blockage of blood supply to tissue. It is particularly desirable to restore blood flow in as short a time as possible. The cerebral arterial system is also a highly branched vascular system connected to the internal carotid artery. The cerebral arteries are highly circuitous. To be positioned within a cerebral artery, a therapeutic device must be able to navigate along the circuitous path provided by the cerebral artery. Summary of the Invention [Means for solving the problem]

[0005] In a first aspect, the present invention relates to a method for removing a blood clot from a patient's blood vessel using an aspiration catheter system including a proximal attachment including a hemostatic valve; a guide catheter having a distal end and a proximal end connected to the proximal attachment; and an aspiration extension including a tubular extension having a distal end and a proximal end, a connecting section at the proximal end of the tubular extension, and a control structure extending proximally from the tubular extension. The method can include delivering aspiration through an aspiration lumen extending from the distal end of the tubular extension to the proximal end of the guide catheter, wherein the distal end of the tubular extension extends from the distal end of the guide catheter. Generally, during at least a portion of the delivery of the aspiration, the connecting section is within the guide catheter and the control structure extends from the proximal end of the guide catheter. The method also includes the step of withdrawing the tubular extension from the guide catheter lumen while delivering negative pressure from the proximal fitting into the suction lumen, wherein the connecting section is withdrawn into the proximal fitting distal to the hemostatic valve, whereby the suction lumen then extends entirely along the lumen of the guide catheter.

[0006] In a further aspect, the present invention relates to an aspiration catheter system including a guide catheter including a tubular shaft with a central lumen having a proximal end and a distal opening, a suction extension, and a proximal fitting. The suction extension can include a connecting section with a central lumen, the tubular extension, and a control structure. The tubular extension can include a tube connected to the connecting section and extending distally from the connecting section through the central lumen of the connecting section to form a continuous lumen through the tube of the tubular extension, and the control structure can include an elongated structure extending proximally from the connecting section. The connecting section can be configured to slide within at least a portion of the central lumen of the guide catheter to change the relative position of the connecting section within the central lumen so that at least a portion of the tubular extension extends out of the distal opening of the tubular shaft with an appropriate configuration of the connecting section. The proximal fitting can generally be connected to the proximal end of the guide catheter and can include a branch manifold, at least one branch of which has a hemostatic valve and a tubular segment for providing a length between the hemostatic valve and the proximal end of the tubular shaft of the guide catheter that is at least as long as the length of the suction extension tubing.

[0007] In another aspect, the present invention relates to an aspiration catheter system comprising a guide catheter including a tubular shaft with a central lumen having a proximal end and a distal opening, a suction extension, and a proximal fitting. The suction extension can include a connecting section with a central lumen, a tubular extension, and a control structure. The tubular extension can include a tube connected to the connecting section and extending distally from the connecting section, and the control structure can include an elongated structure extending proximally from the connecting section. Generally, the connecting section can be configured to slide within at least a portion of the central lumen of the guide catheter to change the relative position of the connecting section within the central lumen so that at least a portion of the tubular extension extends out of the distal opening of the tubular shaft with an appropriate configuration of the connecting section. The proximal fitting can include a branch manifold with at least one branch having a hemostatic valve and including a pressure sensor configured to measure pressure within the proximal fitting. Generally, the proximal fitting is connected to the proximal end of the guide catheter.

[0008] In a further aspect, the present invention relates to a method for removing a blood clot from a patient's blood vessel using an aspiration catheter system including: a proximal attachment including a hemostatic valve and a pressure sensor configured to measure pressure within the proximal attachment; a guide catheter having a distal end and a proximal end connected to the proximal attachment; and a compartment extension. The aspiration extension can include a tubular extension having a distal end, a connecting compartment at the proximal end of the tubular extension, and a control structure extending proximally from the tubular extension. In some embodiments, the method includes delivering aspiration through an aspiration lumen extending from the distal end of the tubular extension to the proximal end of the guide catheter, wherein the distal end of the tubular extension extends from the distal end of the guide catheter, the connecting compartment is within the guide catheter, and the control structure extends from the proximal end of the guide catheter. The method can further include monitoring the pressure within the proximal attachment at least once during aspiration delivery.

[0009] In another aspect, the present invention relates to an aspiration catheter system including a guide catheter and a suction extension. The guide catheter can include a tubular shaft with a central lumen having a proximal end and a distal opening, and a proximal section operatively connected to the proximal end of the tubular shaft and having a fitting for connecting to a suction device, the tubular shaft including an engagement section having an inner diameter associated with the lumen extending through the engagement section. The suction extension can include a connecting section with a central lumen, a tubular extension including a tube connected to a tubular element of the connecting section and extending distally from the connecting section, and a control structure including an elongated structure extending proximally from the connecting section. In some embodiments, at least a portion of the connecting section has a non-cylindrical cross-section with a long outer diameter and a short outer diameter that is smaller than the long outer diameter. The tubular extension can have a distal inner diameter that is about 20 percent to about 90 percent of the inner diameter of the central lumen of the guide catheter, and the connecting section is configured to slide within the central lumen of the engagement section of the tubular shaft to change the relative position of the connecting section within the central lumen and allow at least a portion of the suction extension to extend out of the distal opening of the tubular shaft with appropriate configuration of the connecting section. In some embodiments, a suction lumen is formed from a fitting configured to connect to a suction device, extending through a portion of the central lumen, the connecting section, and the tubular extension to the distal opening of the tubular extension, and the connecting section engages with the lumen of the engagement section of the guide catheter at two circumferential locations.

[0010] The present invention further relates to an aspiration catheter system including a guide catheter and a suction extension. The guide catheter can include a tubular shaft with a central lumen having a proximal end and a distal opening, and a proximal section operatively connected to the proximal end of the tubular shaft and having a fitting for connecting to a suction device. The tubular shaft can include an engagement section having an inner diameter associated with the lumen extending through the engagement section, and a distal section having an inner diameter about 0.034 mm to about 0.25 mm less than the inner diameter of the engagement section, the distal section having a length of about 1 mm to about 50 mm. The suction extension can include a connecting section having an inner lumen and an average outer diameter at least 0.025 mm greater than the inner diameter of the distal section of the tubular shaft, a tubular extension including a tube connected to the connecting section and extending distally from the connecting section, and a control structure including an elongated structure and extending proximally from the connecting section. The tubular extension can have a distal-most inner diameter that is about 20 percent to about 90 percent of the inner diameter of the engagement section, and the connecting section can be configured to slide within a central lumen of the engagement section to change the relative position of the connecting section within the central lumen so that at least a portion of the tubular extension can extend out of the distal opening of the tubular shaft with appropriate configuration of the connecting section. Generally, a suction lumen is formed extending from a fitting configured to connect to a suction device, through a portion of the central lumen, the connecting section, and the tubular extension to the distal opening, and the suction extension is slidably positioned together with the connecting section within the lumen of the engagement section of the tubular shaft, and the tubular extension extends distally out of the distal section of the tubular shaft. [Brief explanation of the drawings]

[0011] [Figure 1] FIG. 1 is a side view of an aspiration catheter system including a guide catheter with a suction extension, where the guide catheter is shown transparent to allow visibility of structures within the guide catheter. [Figure 2] FIG. 1 is a side view of an embodiment of a guide catheter extending from a luer fitting to a distal tip. [Figure 3] 3 is a partial cross-sectional view of the guide catheter of FIG. 2 between points 3-3 in FIG. 2, taken along a plane passing through the central axis of the catheter. [Figure 4] 4 is a partial cross-sectional view of the guide catheter of FIG. 2 between points 4-4 in FIG. 2, taken along a plane passing through the central axis of the catheter. [Figure 5] 3 is a side view of a branched hemostatic valve suitable for connection to a luer fitting of the guide catheter of FIG. 2. FIG. [Figure 6] FIG. 10 is a side view of an embodiment of a compartment extension. [Figure 7] FIG. 7 is a top view of the suction extension of FIG. 6, with some hidden structure shown in dashed lines. [Figure 8] 8 is a side cross-sectional view of the suction extension of FIG. 6 taken along line 8-8 of FIG. 7. [Figure 9] FIG. 9 is a partial cross-sectional view taken along line 9-9 of FIG. 6. [Figure 10] FIG. 10 is a partial cross-sectional view taken along line 10-10 of FIG. 6. [Figure 11] 11 is a partial cross-sectional view of the catheter of FIG. 6 taken along the orthographic projection indicated by line 11-11 in FIG. 9. [Figure 12] 12 is a cross-sectional end view of the catheter of FIG. 6 taken along line 12-12 of FIG. 8. [Figure 13] FIG. 10 is a partial cross-sectional view of an alternative embodiment of a suction extension, with the enlarged inset showing the attachment of the control wire to the proximal portion using the coiled end of the control wire. [Figure 14] FIG. 14 is a cross-sectional view taken along line 14-14 of FIG. 13. [Figure 15] FIG. 10 is a top view of an alternative embodiment of a suction extension in which the tubular extension has two tubular sections of different diameters connected by a tapered section. [Figure 16] 16 is a cross-sectional view of an alternative embodiment of the suction extension shown in FIG. 15 taken along line 16-16 of FIG. 15. [Figure 17] 1 is a cutaway portion of the catheter wall showing some of its configurations. [Figure 18] FIG. 10 is a partial cross-sectional view of a suction tip having a bent portion. [Figure 19] FIG. 13 is a partial side view of a suction tip having a bend and an angled opening. [Figure 20]FIG. 10 is a partial cross-sectional view of a suction tip having a gentle curve. [Figure 21] FIG. 10 is an end cross-sectional view of a connecting section of a suction extension contacting an engagement section of a guide catheter having a non-circular cross-section. [Figure 22] A series of side views showing the configuration of a catheter structure on a mandrel, where one or more steps are performed, including applying a wire braid, placing a metal coil, applying a polymer to the sheet, and heating the polymer to embed the metal structure in the polymer. [Figure 23] 1 is a schematic illustration of a collection of medical devices that can be used together or in selected subcombinations for selected percutaneous procedures in body vessels, including the aspiration system described herein. [Figure 24] FIG. 10 is a partial side view of the proximal fitting shown with two separate components adjacent to the guide catheter, these two components being a Y-branch manifold and an extended hemostatic fitting. [Figure 25] FIG. 10 is a partial side view of an alternative embodiment of a proximal fitting attached to a guide catheter, comprising a three-branch manifold extending from the guide catheter and an extended hemostatic fitting attached to one branch. [Figure 26] FIG. 10 is a partial side view of a further alternative embodiment of a proximal fitting extending from a guide catheter, the fitting comprising a Y-branch manifold, a T-branch manifold connected to one branch of the Y, an extended hemostatic fitting extending from the straight branch of the T-branch, and a negative pressure device attached along the T-branch conduit. [Figure 27] FIG. 10 is a perspective view of a Y-branch manifold adapted for connection to a pump and to a pressure sensor. [Figure 28] FIG. 1 is a side view of a Y-branch manifold attached to a tubing fitting adapted for a pressure sensor with an electronic connector. [Figure 29] FIG. 10 is a side view of a Y-branch manifold with a terminal pressure sensor along one branch and an electrical connector for connecting to the pressure sensor. [Figure 30] 1 is a schematic representation of a human patient and an alternative access approach for guiding a catheter into a cerebral vessel. [Figure 31] 1 is a view within a branching vessel segment showing delivery of a medical device along a guidewire from a guide catheter to a clot, with the inset showing a close-up of two interior sections of the guide catheter. [Figure 32] 1 is a schematic diagram of an aspiration system in use to remove a blood clot within a compartment of a blood vessel. [Figure 33] 1 is a schematic diagram of a segment of a blood vessel with an aspiration system positioned upstream of a clot and a fiber-based filter deployed downstream of the clot. [Figure 34] 34 is a schematic representation of the vascular section of FIG. 33 in which a fiber-based filter is pulled toward the aspiration tip, drawing the clot into the tip to facilitate clot removal. [Figure 35] 1 is a schematic diagram of a segment of a blood vessel with an aspiration system positioned upstream of a clot, a fiber-based filter deployed downstream of the clot, and other medical devices positioned at the clot. [Figure 36] 36 is a schematic diagram of the vascular segment of FIG. 35 in conjunction with other medical devices for the removal of a blood clot. [Figure 37] FIG. 1 is a partial view of a treatment system extending from a location within the neurovasculature to a proximal attachment, shown after application of suction to remove a blood clot and optional other treatment steps, with an inset showing a cross-section of the tubular extension within the guide catheter. [Figure 38] 38 is a partial view of the distal portion of the treatment system of FIG. 37 with the tubular extension being retracted into the guide catheter, with the inset showing a cross-sectional view of the distal end of the tubular extension within the guide catheter. [Figure 39] 38 is a partial view of the proximal end of the treatment system of FIG. 37 in which the tubular extension is fully retracted so that the connecting section of the suction extension is within the proximal fitting on the exterior of the guide catheter as shown in the cross-sectional view of the inset. [Figure 40]FIG. 38 is a partial view of the proximal end of the treatment system of FIG. 37, in which the tubular extension has been retracted from the guide catheter but remains enclosed within the proximal fitting; the inset on the left shows a cross-sectional view of the distal end of the tubular extension within the Y-branch manifold (and an alternative placement of the distal extension within the extension fitting shown in dashed lines), and the inset on the right shows the connection section of the suction extension within the extension hemostasis fitting, with the control wire extending through the hemostasis valve. DETAILED DESCRIPTION OF THE INVENTION

