Medical device with sensing characteristics for intravascular treatment site and method thereof

Sensors integrated into medical devices provide real-time data on clot characteristics and device compression, addressing the limitations of fluoroscopy and X-ray imaging by enhancing treatment precision and monitoring in thrombectomy and occlusion procedures.

JP2026041755APending Publication Date: 2026-03-10MICROVENTION INC
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-11-12
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

Current medical devices lack the ability to accurately measure the size, stiffness, and composition of blood clots during thrombectomy procedures, and the degree of compression of occlusion devices in vascular malformations, relying primarily on fluoroscopy and X-ray imaging which is inadequate for determining optimal treatment strategies and monitoring healing progress.

Method used

Incorporation of sensors, such as length sensors, pressure sensors, and force sensors into medical devices like stentrievers and occlusion devices to measure and transmit data on clot characteristics and device compression, allowing for real-time monitoring and assessment of treatment efficacy.

Benefits of technology

Enables precise determination of clot characteristics and device compression, reducing the need for multiple passes and unnecessary X-ray procedures, improving clinical outcomes by ensuring complete clot removal and monitoring healing processes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The Company offers medical devices, including occlusion devices, thrombectomy systems, and stents. The medical device measures characteristics of a treatment site within a blood vessel. The medical device can include pressure and / or length sensors that can be used to determine the effectiveness of the medical device during or after treatment. These sensors are particularly useful for occlusion and thrombectomy devices.
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Description

[Technical Field]

[0001] (Related Applications) This application claims the benefit of and priority to U.S. Provisional Application No. 63 / 091,756, entitled "Medical Devices With Sensing Characteristics," filed October 14, 2020, which is incorporated herein by reference in its entirety.

[0002] The present disclosure relates to devices, and more particularly to medical devices that sense characteristics of an endovascular treatment site to determine the effectiveness of the device. [Background technology]

[0003] Medical devices have been developed to treat a variety of ailments in the human body. For example, occlusion devices, such as embolic coils and intracavitary devices, are typically used to prevent blood flow through blood vessels for the treatment of aneurysms and other vascular malformations. In another example, thrombectomy devices, such as stentrievers, are typically used to engage and capture thrombi.

[0004] When these types of devices are delivered or used within a patient's body, physicians' methods are typically limited to fluoroscopy (i.e., X-ray video feeds) or similar visualization techniques to help determine where and how the therapeutic device is deployed within the patient's body. Similarly, after the procedure is performed, physicians' methods are typically limited to either static angiograms (i.e., static X-ray images) or fluoroscopy to monitor ongoing healing and implant position. Relying primarily on fluoroscopy or X-rays can present several challenges in achieving the desired therapeutic outcome.

[0005] For example, stentrievers are typically used to capture and remove blood clots (also referred to interchangeably herein as thrombi or emboli) from within blood vessels. These clots tend to be composed of various fragments or combinations of blood cells, collagen, cholesterol, plaque, fat, calcified plaque, arterial tissue, protein aggregates (e.g., fibrin), and / or other materials. Depending on the size and composition of the clot, most clots are not visible on angiograms or fluoroscopy. As a result, physicians may have difficulty determining the size, particularly length, of the clot, as well as its consistency and composition, which are important factors when determining the optimal treatment and removal method for the clot.

[0006] For example, mature thrombi are typically fibrin-rich and therefore relatively rigid, whereas fresh thrombi are relatively soft and typically comprised mostly of red blood cells. Thus, mature thrombi tend to be more difficult to remove from blood vessels than fresh thrombi and typically require multiple "passes" or removals to achieve recanalization.

[0007] Currently, there is no way to measure the size (e.g., length) or stiffness / composition of a blood clot, so physicians typically confirm a stroke using a CTA or diagnostic angiogram, which shows where the blockage begins. However, it is unclear how far the blood clot will extend. As a result, multiple passes of the thrombectomy device may be required to ensure the entire blood clot is captured and removed. This often results in a poor patient outcome because the blood clot breaks up into smaller pieces. Therefore, addressing the entire length of the blood clot during the first pass may be critical to achieving the best clinical outcomes for stroke patients.

[0008] In another example, occlusion devices, such as embolic coils or intrasaccular devices, are typically delivered into aneurysms or other vascular malformations, where they block blood flow to the occluded area and promote tissue growth. In the case of aneurysm treatments, in particular, the aneurysm may open or recanalize. Based on some clinical observations, this recanalization may occur at least in part due to a gradual wound healing response within the aneurysm, characterized by tissue scarring and contraction of fibrous tissue, as well as blood pressure on the tissue or occlusion device. Therefore, this fibrous tissue compression and pressure may compress embolic coils, intrasaccular devices, and similar occlusion devices as the healing process progresses. Therefore, most physicians perform follow-up imaging tests approximately 6–12 months after implantation to check for signs of undesired recanalization or desired complete occlusion. However, it can be difficult to determine the degree of compression that has occurred through visualization. It may also be undesirable to subject patients to numerous X-ray or fluoroscopic procedures to monitor healing progress. However, other than visualization, no additional or alternative mechanisms exist to provide data regarding the progress of the treatment site.

[0009] In this regard, there is a need for improved medical devices, such as stentrievers, intracavitary devices, embolic coils, and other therapeutic methods that can provide additional information to physicians during or after a therapeutic procedure. The statements in this section merely provide background related to the present application and do not necessarily constitute prior art. Summary of the Invention [Problem to be solved by the invention]

[0010] (Means for solving the problem) This Summary is provided to introduce selected concepts in a simplified form that are further described below in the Description of the Disclosure. This Summary is not primarily intended to identify key features of the claimed subject matter, nor is it intended to be used primarily as an aid in determining the scope of the claimed subject matter. However, it may be used as a basis to support language introduced in present and future claims.

[0011] According to one aspect of the present disclosure, an instrument for insertion into a saccular cavity is provided, which may include a sensor that measures compression of the instrument (e.g., via a length sensor or a pressure / force sensor) within or near an aneurysm, saccular cavity, or other vascular malformation.

[0012] According to another aspect of the present disclosure, a system is provided, which may include an occlusion device having a sensor for detecting compression data of the intracapsular device, and may further include a reader for receiving the compression data to determine whether recanalization has occurred.

[0013] According to yet another aspect of the present disclosure, there is provided a method of performing a medical procedure, the method may include receiving compression data from a sensor on the occlusion device, and determining from the compression data whether recanalization of the sac lumen has occurred.

[0014] According to one aspect of the present disclosure, a stent triever is provided that can include an array of sensors disposed longitudinally and circumferentially around the stent triever, the sensors detecting reaction forces from an embolus or thrombus.

[0015] According to another aspect of the present disclosure, there is provided a system for removing an embolus or thrombus from a blood vessel. Such a system may include a stentriever having at least one sensor for detecting a reaction force from an embolus or thrombus, and a transceiver for transmitting information about the reaction force detected from the at least one sensor. Further, the system may include a reader for receiving information from the transceiver.

[0016] According to yet another aspect of the present disclosure, a method of performing a medical procedure is provided. The method may include advancing a stentriever until a sensor at the distal end of the stentriever no longer detects the treatment region. The method may further include detecting a reaction force by the sensor on the stentriever on the treatment region. The method may also include distinguishing between an embolus and a thrombus based on the stiffness of the treatment region.

[0017] According to one aspect of the present disclosure, there is provided a delivery device that may include a tubular member and an implant disposed within the tubular member and releasable at a distal end of the tubular member, the implant optionally having a pressure sensor attached thereto.

[0018] According to another aspect of the present disclosure, a vascular occlusion device is provided, which may include an embolic coil having a pressure sensor attached to its distal end.

[0019] According to yet another aspect of the present disclosure, there is provided a method for determining compression of a vaso-occlusive device. Such a method may include measuring a resonant frequency of an inductor-capacitor LC resonator coupled to a distal end of an embolic coil. Further, the method may include determining whether recanalization has occurred based on the resonant frequency. [Brief explanation of the drawings]

[0020] The novel features believed characteristic of the present disclosure are set forth in the appended claims. In the following description, like parts are designated throughout the specification and drawings. The drawings are not necessarily drawn to scale, and certain figures may be shown in exaggerated or generalized form for the sake of clarity and conciseness. However, the present disclosure itself, as well as its preferred modes of use, further objects and advantages, will best be understood by reference to the following detailed description of exemplary embodiments when read in conjunction with the accompanying drawings.

[0021] [Figure 1] FIG. 1 illustrates an occlusion device deployed within a lumen, according to one embodiment of the present disclosure.

[0022] [Figure 2] FIG. 2 illustrates the occlusion device of FIG. 1 being compressed to effect recanalization of the aneurysm, according to one embodiment of the present disclosure.

[0023] [Figure 3] FIG. 3 is a diagrammatic view of the x-ray image of FIG. 1 according to one embodiment of the present disclosure.

[0024] [Figure 4] FIG. 4 is a diagrammatic view of the x-ray image of FIG. 2 according to one embodiment of the present disclosure.

[0025] [Figure 5] FIG. 5 illustrates an exemplary occlusion device having a relaxed barrel configuration with exemplary electrical conductors forming a loop antenna in an initial relative position upon removal, according to one embodiment of the present disclosure.

[0026] [Figure 6] FIG. 6 illustrates an exemplary occlusion device in a partially compressed configuration with exemplary electrical conductors in an altered position to form a smaller loop antenna, according to one embodiment of the present disclosure.