[0012] The suction catheter system can include a guide catheter configured with a suction extension having a narrowed distal lumen capable of providing suction at high flow rates. In some embodiments, the suction extension has a connecting section with an asymmetric circumference that contacts the inner surface of the guide catheter, providing an effective fluid seal while providing translation of the suction extension within the guide catheter. In alternative or additional embodiments, the guide catheter can have a distal portion of the tubing with a smaller diameter that effectively limits distal movement of the suction extension. In some embodiments, a proximal fitting can be provided to allow the tubular portion (tubular extension) of the suction extension to be retracted from the guide catheter without passing through a hemostasis valve. Methods of use of the suction catheter system are described that allow a portion of the suction lumen of the suction extension to remain in a sealed configuration with respect to the guide catheter lumen, in some embodiments, throughout the entire time the guide catheter is within the patient's body. Improved processing can be derived using real-time line pressure measurements with a pressure transducer associated with an appropriate back-end tool. Aspiration catheters can be advantageously used to remove thrombi and clots from body vessels, such as arteries, some of which may have small diameters and where the treatment site may be downstream along a circuitous path, limiting the catheter configurations that can reach the treatment site within the vessel.

[0013] The designs described herein include a slidable suction extension that can be adapted for use with a corresponding guide catheter, forming a majority of the overall aspiration lumen when the suction extension is deployed from the distal end of the guide catheter. While the aspiration catheter system can be used in any suitable blood vessel in the body, the system may be particularly desirable in cerebral blood vessels, for example, for the treatment of acute stroke. The aspiration catheter system can be effectively used as a stand-alone aspiration catheter for thrombus removal. Furthermore, the aspiration catheter system can be effective as a component of a thrombus removal treatment system or other medical system to provide suction using other medical devices, such as a thrombus-engaging device for disrupting thrombi and / or a filter structure capable of capturing clots generated during the procedure, as well as other medical devices used to pull toward the aspiration catheter system. The treatment system can be effectively designed for the treatment of stroke.

[0014] In medical settings, less invasive procedures, commonly referred to in the art as minimally invasive procedures, often shorten patient recovery time and hopefully improve outcomes when appropriate. In particular, minimally invasive procedures are typically performed in the vasculature using catheter-based systems to reach remote locations within selected blood vessels for the implementation of various therapeutic processes. These procedures may also be referred to as percutaneous or transvascular procedures, as opposed to open procedures, to emphasize delivery through the vascular lumen. The discussion herein focuses on the treatment of ischemic stroke because the devices may be effective for treating these clinically important conditions. However, the devices can be used for other procedures in both the vasculature and other body vessels. Patients include humans and other animals, including pets and livestock. The terms proximal and distal are used with their conventional meaning in the art, i.e., proximal refers to closer to the point of entry into the patient's body along a pathway within the vasculature or other vessel, and distal refers to further from the point of entry along a pathway within the vasculature.

[0015] The slidable suction extension generally includes a connecting section that engages the inner wall of the guide catheter to provide a suitable interference fit. The connecting section generally connects a control structure, such as a control wire, extending proximally from the connecting section to a tubular extension extending distally from the control structure. The control structure generally extends outside the patient's body to position the suction extension so that its distal tip is near the treatment site within the blood vessel. The tubular extension may have an optional curved tip, allowing it to track well over the guidewire to reach hard-to-reach locations within the blood vessel.

[0016] Because thrombus can be retained at the distal tip of the suction extension while suction is applied to remove the thrombus from the blood vessel, it may be desirable to retract the tubular extension of the suction extension into the guide catheter by applying suction, reducing the chance of embolization of the thrombus and loss of the thrombus that may migrate upstream in the blood vessel. To further reduce the risk of embolization, it may be desirable to apply suction to completely detach the tubular extension from the guide catheter before removing the guide catheter from the patient. A desirable proximal attachment is described on the rear of the catheter system that allows the tubular extension to be detached from the guide catheter without passing the tubular extension of the suction extension through a hemostasis valve. Because the proximal end of the tubular extension is generally open, passing the proximal end of the annular extension through the hemostasis valve may expose the tubular extension, and possibly the inner lumen of the guide catheter, to the surrounding environment.

[0017] A suitable proximal fitting suitable for retracting the tubular extension has a tubular extension followed by a branch structure, the tubular extension being of sufficient length to hold the suction extension in an isolated area behind the hemostatic valve but outside the tubular element of the guide catheter. Some suitable configurations are described below, and other configurations will be apparent from the description of these embodiments. It may be noted that suction will generally be applied from a separate branch of the fitting, and that the overall manifold can be provided with multiple branches, which may or may not be separable components that are assembled for use.

[0018] Measuring the pressure in the proximal fitting can provide valuable information about the procedure. Possible configurations for pressure sensor placement are described below. When pressure is near zero in the proximal fitting, flow in the line to the pump is effectively unrestricted. It is observed that the pressure as flow passes through the suction extension causes a measurable pressure drop, but remains significantly lower than the pump pressure. If the suction extension becomes clogged with a clot or becomes kinked, the measured pressure may approach the pump pressure, which generally indicates that flow is essentially blocked within the catheter. Knowledge of occlusion can be used to significantly improve the procedure in terms of efficiency and safety. For example, if an occlusion occurs early in the procedure, this may indicate a kink. An occlusion later in the procedure may indicate that the catheter has become occluded by a lodged clot, which generally indicates that contrast or other perfusion fluid should not be delivered through that catheter because the pressure of the delivery may push a clot that has already occluded the catheter further into the vessel. The pressure transducer can be introduced in alternative ways. For example, the pressure transducer can be installed along the inside wall of the manifold fitting or in the tubing connected to the fitting in a configuration that provides a pressure measurement. The pressure sensor may or may not be sterilized depending on its location.

[0019] For stroke treatment, a treatment device can be advanced through arteries to the brain's blood vessels. The blood vessels typically associated with acute stroke treatment are downstream from the internal carotid artery, and arteries typically branch and decrease in average diameter as they progress downstream through the arterial vasculature. The body has a right internal carotid artery and a left internal carotid artery. For convenience, blood vessels downstream from the internal carotid artery are referred to herein as cerebral arteries. Cerebral arteries can be accessed with catheter-based systems, for example, from the femoral artery in the groin, the arteries in the arm, or the carotid artery in the neck, using hemostatic procedures and appropriate fittings, such as those known in the artery. Cerebral arteries are known to follow circuitous paths, and tracking devices along the blood vessels can also be complicated due to the small diameter of the vessels as well as the risk of vascular injury, which can lead to hemorrhagic stroke. Nevertheless, accessing small, tortuous arteries can be desirable for stroke treatment. Although the devices described herein are designed for advantageous use in these small, tortuous cerebral arteries, those skilled in the art will appreciate the utility of these devices in other medical procedures.

[0020] The present aspiration catheter system incorporates a guide catheter with a slidable suction extension suitable for cerebral procedures. For vascular procedures, the use of a guide catheter generally facilitates delivery of the therapeutic device while providing a protected channel to the treatment site in most cases, allowing for faster, more accurate delivery with less risk to the vessel wall. For cerebral procedures, the guide catheter can be placed outside the patient's body with its distal end positioned within the carotid or internal carotid artery at the entry point into the vessel. The guide catheter can therefore provide a lumen relatively close to the treatment site. In some embodiments, a conventional guide catheter can be used to assemble the desired aspiration catheter, while in other embodiments, a specific guide catheter design is used to form the aspiration catheter system. While the size of the guide catheter sets a limit on the diameter of the therapeutic structure delivered to the treatment site, this is generally not a major issue because extendable devices can be delivered in a smaller configuration and then deployed in an extended state, and because the size of the vessel generally decreases distally from the guide catheter, reducing the need for larger therapeutic devices. The suction devices described herein provide a suction extension that can protrude an adjustable amount from the distal end of the guide catheter by positioning a connecting section of the suction extension in contact with the inner wall of the lumen of the guide catheter. The connecting section can form a sufficiently tight seal with the wall of the guide catheter so that suction within the lumen of the guide catheter is transmitted along the lumen of the suction extension. The desired degree of suction can be obtained through the suction extension using suction applied to the proximal end of the guide catheter.

[0021] The suction extension generally comprises a connecting section, a control structure extending proximally from the connecting section, and a tubular extension extending distally from the connecting section. The suction extension generally contacts the guide catheter and can be designed to be positioned with its tip at a selected location distal to the guide catheter to perform a procedure near a selected location, such as the location of a thrombus occluding a cerebral vessel. Because the relative locations of the treatment site and the distal end of the guide catheter generally vary depending on the specific medical situation, the extent to which the suction extension extends from the guide catheter can be adjusted through relative movement of the suction extension using a control structure, such as a control wire. The suction extension should move within the guide catheter lumen without requiring excessive force, which may be facilitated by the use of low-friction polymers on one or both adjacent surfaces.

[0022] The connecting section of the suction extension is adapted to contact the inner wall of the guide catheter, thereby substantially or completely blocking flow around the connecting section that does not flow through the lumen of the suction extension, while retaining at least a portion of the connecting section within the guide catheter and allowing the suction extension to slide properly and without issue relative to the guide catheter within the patient's vessel. Various embodiments of components that form such contact are discussed in U.S. Patent Application Publication No. 2017 / 0143938 A1 by Ogle et al., entitled "Catheter Systems for Applying Effective Suction in Remote Vessels and Thrombectomy Procedures Facilitated by Catheter Systems" (hereinafter the '938 Application), which is incorporated herein by reference. As described herein, the connecting section, referred to as the proximal section in the '938 Application, is said to have a non-cylindrical cross-sectional shape. Such a non-cylindrical cross-sectional shape advantageously contacts the guide catheter at two locations along its circumference, with a small gap around the remaining circumferential section of the connecting section. Upon contact with the lumen of the guide catheter, the connecting section exerts some force that causes it to partially round its circumference. This non-cylindrical shape for the connecting section effectively blocks flow between the guide catheter wall and the connecting section, while not preventing the connecting section from moving longitudinally to position the tip of the suction extension within the blood vessel.

[0023] The non-circular cross-sectional shape of the connecting section of the suction extension can be generally described as an ellipse. The ellipse can be characterized, at least in part, by a major axis along the longer dimension of the ellipse and a minor axis along the shorter dimension of the ellipse that is perpendicular to the longer dimension. The connecting section can then contact or come very close to the inner surface of the engagement section of the guide catheter at two locations associated with points along the circumference associated with the major axis. Correspondingly, the non-circular cross-section can be characterized by an average radius that can provide an overall very small clearance with the guide catheter while still providing the desired function.

[0024] To form a non-circular cross-section, ridges can be formed through the connection of the control wire along the surface of the connecting section and additional polymer that provides the desired shape as well as strengthens the connection between the connecting section and the control wire. Further embodiments of connecting section structures having elliptical cross-sections are described below. In this manner, the non-circular shape of the connecting section cross-section can be designed so that it matches the overall structure of the suction extension and contacts the guide catheter.

[0025] Additionally, because it may be desirable to prevent the connecting section of the suction extension from extending beyond the distal end of the guide catheter, the suction extension and / or catheter can be designed to limit distal movement of the suction extension. In the embodiments described herein, certain guide catheter configurations can be used to retain the connecting section of the suction extension, or a portion thereof, within the guide catheter lumen. Specifically, the tubular portion of the guide catheter can have a tubular segment with a slightly smaller inner diameter at the distal end of the guide catheter. Because the gap can be small between the connecting section and the guide catheter, further distal movement of the suction extension can be limited by reducing the diameter of the guide catheter to some extent. Guide catheter configurations with small diameter distal tubular elements can be incorporated into the catheter assembly process to provide a stable configuration.

[0026] In comparison to aspiration catheters delivered through a guide catheter in which the suction flow is confined to the aspiration catheter, the present application replaces a significant portion of the aspiration catheter's length with the control elements of the aspiration catheter system. Replacing a significant portion of the aspiration catheter's length with the control elements results in a device that allows for lower friction when advancing the tip of the aspiration catheter within a patient's vasculature, since the control wires or other control elements can provide less resistance to its movement. The tip of the suction extension can be curved to facilitate tracking the device over a guidewire. In the design described herein, a suction extension with a curved tip for tracking the tip over a guidewire can be effectively navigated to very hard-to-reach locations using a control wire or other control element that moves a sliding portion at or near the distal end of the suction extension, providing good aspiration capabilities without sacrificing the ability to reach hard-to-reach vessels, such as cerebral vessels. The guide catheter portion of the aspiration lumen can be held in place while the suction extension is moved.

[0027] When suction is applied at or near the proximal end of the guide catheter with a suitable negative pressure device, fluid is drawn into the distal opening at the end of the suction extension. It has been found that powerful suction can be transmitted through the suction extension. The suction lumen extends from a negative pressure device, typically attached to a fitting associated with a proximal section at or near the proximal end of the suction system, through the guide catheter lumen to the suction extension, and through the connecting section of the suction extension and suction extension tubular extension to the distal opening. Suitable negative pressure devices include, for example, a syringe, pump, or the like. The guide catheter can provide a large lumen as a significant section of the overall suction lumen. The effective suction lumen can then be viewed as having a large proximal section contributed by the guide catheter and a tapered distal section contributed by the suction extension, which may have one or more tapered sections.

[0028] The tubular extension of the suction extension has a small diameter relative to the guide catheter lumen and a highly flexible lumen that allows its distal end to be placed in smaller blood vessels. However, the lumen of the tubular extension remains large enough to allow additional therapeutic devices to be delivered through the lumen to the treatment site. The outer diameter of the suction extension at its tip is generally at least about 1.5 Fr (diameter units are mm = (Fr value) / 3, where Fr represents the French catheter scale) smaller than the outer diameter of the distal section of the guide catheter. The smaller diameter of the tubular extension allows access to desired blood vessels, such as cerebral vessels.

[0029] It has been found that good aspiration characteristics are achieved with aspiration catheters that taper in diameter at the distal segment. Thus, for example, an aspiration catheter can have an outer diameter of 6 French throughout most of its length, with the distal segment having an outer diameter of 5 French, roughly corresponding to a reduced inner diameter. Such a catheter can provide vascular access suitable for a 5 French catheter, but can provide significantly better aspiration than an aspiration catheter with a 5 French catheter body along its entire length. Commercially available tapered catheters, such as the Mi-Axus™ catheter (MIVI Neuroscience, Inc.) and the ACE™ 64 catheter (Penumbra, Inc.), have demonstrated good clinical outcomes. Tapered aspiration catheters and their use for thrombectomy in cerebral arteries are described in U.S. Pat. No. 9,532,792 B2 to Galdonik et al., entitled "Aspiration Catheters for Thrombus Removal" (hereinafter the '792 patent), which is incorporated herein by reference. While these catheters provide better suction than catheters with a constant diameter that matches the distal diameter, the present suction catheter system with a sliding suction extension has been found to provide better suction, suggesting that the diameter over most of the length of the suction lumen contributes to a significant extent to the suction provided to the distal opening of the suction lumen.

[0030] The initial portion of a procedure using the devices described herein generally involves accessing the treatment site within a blood vessel. Guidewires are designed to facilitate access to hard-to-reach locations. The term guidewire is used herein broadly to refer to wire structures, which may or may not have an internal structure. Guidewires are referred to as such whether they are made of solid metal or woven metal, such as corewire-overtube structures, coils, or other structures that may not have an enclosed lumen over at least a portion of the length of the device.

[0031] In particular, the devices described herein enable procedures to be performed to provide reperfusion of blood vessels completely or partially occluded by a blood clot. Because blood clots in cerebral arteries can cause strokes with correspondingly severe consequences, time is of the essence in treating these conditions. A suction extension with a guide catheter can be used to provide suction, which can be beneficial in removing blood clots or their debris. Therefore, the combination of a suction extension with a guide catheter and a negative pressure device can be used as a stand-alone device for thrombectomy. However, a suction extension with suction functionality can be effectively used as part of a treatment system that also includes, for example, a fiber-based filter and / or other components that facilitate removal of a blood clot or portions thereof. The design of a delivery catheter with an expandable tip makes it useful as a tool for performing a variety of other procedures.

[0032] In some embodiments of the procedure, a guidewire can be placed at or near the location of the occlusion, and a guide catheter with a positionable suction extension can be placed in the blood vessel upstream of the occlusion, with the guidewire extending inside the suction extension. If the aspiration catheter system is used alone, the suction extension can be advanced to an appropriate location near the clot using a control wire on the guidewire. Suction can then be initiated, with or without the guidewire removed, to suck the clot, or a portion of it, into the distal opening or against the tip of the suction extension. Suction may or may not continue when the suction extension and / or guide catheter are removed from the patient.

[0033] While suction with a suction extension can be effective as a device for clot removal alone, additional therapeutic systems can be combined with other devices for use with the aspiration catheter system. In particular, a filter device can be used to provide both embolic protection and a tool to facilitate removal of a clot or portion thereof, which may involve directly engaging the clot with the filter device. Fiber-based filter / embolic protection systems have been developed that can be used effectively in small blood vessels of interest. In particular, fiber-based filter systems with appropriate actuation systems can be used for delivery through an obstruction in a low profile and can be deployed to protect against clot debris if released during the removal process.

[0034] During the process of removing the aspiration catheter system, and possibly other components of the treatment system, from the patient, suction is generally continued until the risk of thrombus embolization has been sufficiently reduced. The suction extension may have thrombus within its lumen and / or trapped at its tip. The proximal end of the tubular section of the suction extension is generally open, thereby potentially exposing the aspiration lumen of the tubular extension to the surrounding environment when the proximal end of the tubular extension is removed from the hemostatic valve. Because exposing the lumen of the tubular extension while still within the patient's body may be undesirable, as described herein, a fitting has been devised that can anchor the tubular extension outside the guide catheter while still within an isolated compartment of the system outside the patient's body. Suction can continue while the tubular extension is removed from the patient, isolated from the environment but outside the guide catheter. Generally, the proximally extending control structure of the suction extension can pass through the hemostatic valve, which then closes around the control structure in an appropriate sealing manner. When the tubular extension rests safely outside the guide catheter, the procedure can be completed, which generally includes ending aspiration and verifying that the occlusion has been cleared. At the end of the procedure, the guide catheter can be safely removed from the patient.

[0035] The pressure in the proximal fitting can be monitored throughout the portion of the procedure in which suction is applied. If the pressure in the proximal fitting remains within an expected range, the physician performing the procedure can proceed based on that knowledge. If the pressure increases, the physician can take appropriate action, such as removing the suction extension from the patient, generally without delivering fluid through the tubular extension.

[0036] The devices and corresponding processes described herein provide improved capabilities for performing therapeutic procedures to remove blood clots from blood vessels. As described herein, the devices can be used in various combinations in medical systems for percutaneous procedures. The improved procedures provide practical steps to be performed by medical personnel handling the devices while providing additional safety measures.

[0037] Suction system with sliding suction extension An aspiration system is described that utilizes the guide catheter lumen as a proximal aspiration lumen, taking advantage of the improved aspiration provided by an aspiration catheter lumen with a larger proximal aspiration and a smaller diameter suction extension. A laterally slidable suction extension extends from a proximal section within the guide lumen, where the suction extension has a smaller diameter to provide access to small blood vessels and provide a desired level of aspiration for delivering other therapeutic and / or embolic protection structures, as well as for removing debris from the blood vessel. A control wire or other control structure can be attached to the suction extension to control the sliding and allow the suction extension to be selectively positioned laterally relative to a fixed guide catheter and target treatment site. In some embodiments, the suction extension includes a connecting section that has a non-cylindrical cross-section and contacts the guide catheter lumen at two circumferentially contacting sections. This non-cylindrical contact allows the suction extension to slide relatively easily relative to the guide catheter while blocking flow between the outside of the proximal section of the suction extension and a proximal location within the guide catheter. A particular guide catheter design may incorporate various tubing elements along its shaft to provide the desired flexibility, with smaller diameter distal tubing elements being used to retain the proximal section of the suction extension within the guide catheter lumen.

[0038] Referring to FIG. 1 , aspiration system 100 includes an aspiration guide catheter 102 and a suction extension 104. The aspiration guide catheter 102 includes a proximal section 106 and a tubular shaft 108. The proximal section 106 is generally also suitable for use as a handle and may generally include a proximal fitting 120, an aspiration port 122, and an optional control wire port 124, as well as possibly other additional ports and / or fittings providing desired functionality and access, all of which may be arranged in a bifurcated or other suitable configuration. The proximal fitting 120 may generally include an appropriate hemostatic valve, luer fitting, or the like, for entry of a guidewire and / or structure to be delivered over the guidewire into the guide catheter lumen, such as an alternative therapeutic structure and / or an embolic protection device.

[0039] In improved embodiments described herein, the proximal fitting 120 can include a segment into which the tubular extension of the suction extension 104 can be placed, preventing it from extending into the tubular shaft 108 of the aspiration guide catheter 102 or through a hemostatic valve into the surrounding environment. While desired features of a fixture at the proximal end of the aspiration system 100 can be integrated into the proximal fitting 120, design flexibility can be achieved through embodiments of the proximal fitting 120 that include connectors such as a Tuohy-Borst connector and fitting connections to provide other desired features, such as a Y-junction, a hemostatic valve, and an extension tubular fitting for storing the tubular extension of the suction extension, as mounting components attached to the proximal fitting 120 for use. Suitable fittings for integration with the proximal fitting 120 are described in more detail below in the Treatment System section, with the understanding that the present disclosure below can be considered an integral part of the proximal fitting 120 rather than as separate components.

[0040] For use with aspiration system 100, a suitable embolic protection device can be attached to the guidewire and / or other treatment structure can be used. Suitable treatment structures are further described below and can include, for example, a fiber-based filter, a stent, a stent retriever, an atherectomy device, or the like. As shown in FIG. 1 , a negative pressure device 126 is shown connected to aspiration port 122; suitable negative pressure devices include, for example, a syringe, a pump such as a peristaltic pump or other suitable pump, an aspirator / venturi, or the like. Suitable pumps are available from Allied Healthcare Products, Inc., such as the Gomco™ Brad Pump or the DRE DM-660™ Pump.

[0041] Generally, the tubular shaft 108 can have a generally constant diameter along its length, or some guide catheters can have sections of different diameters, generally with a smaller diameter section distal to a larger diameter section. In some embodiments described herein, the majority of the length of the tubular shaft has a constant diameter to provide the desired contact with the connecting section of the suction extension, which can be referred to as the tubular shaft's engagement section and is designed to engage with a suction extension configured for delivery of suction to a patient. The portion of the tubular shaft proximal to the engagement section can have a larger inner diameter and generally larger outer diameter relative to the engagement section. Conventional guide catheters can be used in some embodiments with the suction catheter system, with specific designs described below. The distal tubular section of the tubular shaft can have a slightly smaller inner diameter to retain a portion of the suction extension 104 within the tubular shaft 108. The tubular shaft 108 may have one or more radiopaque marker bands to facilitate positioning of the tubular shaft within the patient, as well as positioning the connection section of the suction extension within the guide catheter lumen; although Figure 1 shows the marker bands 128 near the distal end of the tubular shaft 108, alternative locations may be used as desired. As described below, the tubular shaft 108 may have a coating on its inner and / or outer surface or portions thereof.

[0042] The suction extension 104 generally comprises a connecting section 140, a tubular extension 142, and a control structure 148, such as a control wire. All or a portion of the connecting section 140 can be configured to remain within the lumen of the aspiration guide catheter 102. As shown in FIG. 1 , the connecting section 140 can include a radiopaque marker band 152, although the connecting section can have no marker band in some embodiments and can include multiple marker bands in other embodiments; while the tubular extension 142 is shown with a radiopaque marker band 154 near its distal tip, again, the tubular extension 142 can include multiple radiopaque marker bands as desired. The control structure 148 can be a control wire or the like that connects with the connecting section 140 and, in the assembled device, extends outside of the catheter, for example, exiting through the control wire port 124 or the proximal fitting 120. The control structure 148 can be used to control the positioning of the connecting section 140 within the lumen of the tubular shaft 108. The control structure 148 can include a control tool 156, such as a handle, slide, or other structure to which a control wire or other connecting element can be secured to facilitate movement of the control wire. In some embodiments, alternative structures, such as multiple wires or a cylindrical wire assembly, can connect the proximal portion to the proximal end of the aspiration catheter system to provide a desired level of control over the positioning of the proximal section.