[0027] [Figure 7]FIG. 7 illustrates an exemplary measurement device for analyzing data collected from an occlusion device, according to one embodiment of the present disclosure.

[0028] [Figure 8] FIG. 8 is an exemplary flowchart for receiving and processing length measurements of an occlusion device according to one embodiment of the present disclosure.

[0029] [Figure 9] FIG. 9 is an exemplary graph illustrating two different interrogation frequencies transmitted from a spectrum analyzer according to one embodiment of the present disclosure.

[0030] [Figure 10] FIG. 10 is an exemplary graph illustrating a nominal trend according to one embodiment of the present disclosure.

[0031] [Figure 11] FIG. 11 is an exemplary graph illustrating baseline trends showing slight, moderate, and unacceptable movement between marker bands, according to one embodiment of the present disclosure.

[0032] [Figure 12] FIG. 12 illustrates an occlusion device having two length sensors for sensing compression of the proximal and distal halves of the occlusion device, according to one embodiment of the present disclosure.

[0033] [Figure 13] FIG. 13 illustrates the occlusion device of FIG. 12 in a partially compressed configuration, according to one embodiment of the present disclosure.

[0034] [Figure 14] FIG. 14 illustrates an occlusion device with a pressure sensor according to one embodiment of the present disclosure.

[0035] [Figure 15] FIG. 15 illustrates an exemplary embolic coil with a wireless pressure sensor according to one embodiment of the present disclosure.

[0036] [Figure 16] FIG. 16 illustrates an exemplary embolic coil for monitoring pressure while implanted within a cerebral aneurysm, according to one embodiment of the present disclosure.

[0037] [Figure 17] FIG. 17 illustrates a stent having a pressure sensor positioned and configured to monitor pressure near an aneurysm, according to one embodiment of the present disclosure.

[0038] [Figure 18] FIG. 18 illustrates an exemplary stentriever in place during self-expansion within a middle cerebral artery occluded by an embolus or thrombus, according to one embodiment of the present disclosure.

[0039] [Figure 19] FIG. 19 is a diagram of an exemplary stentriever showing exemplary micro-force sensors attached to struts along their length, according to one embodiment of the present disclosure.

[0040] [Figure 20] FIG. 20 is a diagram of an exemplary stentriever showing exemplary micro-force sensors evenly spaced circumferentially, according to one embodiment of the present disclosure.

[0041] [Figure 21] FIG. 21 is a chart illustrating the location of micro-force sensors along a stentriever, according to one embodiment of the present disclosure.

[0042] [Figure 22] FIG. 22 illustrates an exemplary stentriever with a micro-force sensor communicatively coupled to a wireless power transmitting and receiving capsule, according to one embodiment of the present disclosure.

[0043] [Figure 23] FIG. 23 is a diagram illustrating an example plot showing a frequency domain representation of frequency components added to an intermediate frequency (IF) signal, according to one embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0044] The description set forth below in connection with the accompanying drawings is intended to describe exemplary embodiments of the present disclosure and is not intended to represent the only manner in which the present disclosure may be constructed and / or utilized. The description sets forth the functions and sequence of blocks for constructing and operating the present disclosure in connection with the illustrated embodiment. However, it should be understood that the same or equivalent functions and sequences may be accomplished by different embodiments that are intended to be encompassed within the spirit and scope of the present disclosure.

[0045] Although some of the following embodiments are shown as treating aneurysms, it is contemplated that any type of vascular malformation, including blood vessels and other types of cavities, may instead be treated.

[0046] The present disclosure relates to medical devices, including occlusion devices and thrombectomy systems. More specifically, the medical devices described herein measure characteristics of an endovascular treatment site, such as device dimensions / size, device length, and / or pressure values ​​at a location on the device. Data on these measured characteristics can be used to determine the effectiveness of the medical device during or after treatment.

[0047] In one example, a medical device can include a length or distance sensor configured to measure the distance between two locations on or within the device. A single distance sensor can be included to provide a single distance value, or multiple distance sensors can be included to provide distance values ​​for different portions of the device (e.g., the distance between the top half of the device and the bottom half). The distance value from the intrasaccular occlusion device can be used to determine whether the implanted device is experiencing undesired compression and therefore recanalization may be occurring.

[0048] In another example, various types of pressure sensors can be used to monitor pressure values ​​within or around a medical device. Pressure sensors can also be incorporated into stentreaver systems to aid in the removal of emboli or thrombi. Pressure sensors can also be included in intrasaccular devices or embolic coils to detect pressure changes that may indicate recanalization of an aneurysm or similar site.