[0043] As previously described, the connecting section of the suction extension engages the lumen of the guide catheter with an appropriate interface, allowing the user to translate the suction extension relative to the guide catheter to position the tip of the tubular extension while reducing or eliminating blood flow between the connecting sections of the suction extension. The desired design, in which the connecting section of the suction extension has a non-circular cross-section, has been found to particularly meet these criteria. The material selection described herein also allows for a very small average clearance between the connecting section of the suction extension and the interior of the guide catheter. When assembled, the lumen of the guide catheter can contact the connecting section of the suction extension in two circumferential locations, which allows the cross-section of the connecting section to be partially rounded. This two-point contact configuration allows the user to slide the suction extension with reasonable ease while providing the desired flow containment.

[0044] The non-circular cross-section of the connecting section (or portion thereof) of the suction extension may generally be approximately elliptical in shape. While not intended to be limiting by this term, in some embodiments, the cross-section may have one axis of symmetry, similar to a conventional oval cross-section. As discussed below, the elliptical shape may be generated by attaching a wire control structure to the proximal section, although other structural features may be used to introduce the elliptical shape, e.g., providing approximately one or two axes of symmetry, although the ellipse may also be asymmetric. Generally, the cross-section of an ellipse may be characterized in part by its major axis, e.g., the longer dimension along the axis of symmetry, and its minor axis, e.g., the longest line segment connecting the circumference that is perpendicular to the major axis. While the specification of the major and minor axes does not fully identify the ellipse because the specific shape is not specified, the major and minor axes can provide important information regarding the size and relative shape of the ellipse, especially since the shape is generally not far from a circular shape. Additionally, the average clearance may be defined by using the maximum circumference (C) of the elliptical cross-section and converting it to a transparent circle to find the appropriate average diameter (D a =C / π).

[0045] An embodiment of a guide catheter is shown in Figures 2-4. Referring to Figure 2, guide catheter 160 includes a connector attachment hub 162, which may be a Tuohy-Borst connector, a Luer connector, or other part, a shaft 164, and a strain relief support 166. In this embodiment, the proximal end of shaft 164 passes through strain relief support 166 to connector attachment hub 162, and the components may be secured together with an adhesive. Also, a female connector 168 is disposed at the proximal end of connector attachment hub 162 for connection with a male connector fitting on a proximal fitting, such as a bifurcated connector having one or more branches and which may have a rotating hemostatic valve.

[0046] A cross-sectional view of a portion of the shaft 164 near its proximal end is shown in FIG. 3. Referring to the embodiment of FIG. 3, the shaft 164 includes a polymer tube 180 with an embedded stainless steel wire braid 182 and a lubricious liner 184, such as polytetrafluoroethylene (PTFE) or other fluoropolymer. FIG. 4 shows the distal end of the shaft 164. As shown in FIG. 4, a radiopaque marker band 186 is embedded within the polymer tube near the distal end of the shaft 164. A distal section 188 of the tube, as described further below, is also located at the distal end of the shaft 164 and has a slightly reduced inner diameter. As shown in FIGS. 3 and 4, the metal braid terminates near the marker band 186 (or overlaps and then terminates), and the distal section 188 is free of the metal braid in this embodiment. As described further below, the composition of the polymer tube included in the shaft can vary along the length of the shaft 164, thereby, for example, increasing the flexibility of the shaft toward the distal end of the shaft. In some embodiments, adjacent sections of polymer tubing can be bonded together by heating and further supported by an arched metal braid and / or coil at the top, which strengthens the majority of the shaft. In some embodiments, the majority of the shaft 164, except for the distal section 188, can have a constant inner diameter to allow suction to be applied through a suction extension positioned anywhere in the guide catheter proximal to the distal section 188. However, in alternative embodiments, the proximal section of the shaft 164 can have a larger diameter, if desired, since the proximal section of the guide catheter may not be used to position the connecting section of the suction extension for applying suction. Appropriate markers on the control wire can be used to ensure the suction extension is properly positioned for applying suction.

[0047] A lubricious coating, such as a hydrophilic coating, can be applied to the exterior surface of shaft 164 or portions thereof. Suitable hydrophilic coatings include, for example, polyvinyl alcohol, heparin-based coatings, or others. Hydrophilic coating solutions are commercially available, such as, for example, LUBRICENT® (Harland Medical System, Minnesota, USA) or SERENE™ (Surmodics, Inc., Minnesota, USA). Further description of materials and manufacturing processes is provided below.

[0048] The outer diameter (D) of the guide catheter can be from about 5.5 Fr (1.667 mm diameter) to about 10 Fr (3.333 mm diameter), in further embodiments from about 6 Fr (1.833 mm diameter) to about 9 Fr (3 mm diameter), and in some embodiments from about 6.25 Fr (2 mm diameter) to about 8.5 Fr (2.833 mm diameter). Measurements of the guide catheter generally refer to the outer diameter, with the inner diameter being twice the wall thickness less than the outer diameter. Generally, the inner diameter (d1) of the main portion of the shaft 164 can range from about 0.8 mm to about 3.175 mm, in further embodiments from about 0.9 mm to about 2.85 mm, and in further embodiments from about 1.00 mm to about 2.7 mm. The reduction in the inner diameter (d2) of the distal section 188 relative to the inner diameter (d1) of the engagement section of the shaft 164 can be from about 0.034 mm (0.00134 in) to about 0.25 mm (0.0098 in), and in further embodiments from about 0.05 mm (0.002 in) to about 0.20 mm (0.0079 in). The length of the guide catheter shaft can be from about 30 cm to about 150 cm, in further embodiments from about 35 cm to about 130 cm, and in further embodiments from about 40 cm to about 120 cm, and is generally selected as appropriate for the corresponding procedure. In some embodiments, the length (L) of the distal section 188 can be from about 0.034 mm (0.00134 in) to about 0.25 mm (0.0098 in), and in further embodiments from about 0.05 mm (0.002 in) to about 0.20 mm (0.0079 in). The length of the guide catheter shaft can be from about 30 cm to about 150 cm, in further embodiments from about 35 cm to about 130 cm, and in further embodiments from about 40 cm to about 120 cm, and is generally selected as appropriate for the corresponding procedure. d ) can be from about 1 mm to about 50 mm, in further embodiments from about 1.5 mm to about 25 mm, and in other embodiments from about 2 mm to about 20 mm. A person of ordinary skill in the art will recognize that additional ranges of dimensions within the explicit ranges above are contemplated and are within the present disclosure.

[0049] To form a proximal attachment similar to that of FIG. 1 using the guide catheter of FIG. 2, a Y-branch hemostatic valve connector 190 can be used, as in the embodiment shown in FIG. 5. The Y-branch hemostatic valve connector 190 includes a male connector 192, a Y-branch frame 194 with branching flow paths, a rotating hemostatic valve 196, a connector 198, a tube 200 connected to the Y-branch frame 194 at the connector 198, and a suction device 202 connected to the tube 200. The male connector 192 can be attached to the female connector 168 of FIG. 2. As shown schematically in FIG. 5, both a control wire 204 and a guide wire 206 are shown exiting the hemostatic valve 196, and the guide wire 206 can be used to guide a treatment device from the guide catheter through the hemostatic valve. Various branched hemostatic valve connectors are available from commercial suppliers, such as Merit Medical of Utah, USA. More generally, various fittings can be attached to the connector attachment hub 162 of the guide catheter 160, and improved embodiments of fittings that include portions for mounting the tubular extensions of the suction extensions are described in more detail in the Treatment Systems section below.

[0050] Embodiments of suction extensions are shown in Figures 6-12. Referring to Figure 6, suction extension 230 includes a control wire 232, a connecting section 234, and a tubular extension 236. The connecting section 234 connects to the control wire 232, which extends proximally from the connecting section, and to the tubular extension 236, which extends distally from the connecting section. Generally, the control wire 232 can be a solid wire, coil, or other that transmits pulling and pushing forces to the connecting section 234, which can move correspondingly relative to the guide catheter along with the tubular extension 236 in the assembled aspiration catheter system. The control wire 232 can have any reasonable cross-sectional shape, which may vary at various points along its length. Additionally, the control wire can be tapered toward the distal end of the control wire, resulting in a smaller circumference. Typically, the control wire 232 is made of stainless steel, titanium, or other biocompatible metal, although other materials with an appropriate balance of stiffness and flexibility could in principle be used. In some embodiments, the control wire is a round metal wire having an average diameter along its length of about 0.010 inches (0.254 mm) to about 0.040 inches (1.01 mm), and in further embodiments, about 0.0125 inches (0.32 mm) to about 0.030 inches (0.76 mm). The length of the control wire 232 is generally somewhat longer than that of the guide catheter, such that the guidewire extends from the proximal end of the guide catheter, for example, 5 cm or more longer than the guide catheter. A person of ordinary skill in the art will recognize that additional ranges of dimensions within the explicit ranges above are contemplated and are within the present disclosure.

[0051] The connecting section 234 is generally distinguished by a larger outer diameter than the tubular extension 236, which extends distally from the connecting section 234. In the embodiment of Figures 6-12, the tubular extension 236 has substantially constant outer and inner diameters, with further embodiments in which the diameter decreases along the tubular extension being described below. Referring to the cross-sectional view of Figure 10, the tubular extension comprises a polymer tube 240, a metal coil reinforcement 242, and a radiopaque marker band 244. The metal coil reinforcement 242 can comprise a flat metal wire, which in some embodiments extends generally from the radiopaque marker band 244 to the radiopaque marker band within the connecting section 234, as described further below, although the metal coil reinforcement can extend above the marker band. The polymer tube 240 can remain the same along the length of the tubular extension 236, or the polymer can vary at different locations along the tubular extension 236, e.g., becoming more flexible distally. The different sections of polymer can be heated and bonded together during construction, and the metal coil reinforcement 242, as well as an optional polymer coating layer, can further stabilize the connected sections of polymer tubing. The tip 246 of the tubular extension 236, distal to the radiopaque marker band 244, can comprise a polymer tubing 240 without a metal reinforcement. A low-friction liner 248, such as PTFE or other fluoropolymer, can extend along the length or a portion of the tubular extension 236 and / or connecting section 234.

[0052] The relationship between the connecting section 234, the control wire 232, and the tubular extension 236 is shown in FIGS. 6-8. Partial cross-sectional views of the connecting section 234 are shown in FIGS. 9, 11, and 12, illustrating certain details of its construction. The connecting section 234 can comprise a polymer tube 260 and a radiopaque marker band 262. The polymer tube 260 has a proximal opening 264, which can be angled relative to the longitudinal axis of the polymer tube to facilitate delivery of the device from the suction extension, although a right angle can be used if desired. The angle α is displayed in FIG. 8 and can range from 25 degrees to about 85 degrees, in further embodiments from about 30 degrees to about 80 degrees, and in further embodiments from about 33 degrees to about 75 degrees. A person of ordinary skill in the art will recognize that additional ranges of dimensions within the explicit ranges above are contemplated and are within the scope of the present disclosure.

[0053] The contact between the control wire 232 and the connecting section 234 serves both to secure the components together and to help shape the connecting section 234, which can be selected to provide the desired contact with the interior of the guide catheter lumen. Specifically, the connection between the connecting section and the control wire can facilitate forming an elliptical cross-section of the connecting section. In an alternative embodiment, the control wire 232 can terminate in a flat wire coil, which is embedded in a polymer tube to substantially retain the shape of the connecting section, as described in the '938 application and below. In further or alternative embodiments, the elliptical shape of the connecting section can be introduced through molding or other shaping of the polymer, which may or may not be combined with a protuberance due to the embedded control wire. Suitable dimensions for the elliptical cross-section and processing for forming the connecting section are discussed further below. A low-friction liner 248 can extend through the lumen of the connecting section 234, as shown in FIGS. 9 and 11, or in some embodiments, a separate low-friction liner can be included in the connecting section 234, if desired.

[0054] 8, 11, and 12, the distal end of the control wire 232 is embedded within a polymer associated with the polymer tube 260. By anchoring the control wire 232 to the polymer wall, the cross-sectional shape changes, resulting in a change in the longitudinal axis (L ), as can be clearly seen in FIG. M ) is the minor axis (L m ) longer. As mentioned above, a non-circular cross-section is advantageous for contact between the suction extension and the guide catheter. A cross-section of an alternative embodiment of a non-circular shaped connecting section 280 is shown in FIGS. 13 and 14. In this embodiment, a flat metal coil 282 on the end of a control wire 284 is embedded in a polymer tube 286 of non-circular cross-section. The non-circular cross-section is formed in this embodiment through forming a thicker wall of polymer along one circumferential edge, as can be seen in the cross-section of FIG. 14. A corresponding circular embodiment is shown in FIGS. 21 and 22 of the '938 application. The connecting section may or may not have a substantially constant outer diameter along its entire length, and the outer diameter may taper, e.g., a gradual taper, a step taper, or a combination thereof, to the outer diameter of the adjacent section of the tubular extension over at least a portion of its length.

[0055] An alternative embodiment of a suction extension is shown in Figures 15 and 16. The suction extension 300 comprises a control wire 302, a connecting section 304, and a tubular extension 306. The control wire 302 and connecting section 304 may be the same as the control wire 232 and connecting section 234, respectively, of the embodiment of Figures 6-12. Referring to Figure 16, the distal end of the control wire 302 is embedded in the connecting section 304 in a polymer, forming an expansion section 308 along the surface of the connecting section 304. A proximal opening 310 to the lumen of the connecting section 304 forms an angle α with respect to the axis of the connecting section 304. The connecting section 304 includes a radiopaque marker band 312. The body of the connecting section 304 is a polymer tube 314. A low-friction liner 316, such as PTFE or other fluoropolymer, may extend along the lumen of the connecting section 304 and / or the tubular extension 306, or selected portions thereof. A metal reinforcement, such as a flat metal wire coil, can reinforce the polymer tube 314 or a portion thereof. As shown in Figure 16, a flat metal wire coil 318 is embedded throughout the polymer tube 314 distal to the radiopaque marker band 312 and extends to the tubular extension 306. Additionally, the asymmetric cross-sections shown in Figures 12 and 14, as well as the control wire attachment schemes of Figures 11 and 13, are also applicable to the embodiments of Figures 15 and 16.

[0056] 15 and 16 , the tubular extension 306 comprises a first tubular section 330, a tapered section 332, and a second tubular section 334 having a smaller diameter than the first tubular section 330. The tapered section 332 tapers between the diameter of the first tubular section 330 and the diameter of the second tubular section 334. The second tubular section 334 includes a radiopaque marker band 336. A flat metal wire coil 318 extends from the radiopaque marker band 336 to the radiopaque marker band 312 embedded in the polymer tube within the connecting section 304. The end of the second tubular section 334 distal to the radiopaque marker band 336 may be free of metal reinforcement. As previously mentioned, the low-friction liner 316 can extend along the lumen wall for the length of the tubular extension 306 or a selected portion thereof. The bodies of the first tubular section 330, the tapered section 332, and the second tubular section 334 generally comprise thermoplastic polymer tubing. The polymer tubing sections are heated and bonded together, and may be further supported by the embedded flat metal wire coil 318, optionally with a heat-shrinkable polymer film covering the metal reinforcement, or otherwise. A partial cross-section of the first tubular section 330 is shown in FIG. 17 , showing the flat metal wire coil 318 embedded within the polymer tubing 314; cross-sections of the tapered section 332 and the second tubular section 334 would show a similar configuration. The composition of the polymer tubing can be varied along its length to select a particular flexibility, generally being more flexible toward the distal end of the device, as desired, and the polymer composition can be varied in and / or within different sections 330, 332, 334.

[0057] 15 and 16, the tapered section 332 provides a linear transition in diameter from the larger diameter of the first tubular section 330 to the smaller diameter of the second tubular section 334. In alternative embodiments, the diameter of the tapered section can be non-linear as desired, although the change is generally monotonic. The tapered section can be formed through extrusion, by conforming a thermoplastic polymer to a mandrel shape, or by any other suitable process known in the art.

[0058] An important aspect of the suction extension is its small diameter aspiration tip relative to the guide catheter, and the reduced diameter of the second tubular section in the embodiment of Figures 15 and 16 allows for further reach into small neurovasculature. The effective aspiration lumen then extends from the guide catheter into the connecting section of the suction extension and into the tubular extension, which may have a further reduced diameter. The inner diameter of the connecting section may or may not be the same as the inner diameter of the first tubular section. The small diameter of the tubular extension allows for reach into small, tortuous vessels, and the use of a larger diameter proximal aspiration lumen significantly improves aspiration performance without compromising the ability to reach the appropriate site.

[0059] To further provide suction strength, the tubular extension itself can have distinct sections of decreasing diameter, as shown in the embodiments of Figures 15 and 16. Because arteries generally have a gradually decreasing diameter, somewhat larger diameter sections may be desirable consistent with reaching the suction tip into selected small vessels. With respect to the first tubular section, this section generally has a substantially constant diameter (generally, inner or outer diameter, assuming a substantially constant wall thickness), which generally ranges from about 0.95D to about [d + 0.1(Dd)], in further embodiments from about 0.925D to about [d + 0.25(Dd)], and in some embodiments from about 0.9D to about [d + 0.35(Dd)], where d is the diameter of the second tubular section and D is the average diameter of the connecting section. The length of the first tubular section may be the total length of the tubular extension, e.g., the total length of the first tubular section, the second tubular section, and the optional transition section, or in a corresponding embodiment, the total length of only the single tubular section (L in FIG. 6). T 6), and in further embodiments, from about 20% to about 80%, and in further embodiments, from about 30% to about 70% of the length of the connecting section (L in FIG. 6). C) can be from about 4 mm to about 8 cm, and in further embodiments, from about 5 mm to about 6 cm. One of ordinary skill in the art will recognize that additional size and relative size ranges within the above explicit ranges are contemplated and are within the scope of the present disclosure. While FIGS. 15 and 16 depict a tubular extension with a single decrease in diameter to a second tubular section, in other embodiments there can be additional tubular sections of constant diameter with further decreases in diameter, which further divide the overall length of the tubular extension. For example, there can be one additional intermediate tubular section, two additional intermediate tubular sections, or three or more additional intermediate tubular sections.

[0060] The tubular extension, or in embodiments having multiple tubular segments of different inner diameters, the distal tubular segment of the tubular extension can be about 20 percent to about 90 percent of the inner diameter of the engagement segment of the guide catheter, in further embodiments about 30 percent to about 85 percent, and in further embodiments about 35 percent to about 80 percent of the inner diameter of the engagement segment of the tubular shaft. For example, the inner diameter of the distal tip of the tubular extension can range from about 0.5 mm to about 1.9 mm, in further embodiments about 0.6 mm to about 1.8 mm, and in other embodiments about 0.65 mm to about 1.75 mm. The length of the tubular extension can be about 3 cm to about 60 cm, in some embodiments about 5 cm to about 55 cm, and in further embodiments about 8 cm to about 50 cm. A person of ordinary skill in the art will recognize that additional ranges within the explicit ranges above are contemplated and are within the scope of the present disclosure.

[0061] The distal tip of the tubular extension may bend or curve in its natural, unstressed state. Generally, a bent-tip catheter can facilitate tracking of the catheter over a guidewire without adversely altering aspiration capabilities. See, for example, U.S. Patent No. 8,021,351 to Boldenow et al., entitled "Tracking Aspiration Catheter," incorporated herein by reference. Two general forms of bent aspiration tips are shown in FIGS. 18 and 19. Referring to FIG. 18, an aspiration tip 350 includes a straight section 352, a bent portion 354, and a bent-tip section 356 having a flat distal opening 358 generally perpendicular to the axis of the bent-tip section 356. Referring to FIG. 19, an aspiration tip 364 includes a straight section 366, a bent portion 368, and a bent-tip section 370 having an oblique distal opening 372 at an angle other than perpendicular to the axis of the bent-tip section 370. The bent tip sections 356, 370 are generally cylindrical and may have approximately the same diameter as the corresponding straight sections 352, 366. Although two shapes of openings are shown in Figures 18 and 19, any suitable shape of opening may generally be used.

[0062] A specific embodiment of a curved tip of the suction extension 380 is shown in Figure 20. In this embodiment, the distal tip 382 is curved, and although there is no straight section at the distal end of this embodiment, in alternative embodiments there may be a short straight section at the distal end. The distal tip 382 extends from a straight section 384 of the suction extension 380. The arc of the curve is approximately circular, although other gentle arcs can be used, in which case the radius of curvature can be the average of the arc.

[0063] In this embodiment, the tip curvature is gradual, and the distal tip may not have a straight segment. The angle γ can be defined based on the natural point of the tip taken from the initial curvature point at the center of the distal opening. In some embodiments, the angle γ can be about 5 degrees to about 21 degrees, and in further embodiments, about 7 degrees to about 20 degrees. To achieve a gradual curvature, the radius of curvature is generally relatively large; in some embodiments, the radius of curvature can be about 21 mm to about 100 mm, and in further embodiments, about 25 mm to about 75 mm. In some embodiments, the length of the straight portion of the tip after the curve can be about 1 cm or less, in other embodiments, about 0.1 mm to about 6 mm, and in further embodiments, about 0.5 mm to about 4 mm. In alternative embodiments, the curve comprises a gradual arc without a large straight segment distal to it, thereby defining the curve or bend by the angle and radius of curvature. A person of ordinary skill in the art will recognize that additional angle, radius, and length ranges within the explicit ranges above are contemplated and are within the scope of the present disclosure.

[0064] As previously mentioned, the connecting section of the suction extension can have a non-circular, elliptical cross-section that contacts the inner surface of the lumen of the guide catheter and can contact the inner surface at two circumferential locations. The contact between the connecting section of the suction extension and the engagement section of the guide catheter reduces or eliminates flow between these surfaces, thereby directing essentially all of the aspiration flow through the lumen of the suction extension. At the same time, the suction extension can be longitudinally positioned within the engagement section, allowing the user to position the suction extension by sliding the control structure. These various conditions can be effectively balanced to provide the desired functionality.

[0065] Referring to FIG. 21 , a cross-sectional view of the connecting section 400 of the suction extension within the engaging portion 402 of the guide catheter is shown. The non-cylindrical nature of the cross-section of the connecting section 400 is readily apparent. Contact between elements can distort the elliptical shape of the connecting section 400 relative to its shape when separated from the guide catheter, particularly if the undistorted length of the connecting section 400's major axis is greater than the inner diameter of the engaging portion 402. The connecting section 400 can contact the inner surface of the lumen of the engaging portion 402 at two contact points 404, 406. The size of the contact points 404, 406 generally depends on the dimensions of the elements, the shape of the connecting section 400, and the material properties. Generally, the boundaries of the contact points need not be precisely defined.

[0066] As previously discussed, a non-cylindrical connecting section can be characterized by a major axis, a minor axis, and an average diameter derived from the circumference. Based on these parameters, critical points of contact between the connecting section 400 and the engaging portion 402 can be identified by the difference between the major and minor axes, the difference between the major axis of the unconstrained connecting section 400 and the inner diameter of the engaging portion 402, and the difference between the inner diameter of the engaging portion 402 and the average diameter of the connecting section 400. For example, the difference between the major and minor axes can be from about 30 micrometers to about 160 micrometers, and in further embodiments, from about 50 micrometers to about 140 micrometers. In some embodiments, the tolerance, measured as the difference between the diameter of the inner surface of the engaging section 402 and the average diameter of the connecting section, can be, for example, about 4 thou (1 thou = 1 / 1000 inch, 4 thou to 102.6 micrometers) or less, in further embodiments about 3 thou (76.2 micrometers) or less, in further embodiments about 1.75 thou (45 micrometers) or less, and in other embodiments about 1 thou (25.4 micrometers) to about 1.75 thou (45 micrometers), and can have a measurement uncertainty of about zero. For embodiments in which the major axis of the connecting section separated from the guide catheter is larger than the inner diameter of the guide catheter, the difference between the major axis of the unconstrained (i.e., separated from the guide catheter) connecting section 400 and the inner diameter of the engaging section 402 can be about 0 to about 250 micrometers, in further embodiments about 15 micrometers to about 150 micrometers, and in other embodiments about 20 micrometers to about 100 micrometers. A person of ordinary skill in the art will recognize that additional ranges of dimensional deviations within the explicit ranges above are contemplated and are within the present disclosure.

[0067] Catheter components can be formed from one or more biocompatible materials, including metals such as stainless steel or alloys, e.g., Nitinol®, or polymers such as polyetheramide block copolymers (PEBAX®), nylon (polyamide), polyolefins, polytetrafluoroethylene, polyesters, polyurethanes, polycarbonates, polysiloxanes (silicones), polycarbonate urethanes (e.g., ChronoFlex AR®), blends thereof, combinations thereof, or other suitable biocompatible polymers. Radiopacity can be achieved by adding metal markers, such as wires or bands, platinum-iridium alloys, tantalum, tungsten, gold, platinum-tungsten alloys, or blends thereof, or through radiopacifiers, such as barium sulfate, bismuth trioxide, bismuth subcarbonate, powdered tungsten, or powdered tantalum, added to the polymer resin. Medical-grade PEBAX® with barium sulfate and various Shore hardness values ​​is commercially available. Additionally, selected sections of the catheter can be formed from materials that impart the desired stiffness / flexibility to that particular section of the catheter. Similarly, the fittings can be formed from suitable materials, such as one or more metals and / or one or more polymers.

[0068] In some embodiments, the guide catheter, suction extension, or suitable portion thereof comprises a thermoplastic polymer, such as those polymers described above, with embedded metal elements that reinforce the polymer. The wires can be braided, coiled, or otherwise placed over the polymeric pipe liner with some tension to keep the wires in place over the pipe liner. In some embodiments, a polymer jacket, such as a heat-shrink polymer, can be placed over the top and heated to shrink and fuse the covering over the structure and / or to thermally soften the polymer tube, allowing for the incorporation of a metal reinforcement. Upon heating above the softening and / or heat-shrink temperature of the polymer and subsequent cooling, the reinforcing metal becomes embedded within the polymer. In suitable embodiments, the liner and jacket can be the same material or different materials. Suitable wires include, for example, flat stainless steel wire. Wire diameters can range from about 0.00025 inches (0.00635 mm) to about 0.004 inches (0.1 mm), and in further embodiments, from about 0.0005 inches (0.013 mm) to about 0.003 inches (0.075 mm). In suitable embodiments, the braid picks per inch can be from about 20 to about 250 picks / inch, and in further embodiments, from about 50 to about 150 picks / inch. In suitable embodiments, the coil may be a single filament or multifilament coil, for example, having a pitch of about 0.005 inches (0.13 mm) to about 0.1 inches (2.54 mm), and in further embodiments, about 0.01 inches (0.26 mm) to about 0.050 inches (1.27 mm). One of ordinary skill in the art will recognize that additional ranges within the explicitly stated ranges below are contemplated and within the scope of the present disclosure. The wire adds additional mechanical strength while maintaining an appropriate amount of flexibility. The wire can provide some radiopacity, but the radiopaque band generally provides a darker, more discernible image of the wire. However, the image of the wire can provide additional visualization of the catheter during the procedure.

[0069] To reduce the chance of accidental removal of the radiopaque band from the catheter and the chance of the radiopaque band catching on other objects within the vessel, a metal reinforcing wire can be used to cover or encapsulate the radiopaque band, which is then embedded in a polymer. In some embodiments, a polymer jacket can be placed over the metal wire, which correspondingly covers the radiopaque band, and the thermal bond also embeds the radiopaque marker band. Placing a marker band under the metal wire can prevent the band from separating from the catheter if the wall kinks or collapses. If the catheter wall collapses or kinks, the braided wire over the surface of the band will fold over the marker band, preventing it from separating from the structure.

[0070] Referring to FIG. 22, an example of a procedure for forming a reinforced catheter section is shown. A polymer liner 420 is placed over a mandrel 422. In FIG. 2, a metal braid 424 is placed over the polymer liner; commercially available braiding equipment can be used for this step. As shown in FIG. 3, a metal coil 426 is placed over the metal braid 424, and a polymer cover 428 is placed over the coil 426. As shown in FIG. 4, which follows FIG. 22, a heat source 430 can be used to heat the heat-shrink polymer cover 428 to complete the reinforced catheter section 432. Of course, in some embodiments, only a coil or only a metal braid can be used, with the procedure modified accordingly. Similarly, and alternatively, a heat-shrink cover may or may not be used, with the procedure modified accordingly.

[0071] Treatment System The aspiration systems described herein can be used to effectively remove blood clots from blood vessels, such as intracerebral vessels, when treating acute stroke conditions. In particular, the thin-tip catheter of the '792 patent performed well in human clinical trials to restore blood flow in patients with acute embolic stroke, with favorable patient outcomes. The devices described herein can be expected to provide even better aspiration while retaining the ability to access difficult-to-navigate vessels. However, in some acute stroke conditions or other embolic events, it may be desirable to use the aspiration catheter systems described herein in conjunction with other medical devices for treatment. Additionally, certain preferred embodiments of proximal fittings that provide improved procedures for using the suction extensions described herein are described in this section. In particular, the proximal fitting can be modified to allow the tubular extension of the suction extension to be removed from the guide catheter without passing through a hemostasis valve. Additionally, the proximal fitting can be modified with a pressure sensor that can provide valuable information regarding the status of the aspiration process. The availability of pressure information can be utilized to improve various aspects of the procedure, increasing efficiency and reducing potential risks to the patient.

[0072] 23 , a treatment system 450 is shown that includes a guidewire 452, an embolic protection system 454, an aspiration catheter system 456 with a guide catheter 458 and a suction extension 460 shown separated, a percutaneous medical device 462, a microcatheter 464, a delivery catheter 466, a proximal attachment 468, and a negative pressure device, such as a pump or syringe 470. Not all medical system embodiments have all of these components, and some medical system embodiments may have multiple components of each type, for example, multiple different percutaneous medical devices. A suitable structure for the proximal attachment 468 is described in the following section.

[0073] Guidewires suitable for use in tortuous body vessels are described in U.S. Patent Application Publication No. 2016 / 0199620 to Pokorney et al., entitled "Medical Guidewires for Tortuous Vessels," which is incorporated herein by reference. In some embodiments, the embolic protection system 454 can include a guide structure for delivering the device as a guidewire; these systems may or may not use a separate guidewire. Aspiration catheter systems 456 are described in detail herein, and various embodiments described herein can be adapted for use with medical systems and as stand-alone devices. If desired for particularly challenging device delivery, the medical system can include a delivery catheter 466, as described in the '938 application.

[0074] Embolic protection devices have been developed that have small filter longitudinal extents suitable for use in the medical systems described herein and are designed for suitable manipulation to facilitate intravascular delivery. See, for example, U.S. Patent No. 7,879,062 B2 to Galdonik et al., entitled "Fiber-Based Embolic Protection Device," and U.S. Patent No. 8,092,483 B2 to Galdonik et al., entitled "Steerable Device Having a Corewire Within a Tube and Combination with a Functional Medical Device," both of which are incorporated herein by reference. The FiberNet® embolic protection device, based on technology from these patents, is sold by Medtronic Inc. Additional fiber-based filter devices specifically designed for delivery within tortuous vessels are described in U.S. Patent No. 8,814,892 B2 to Galdonik et al., entitled "Embolectomy Devices and Method of Treatment of Acute Ischemic Stroke Condition" (hereinafter the '892 patent), which is incorporated herein by reference. The use of complementary structures is also contemplated in the procedures described herein. The '892 patent describes the use of a filter device as a clot engagement instrument for use with an aspiration catheter. The '892 patent also contemplates the use of complementary structures to facilitate engagement with the clot.

[0075] Microcatheters are designed to access small blood vessels, such as cerebral vessels. Cerebral microcatheters are commercially available, such as the Prowler Select™ (Cordis Neurovascular Inc.) and Spinnaker Elite™ (Boston Scientific Co.). Of course, the term microcatheter covers a wide range of devices, and this description will focus on catheters useful for the procedures described herein. In some embodiments, a microcatheter can include a distal segment that is narrower than the proximal segment. However, in further embodiments, the microcatheter can have a nearly constant diameter along its length, thereby facilitating the delivery of other devices over the microcatheter. The small distal diameter allows the catheter to navigate the tortuous blood vessels in the brain. The distal segment is highly flexible, sufficient for navigation within the blood vessels, yet resilient enough to resist kinking. The microcatheter includes at least one lumen. The microcatheter can then be used to deliver other therapeutic devices, suction, therapeutic agents, or other means of treating a condition. The microcatheter can have a selected size, and in some embodiments, the distal outer diameter of the microcatheter can be from about 1.0 Fr to about 3.5 Fr, and in further embodiments, from about 1.5 Fr to about 3 Fr, and the length can be from about 30 cm to about 200 cm, and in further embodiments, from about 45 cm to about 150 cm. A person of ordinary skill in the art will recognize that additional ranges of sizes within the explicit ranges above are contemplated and are within the present disclosure.

[0076] With respect to the percutaneous medical device 462, suitable devices include, for example, clot engagement devices, angioplasty balloons, stent delivery devices, atherectomy devices such as stent retrievers, and the like. Desirable thrombus engagement devices are described in U.S. Patent Application Publication No. 2017 / 0056061 to Ogle et al., entitled "Thrombectomy Devices and Treatment of Acute Ischemic Stroke With Thrombus Engagement," which is incorporated herein by reference. Stents can be, for example, balloon-expandable, self-expandable, or expandable using any other suitable mechanism. Balloon-expandable stents can also be crimped onto a balloon for delivery to engage a clot in a blood vessel. Some balloon-stent configurations are further described in U.S. Patent No. 6,106,530, entitled "Stent Delivery Device," U.S. Patent No. 6,364,894, entitled "Method of Making an Angioplasty Balloon Catheter," and U.S. Patent No. 6,156,005, entitled "Ballon[sic] Catheter For Stent Implantation," each of which is incorporated herein by reference. Self-expanding stents are further described in U.S. Patent No. 8,764,813 to Jantzen et al., entitled "Gradually Self-Expanding Stem," and U.S. Patent No. 8,419,786 to Cottone, Jr. et al., entitled "Self-Expanding Stent," both of which are incorporated herein by reference.

[0077] After the clot treatment process is complete, it has been found advantageous to at least partially detach the tubular extension of the suction extension from the guide catheter before removing the guide catheter from the patient. If a portion of the tubular extension is removed through the hemostatic valve during this removal process, isolation between the blood vessel and the outside of the patient's body may be lost because the proximal end of the tubular extension is not designed to close. This loss of isolation between the outside of the patient's body and the inside of the catheter system may result in undesirable amounts of bleeding and may complicate the control of trapped clots associated with the nozzle. The fitting designs described herein are intended to address these issues through the inclusion of a tubular storage area distal to the hemostatic valve and connected to access the proximal end of the tubular extension. Several suitable designs are described herein. As noted below, the fitting structure can be assembled from commercially available components or designed as a specific fitting specifically for the aspiration system and / or treatment system described herein.

[0078] Three representative embodiments for the proximal fitting are shown in FIGS. 24-26, in which the device holds the tubular extension of the suction extension within a manifold sealed behind the hemostasis valve. As shown in FIGS. 24-26, the proximal fitting is assembled from multiple fitting components. However, if desired, one or more of the components can be manufactured as a single structure, eliminating one or more connector groups accordingly, and a particular configuration may include various trade-offs, such as ease of use, cost, packaging, industry standards, design flexibility during use, or other factors. As shown in FIG. 24, the components are shown separated, in contrast to FIGS. 25 and 26, which show multiple components connected together. Of course, in certain applications, additional components, such as an entire manifold, can be incorporated into the final proximal fitting structure. For example, an embodiment that allows for the attachment of a pressure sensor is shown below.

[0079] Referring to FIG. 24 , fitting 500 includes a Y-branch manifold 502 suitable for connection to a guide catheter 504 and an extended hemostatic fitting 506. Guide catheter 504 may be any of the guide catheter embodiments described above. Y-branch manifold 502 provides multiple connectors for fluid communication with guide catheter 504. As shown in FIG. 24 , Y-branch manifold 502 includes three connectors 510, 512, and 514, which may be Tuohy-Borst connectors, Luer connectors, or other suitable connectors. Connector 510 may be selected to connect to guide catheter 504. Connector 512 may connect to additional branch manifolds to provide various connections, such as for a negative pressure source such as a pump or an irrigation fluid source, and generally includes at least one connection to a negative pressure device. Connector 514 is configured to connect to extended hemostatic fitting 506. The extension hemostatic fitting 506 includes a connector 516 for mating connection with the Y-branch manifold 502, a hemostatic valve 518, and a tubular portion 520 between the connector 516 and the hemostatic valve 518. The tubular portion 520 can, in some embodiments, have a length suitable for removing the tubular extension of the suction extension from the guide catheter 504 without any portion of the tubular extension or connecting section passing through the hemostatic valve, although the proximal control structure will generally pass through the hemostatic valve, which is a possible configuration throughout the procedure.

[0080] The length of the tubular portion 520 can be selected depending on the length of the tubular extensions, as well as potentially the associated length of the Y-branch manifold 502, as desired, which can collectively be referred to as a tubing section for placing the tubular extensions, along with the connecting section, in hemostatic isolation outside of the guide catheter. It may or may not be desirable to fully retract the tubular extensions into the tubular portion 520, allowing the remainder of the manifold to open. For the range of alternative embodiments contemplated for the proximal fitting of FIG. 24 , the dimensions of the tubular section can be approximately the same in a particular configuration. Generally, the length of the tubular portion 520 of the extended hemostatic fitting 506 can be from about 8 cm to about 55 cm, from about 9 cm to about 50 cm in further embodiments, and from about 10 cm to about 45 cm in other embodiments. A person of ordinary skill in the art will recognize that additional ranges of lengths within the above explicit ranges are contemplated and are within the scope of the present disclosure.

[0081] In alternative or additional embodiments, the extended hemostatic fitting 506 can include a tubing element with two connectors on either end and a separate hemostatic valve with a luer or other connector on the opposite end, which are interconnected to form a structure essentially equivalent to that shown in FIG. 24. Similarly, one or more additional fitting components can be connected using appropriate connectors, such as additional branch elements, between the extended hemostatic fitting 506 and the Y-branch manifold 502, and similarly, additional fitting components can be connected at connector 512 to provide additional features to the fitting, such as connection of a pressure sensor or other structure. Thus, the proximal fitting can be modified with appropriate structure to provide the desired functionality while providing the ability to retract the tubular extension into the closed fitting. While this description has focused on assembling multiple fitting components to provide an overall fitting structure, one or more of these components can be formed as an integral part of a corresponding unitary structure, such as integrating Y-branch manifold 502 and extended hemostatic fitting 506 into a single structure by replacing connectors 514 and 516 with a single tubing section, and similar integration can be performed to add additional structures. A unitary structure incorporating the features of Y-branch manifold 502 and extended hemostatic fitting 506, including a branch manifold with an extended hemostatic valve portion, can be a suitable alternative to the structure of Figure 24. Therefore, various combinations of connecting elements, redesigns of single components, and so forth can be implemented to form a desired proximal fitting design.

[0082] Referring to an alternative configuration of the proximal fitting structure in FIG. 25 , a three-branch manifold 530 is connected to the guide catheter 504, and an extended hemostatic fitting 518 is connected to the connector of one branch of the three-branch manifold 530. The three-branch manifold 530 includes a first connector 534 connected to the proximal connector 536 of the guide catheter 504, a first branch connector 538, a second branch connector 540, and a hemostatic valve 542. The second branch connector 540 is connected to the extended hemostatic fitting 506, as described in detail with respect to FIG. 24 . The proximal connector 536 can be connected to a negative pressure source directly or through an additional branch manifold. The hemostatic valve 542 can be used for the introduction of additional therapeutic structures or other desired devices. Again, the structure shown in FIG. 25 can be further divided into additional components as desired. For example, the three-branch manifold can effectively be formed using two consecutive Y-branch connectors. Again, as discussed above with respect to Figure 24, additional fixture components can be connected to the proximal fixture structure of Figure 25 to provide additional features. Similarly, one or more separate components of the proximal fixture can be configured as a unitary structure. Thus, component addition and / or assembly / bonding processes can be combined to design a desired proximal fixture configuration.

[0083] Referring to FIG. 26, a further embodiment of a proximal fitting employing a symmetric Y-branch configuration is shown. As shown in FIG. 26, a symmetric Y-branch manifold 550 includes a first connector 552 connected to a guide catheter 504, a branch hemostatic valve 554, and a branch connector 556. The branch connector 556 is connected to a T-branch fitting 558. The T-branch fitting 558 has a T-connector 560, which is shown connected to a negative pressure device 562, such as a syringe or pump. The T-branch connector 556 is further connected to an extended hemostatic fitting 506, which is described in detail with respect to FIG. 24, including, but not limited to, the dimensions of its components. The T-branch connector 556 includes connectors 564 and 566 for connecting to mating connectors 556 and 516, respectively. The structure shown in Figure 26 can be formed with multiple components used to form that structure, for example, a separate component comprising hemostasis valve 554 connected by an appropriate connector to a mating connector on a correspondingly modified symmetrical Y-branch manifold 550. Again, additional fitting components can be connected to the proximal fitting structure of Figure 26 to provide the additional features described above with respect to Figure 24. Similarly, one or more separate components of the proximal fitting can also be constructed as a unitary structure. Thus, component addition and / or assembly / bonding processes can be combined to design a desired proximal fitting configuration.

[0084] The fittings can be formed from materials suitable for assembly by sterile procedures, which in some embodiments may include exposing the components to radiation. The components can be formed from either rigid and / or flexible materials, such as the polymers listed herein, and the connectors can be formed from a combination of materials suitable for forming a seal, such as elastomers. Rigid components can be formed from, for example, polycarbonate or other suitable polymers. The tubular portion 520 of the extended hemostatic fitting 506 can be formed from a more flexible polymer, such as one or more of the polymers previously described for the catheter body, such as polyetheramide block copolymer (PEBAX®), nylon (polyamide), polyolefin, polytetrafluoroethylene, polyester, polyurethane, polycarbonate, polysiloxane (silicone), polycarbonate urethane (e.g., ChronoFlex AR®), mixtures thereof, combinations thereof, or other suitable biocompatible polymers. As previously mentioned, various fixture structures can be assembled from additional components that are in addition to or subdivide the various components of the embodiments, and / or the components can be formed as correspondingly molded unitary structures. Thus, particular designs can be assembled from existing commercially available components, or all or part of the fixture can be manufactured specifically for these applications.

[0085] The proximal fitting may also include a pressure sensor to help guide the procedure. When a pump is used to provide negative pressure, the pressure set at the pump establishes the differential pressure limit. When fluid flows freely to the pump, the differential pressure in the conduit to the pump may be relatively small. When flow is virtually completely blocked, the gauge pressure in the line may be approximately the pump pressure, which is a negative pressure indicative of suction. Intermediate pressure levels may indicate flow restriction due to normal catheter or suction extension configurations that may cause some flow resistance, or a less severe blockage of flow from various possible sources. In either case, measuring the line pressure in the proximal fitting can provide valuable information to aid in the procedure, as discussed further below.

[0086] There are various possible configurations for the pressure sensor associated with the proximal fitting, with three representative embodiments shown in FIGS. 27-29. Referring to FIG. 27, a pump 570 and a pressure gauge 572 are connected to a Y-manifold 574 that includes a connector 576 that can be attached to a manifold connector in a fitting that connects to a guide catheter, as shown in FIGS. 5 and 24-26. The pump 570 and the pressure gauge 572 can be connected to the Y-manifold 574 using tubing 578, 580, respectively. The connection of tubing 578, 580 to the Y-manifold 574 can be achieved with suitable connectors, or they can be formed integrally with the components. In this embodiment, the pump 570 and optionally the pressure gauge 572 need not be sterile, although it is intended that no flow from these devices reach the patient. This configuration may be acceptable even if the device is not sterile, provided that non-sterile components are properly isolated from the patient's fluids. A selected length of parting line, e.g., 6 feet, to provide adequate sterile isolation is shown diagrammatically in Figure 27 by a dashed line annotated with an arrow. Commercially available suction pumps for medical use, some exemplary pumps of which are described above, can operate at gauge pressures of about -1 to about -26 inches of mercury (-25 mmHg to -660 mmHg). Medical high-pressure tubing is also available, for example, from MIVI Neuroscience, Inc. or Penumbra, Inc.

[0087] A further embodiment of a fitting modified with a pressure sensor is shown in FIG. 28 . The fitting components of FIG. 28 include a Y-branch connector 590 having a distal connector 592, a proximal connector 594, and a branched connector 596, and a pressure sensor component 598 having a first connector 600 and a second connector 602 shown connected to the branched connector 590. The pressure sensor component 598 further includes a pressure sensor 604 attached to a side wall of the pressure sensor component 598. An electrical wire 606 extends from the pressure sensor 604 and terminates in an electrical connector 608, which may be a multi-pin clip or other suitable connector configuration. The electrical connector 608 may be suitable for connection to a suitable monitor or display. Commercially available pressure sensor components for use as the pressure sensor component 598 are commercially available, for example, from PendoTECH of Princeton, New Jersey, USA. These components can be purchased sterile, or they can be sterilized prior to use using a convenient method, such as using gamma irradiation. A pump or other negative pressure device can be connected to the second connector 602 or other suitable part of the final assembled proximal fitting.

[0088] Another embodiment of a fitting component modified with a pressure sensor is shown in FIG. 29. In this embodiment, a Y-manifold 620 includes a connector 622 for connecting to other components of the proximal fitting and a connector 624 connected to tubing 626 for connection to a pump or other device. The Y-manifold 620 further includes a branch 628 modified to include a pressure sensor 630 at the end of a conduit. The pressure sensor 630 can be fitted onto a connector cap, or it can sealingly mate with the branch 628, or it can be otherwise modified with a sealed attachment. The pressure sensor 630 is operatively attached to an electrical cable 632 that terminates in an electrical connector, such as a multi-pin clip. Pressure sensor dies or assemblies suitable for medical use are commercially available, for example, from Merit Medical Systems, Inc. (Merit Sensors), and can be modified for such connection.

[0089] Treatment using a therapeutic system As previously mentioned, medical systems including the aspiration catheter systems described herein can be used with the aspiration catheter system as a stand-alone treatment device, possibly in conjunction with a guidewire and / or other delivery assistance devices, or with supplemental treatment devices for the treatment of ischemic vascular occlusions. In particular, in some embodiments, the aspiration system is used with an embolic protection device, and in further embodiments, any form of clot engagement device, stent, balloon, atherectomy device, or the like may also be used. In either case, a guidewire is generally used to provide access to the treatment site. The guide catheter portion of the aspiration catheter system may or may not be positioned prior to introducing the suction extension. The structure of certain components has already been described in detail above and will not be repeated in this section so that the focus can be on the use of the device.

[0090] To treat an acute ischemic stroke condition, referring to FIG. 30 , a patient 700 is shown with three alternative vascular access points: a femoral artery 702, an artery 704 in the arm, or a carotid artery 706 in the neck. Regardless of the access point, a catheter and associated devices are guided into the left or right carotid artery to reach a clot 708 in a cerebral artery 710 in the brain. Referring to the schematic diagram of FIG. 31 , the clot 708 is shown in the cerebral artery 710, with a guidewire 712 positioned with its distal tip past the clot. A guide catheter 714 is positioned over the guidewire within the carotid artery 706. A suction extension 716, along with a connecting section 718, resides within the guide catheter 714, and a tubular extension 720 extends from the guide catheter 714 over the guidewire 712. Referring to FIG. 32 , the tubular extension 720 can be advanced over the guidewire to a position proximate to the clot 708. Suction can be applied as indicated by the flow arrows in the figure. The guidewire 712 may or may not be removed before suction is applied. The aspiration catheter has been successful in removing clots causing ischemic stroke without intervention with additional medical devices. However, for more difficult clots, additional treatment devices can be used, as described in more detail below.

[0091] Using an embodiment of a proximal fitting modified with pressure sensing capabilities, as shown in FIGS. 27-29, the initiation of suction described with respect to FIG. 32 can be confirmed for its effectiveness. Once negative pressure is applied to the catheter system and adequate flow is established, the pressure within the proximal fitting can be within an appropriate range. The exact range of expected pressure will generally depend on the specific design of the suction extension, and the acceptable pressure range can be adjusted accordingly. In either case, the pressure can be checked in real time during the procedure and compared to the modified specifications for the particular suction catheter component. If the pressure immediately following the initiation of suction is closer to the pump negative pressure than would be expected based on the established acceptable range, the physician can at least partially retract the suction extension from its delivered state, with or without stopping suction. Partial retraction can be used to attempt to untwist the suction extension without completely removing it. As further described below, if a proximal attachment is used that allows removal of the tubular extension for the patient without passing through a hemostasis valve, the tubular extension can be visually checked without exposing the tubular extension to the ambient atmosphere. After verifying that the tubular extension is ready for use or after replacing the suction extension, the suction extension can be delivered again.

[0092] With reference to Figures 33 and 34, the use of a fiber-based filter device is illustrated in conjunction with an aspiration catheter system. As shown in Figure 33, a clot 708 is shown in a cerebral artery 710, and a deployed fiber-based filter 734 supported on a guidewire 735 is positioned with the filter deployed past the clot. The fiber-based filter 734 can have fiber elements that extend essentially to the wall of the blood vessel, i.e., the cerebral artery 710. A tubular extension 736 can be positioned with its distal tip just proximal to the clot; the remainder of the aspiration catheter system is not shown in this view. With reference to Figure 34, the fiber-based filter 734 can be pulled toward the tubular extension 736 while suction is applied to facilitate removal of the clot 708. The clot 708 can be broken up and removed by suction, and / or all or a portion of the clot 708 can be drawn into the tubular extension 736, optionally along with all or a portion of the fiber-based filter, and / or all or a portion of the clot 708 can be held up to the opening of the tubular extension 736, with the fiber-based filter holding the clot. In either case, once the clot has been adequately stabilized, the device and any clot still within the vessel or catheter can be removed from the patient. Device removal is discussed further below.

[0093] Further use of additional medical devices to facilitate clot removal is illustrated in FIGS. 35 and 36. As shown in FIG. 35, a clot 708 is shown in a cerebral artery 710, a treatment device 744 is positioned at the clot, and a deployed fiber-based filter 746 supported on a guidewire 748 is positioned with the filter deployed past the clot. Suitable treatment devices for engaging the clot are described above. The selected treatment device is deployed, generally with protection from the deployed fiber-based filter and, optionally, with suction. Once the treatment device engages the clot, the collection of the remaining portion of the clot and the treatment device can be removed, as shown in FIG. 36, similar to the process illustrated in FIG. 35. Notably, the treatment device can be removed, although portions such as a stent may remain in place, and removal can proceed or occur in conjunction with removal of the filter and / or remaining clot debris. All or a portion of the clot 708, if not already broken up and removed by suction, can be drawn into the tubular extension 736, optionally along with all or a portion of the fiber-based filter, and / or all or a portion of the clot 708 can be held to the distal opening of the tubular extension 736, with the fiber-based filter retaining the clot. Again, once the clot has been adequately stabilized, any devices and clots still within the vessel or catheter can be removed from the patient. The use of multiple additional therapeutic devices can be accomplished by extending the procedure outlined above and repeating the steps involving the additional medical devices.

[0094] Additionally, in the embodiments of Figures 33-36, a pressure sensor connected to the proximal fitting can be used to guide treatment. If the pressure in the proximal fitting rises to a pressure outside the target range when vacuum is initiated, corrective action can be taken to remove any kinks, replace the suction extension, or other appropriate precautions. Additionally, once suction is applied and the clot appears to be addressed, the pressure in the proximal fitting can be checked to assess the condition of the clot and catheter, such as whether the clot is lodged in the distal end of the suction extension. Appropriate action can be taken based on the pressure in the proximal fitting.

[0095] FIG. 37 shows the aspiration treatment system after treating a blood clot in a cerebral artery 750. A suction extension 752 is positioned so that its distal tip is within the cerebral artery 750, and a thrombus 754 may or may not be at the ostium. A guide catheter 756 is positioned with its distal end within a carotid artery 758. A section of the interior of the guide catheter 756 is shown in the balloon inset of FIG. 37. A connecting section 760 of the suction extension 752 is within the guide catheter 756, with a control wire 762 extending proximally. A patient's leg 764 is shown with an introducer sheath 766 with a hemostasis valve 768 extending from the leg. The guide catheter 756 extends from the hemostasis valve 768. A Y-branch manifold 770 is connected to the distal end of the guide catheter 756 at a connector 772. Extended hemostasis fitting 774 connects to Y-branch manifold 770 at connector 776 and terminates at hemostasis valve 778. Control wire 762 extends from hemostasis valve 778. Y-branch manifold 770 has connector 780, which is connectable to a further Y-branch manifold 782 which has connector 784 for connecting to connector 780. The Y-branch manifold can be connected to a vacuum line 786, which can be connected to a pump or other vacuum device, and a pressure sensor line 788, which can be connected to a suitable pressure sensor such as those shown in Figures 27-29.

[0096] At the stage of the procedure shown in FIG. 37, procedural steps can begin to gradually withdraw the device from the patient. It may be advantageous to hold the guide catheter in place while other components are removed and the success of the procedure is confirmed. Generally, it is desirable to hold the guide catheter in place until the procedure is fully completed, as placement of the guide catheter is labor-intensive. Measuring pressure at the proximal fitting can provide useful information regarding conditions that may be blocking flow to the suction extension 752. Referring to FIG. 38, the guide catheter 756 is still in place within the carotid artery 758, and the cerebral artery 750 is free of devices and clots. Referring to the balloon inset associated with FIG. 38, a further enlarged cross-sectional view shows the distal end of the suction extension 752 within the interior of the guide catheter 758. A thrombus (thrombus 790) may or may not be associated with the distal end of the guide catheter 758, which may be deposited in situ as the suction extension 752 is retracted into the guide catheter 758 and / or at the distal end of the suction extension 752 (thrombus 756). Again, pressure measurements at the proximal fitting can provide useful information regarding a possible thrombus blocking flow from the catheter system to a negative pressure device such as a pump.

[0097] 39, the balloon inset shows a further enlarged cross-sectional view of the connecting section 760 of the suction extension 752 within the Y-branch manifold 770 as the suction extension 752 is further withdrawn from the patient. Continuing to apply negative pressure in this state will cause fluid to be drawn out of the guide catheter 756 rather than through the suction extension 752. Whether or not the suction extension 752 is clogged, this state can provide the ability to further remove any clots 790 at the end of the guide catheter 756, and the suction can further stabilize the clot 790, if any, for the subsequent portion of the procedure. At this stage of the procedure, the pressure within the proximal fitting can provide information regarding fluid flow into the guide catheter 756.

[0098] The suction extension 752 is shown completely removed from the guide catheter 756 in Figure 40. The distal balloon inset in Figure 40 shows a further enlarged view of the distal end of the suction extension 752 within the Y-branch manifold 770, but the distal end of the suction extension 752 can be fully retracted into the extended hemostatic fitting 774, as indicated by the dashed line connected to the balloon inset. The proximal balloon inset in Figure 40 shows a further enlarged cross-sectional view of the connecting section 760 within the extended hemostatic fitting 774 in a position distal to the hemostatic valve 778. Again, the pressure within the proximal fitting can be useful in providing information during this portion of the procedure.

[0099] Although the guide catheter 756 can be removed from the patient after treating the clot, it may be desirable to at least partially remove the suction extension 752 relative to its deployed position while the guide catheter is in place to reduce the risk of embolization of thrombus that may have become trapped associated with the aspiration system components but not fully removed from the patient. Figures 38-40 illustrate three stages of suction extension removal, at which point the guide catheter 756 can be selected to be removed from the patient, generally through the hemostatic valve 768 of the introducer sheath 766. As shown in Figure 38, with the distal end of the suction extension 752 remaining within the guide catheter 756, any thrombus associated with the suction extension 752 is not within the guide catheter 756, thereby reducing the likelihood of embolization. 39, as previously described, when the connecting section 760 is within the Y-branch manifold 770, suction is applied directly to the lumen of the guide catheter 756, regardless of whether the suction extension 752 is clogged or not; this application of suction directly to the guide catheter 756 provides additional safety in reducing the chance of embolization. Furthermore, as shown in FIG. 40, completely removing the suction extension 752 from the guide catheter 756 provides additional safety against embolization of thrombus associated with the suction extension 752. As shown in FIG. 40, the suction extension 752 remains isolated behind the hemostatic valve 778, which allows for desirable control of pressure within the guide catheter 756, further reducing the risk of embolization as well as contamination.

[0100] The suction catheter system is generally sterilized as appropriate, such as by e-beam or gas sterilization. The components of the suction catheter system can be packaged together or separately in a sealed package, such as plastic packaging, as known in the art. The package is generally labeled as appropriate in accordance with FDA or other regulatory agency regulations. The suction catheter system can be packaged with other components, such as guidewires, filter devices, and / or other medical devices. The packaged system is generally sold with detailed instructions for use in accordance with regulatory requirements.

[0101] Bench tests and calculations were performed to evaluate the general aspiration performance of using a suction extension in contact with a guide catheter or other commercially available aspiration catheters, and these results are described in the '938 application and are incorporated herein by reference.

[0102] The above-described embodiments are intended to be illustrative, not limiting. Further embodiments are within the scope of the following claims. Moreover, while the present invention has been described with reference to specific embodiments, those skilled in the art will recognize that changes can be made in form and detail without departing from the spirit and scope of the present invention. Any incorporation by reference of the above-mentioned documents is limited to not incorporating any subject matter contrary to the explicit disclosure herein. Unless expressly indicated otherwise, and as suggested in the discussion, to the extent that certain structures, configurations, and / or processes are described with components, elements, ingredients, or other moieties, the disclosure herein should be understood to encompass embodiments comprising certain components, elements, ingredients, other moieties, or combinations thereof, as well as embodiments consisting essentially of such certain components, ingredients, or other moieties, or combinations thereof, which may include additional features that do not alter the basic nature of the subject matter.

Claims

1. a connecting section comprising a polymer tube; a tubular extension connected to the polymer tube of the connecting section and extending distally from the connecting section; a control wire extending proximally from the connecting section, the control wire having a distal end terminating integrally with a wire coil, the wire coil embedded in the polymer tube of the connecting section defining a major axis transverse to the polymer tube that is longer than a minor axis transverse to the polymer tube; A suction extension having

2. The suction extension of claim 1 , wherein the wire coil is a flat wire coil.

3. 10. The suction extension of claim 1, wherein the sections of polymer tubing surrounding the wire coil are heat bonded together.

4. The suction extension of claim 1 , wherein at least a portion of the polymer tube carrying the control wire and the connecting section has a non-cylindrical cross section.

5. The suction extension of claim 1 , wherein at least a portion of the polymeric tube has a non-circular cross-section including a long outer diameter along the major axis and a short outer diameter along the minor axis that is shorter than the long outer diameter.

6. 6. The suction extension of claim 5, wherein the difference between the longer outer diameter and the shorter outer diameter is from about 30 micrometers to about 160 micrometers.

7. The suction extension of claim 1 , wherein a portion of the polymer tube of the connecting section is reinforced to secure the control wire.

8. The suction extension of claim 1 , wherein the outer diameter of the connecting section is substantially constant along its length.

9. The suction extension of claim 1 , wherein the outer diameter of the connecting section tapers distally.

10. The suction extension of claim 1 , wherein the tubular extension has a length of about 5 cm to about 55 cm.

11. The suction extension of claim 1 , wherein the distal end of the suction extension is curved.

12. a suction extension according to claim 1; A guide catheter; Equipped with the guide catheter having a tubular shaft; the tubular shaft has a proximal end and a distal opening, and includes a central lumen extending from the proximal end to the distal opening; the central lumen having an inner diameter; Suction catheter system.

13. The aspiration catheter system of claim 12 , wherein the connecting section has a major outer diameter along the major axis that is greater than the inner diameter of the central lumen.

14. At least a portion of the polymer tube has a non-circular cross-section including a long outer diameter along the major axis and a short outer diameter along the minor axis that is shorter than the long outer diameter; 14. The aspiration catheter system of claim 13, wherein the longer outer diameter of the connecting section separated from the guide catheter is between about 15 micrometers and about 150 micrometers longer than the inner diameter of the central lumen.

15. 13. The aspiration catheter system of claim 12, wherein the diameter of the connecting section at its maximum circumference (C), as defined by C / π, is less than the inner diameter of the central lumen by no more than about 76 micrometers.

16. 13. The aspiration catheter system of claim 12, wherein the guide catheter further includes a proximal section operatively connected to the proximal end of the tubular shaft, the proximal section configured to apply negative pressure to the central lumen when a negative pressure device is activated, and the proximal section has a fitting that connects to the negative pressure device.

17. 17. The aspiration catheter system of claim 16, wherein an aspiration lumen is formed extending from the fitting configured to connect to the negative pressure device, through a portion of the central lumen of the tubular shaft of the guide catheter, and through the suction extension to a distal opening of the tubular extension.