[0049] Many modifications or configurations to these figures and examples will be apparent from the description provided below. For example, while distance or pressure sensors are described, some embodiments may include both distance and pressure sensors. Furthermore, after data is detected on the medical device, it can be processed by a remote, extracorporeal device using wireless or wired communication.

[0050] As previously mentioned, after an occlusion device is implanted into a vascular malformation, such as an aneurysm, the vascular malformation may open or recanalize. Based on several clinical observations, this recanalization may occur through a gradual wound healing response within the aneurysm, characterized by tissue scarring and contraction of fibrous tissue. Therefore, this fibrous tissue compression may compress embolic coils, intracavitary devices, and similar occlusion devices as the healing process progresses.

[0051] Compression of the posterior surface of the occlusion device (e.g., compression from the posterior wall of the aneurysm toward the main vessel) is not necessarily undesirable, as it may indicate that a healing process is occurring in some circumstances. Compression of the occlusion device's surface (e.g., compression from the aneurysm opening) may indicate that the occlusion device is being pushed inward, recanalizing the cavity of the vascular malformation. Therefore, most physicians perform follow-up imaging studies after implantation to check for signs of undesired recanalization or desired complete occlusion. Follow-up evaluations typically involve digital subtraction angiography (DSA) approximately 6 months after implantation, followed by magnetic resonance imaging (MRI) obtained approximately every 6 months for several years, typically about 3 to 5 years.

[0052] For example, Figures 1 and 3 show an intrasaccular occlusion device 20 initially delivered or implanted within an aneurysm 10. Figures 2 and 4 show the same occlusion device 20 weeks, months, or years after the implantation procedure. Note that the occlusion device is more difficult to see in the angiographic images of Figures 2 and 1 because the occlusion device 20 no longer allows blood to enter the aneurysm 10. In both figures, the blood vessels are only visible due to the injection of a radiopaque contrast agent into the patient's vasculature; in Figure 2, the contrast agent is unable to enter the aneurysm 10, making full visualization difficult. However, distal radiopaque marker 22 and proximal radiopaque marker 24 can be seen in both figures.

[0053] 2 and 4, the aneurysm 10 is somewhat compressed, and therefore may be exerting at least some pressure on the back or distal side of the occlusion device 20 (i.e., the side closer to the distal marker 22). Additionally, the back side is compressed inward, changing its distance relative to other portions of the occlusion device 20. This may again indicate that the desired healing process is occurring within the aneurysm 10. The distal pressure may be caused by tissue in-growth, as shown in region 14 of FIG.

[0054] However, region 20A shows a depression in the surface of occlusion device 20 where partial recanalization has occurred undesirably. That surface (i.e., proximal marker 24 and the side near the ostium of aneurysm 10) may compress inward under increased pressure, changing its distance relative to other portions of occlusion device 10. This pressure on the proximal side of occlusion device 20 may arise from tissue growth 16 over the ostium of aneurysm 10, causing aneurysm 10 to contract and pull inward.

[0055] 3 and 4 illustrate an embodiment of an occlusion device 100 that includes a distance sensor capable of wirelessly transmitting signals and / or data capable of determining distance. Specifically, the distance sensor can measure and transmit a distance 12 between the distal side of the occlusion device (e.g., the side having the distal marker 22) and the proximal side of the occlusion device (e.g., the side having the proximal marker 24). A physician can periodically monitor this proximal-to-distal distance value to determine how much the occlusion device 100 has compressed within the aneurysm 10 and whether additional visualization is needed to determine whether the compression is the result of recanalization.

[0056] The occlusion device 100 is shown as an expandable mesh intra-vesical device (e.g., a MicroVention WEB device), although other types of occlusion devices may alternatively be used. Further details about occlusion devices are described in U.S. Patent No. 9,597,087, the contents of which are incorporated herein by reference.

[0057] The occlusion device 100 of this example can be configured to have a generally round cylindrical shape when expanded, but can also have different shapes such as a sphere, an hourglass shape, or a diamond shape. The exterior surface of the occlusion device 100 can have a generally uniform shape or can include raised features or depressions such as longitudinal channels, transverse channels, indentations, protrusions, or ridges.

[0058] The occlusive device 100 can be constructed from a plurality of shape-memory wires woven into a three-dimensional shape. The occlusive device 100 can be further heat-set while in the desired expanded shape so that the occlusive device 100 self-expands to the expanded shape when unconstrained. A cover or fluid barrier layer can be included on or in the occlusive device as needed, although depending on the size of the pores in the mesh, such a barrier may not be necessary.

[0059] In the expanded configuration, occlusion device 100 preferably defines a lumen that can accommodate at least a portion of the distance sensor components, although the distance sensor components are not necessarily limited to this lumen and may be located elsewhere.

[0060] Occlusion device 100 is typically delivered into an aneurysm or other vascular malformation via a delivery catheter. Such a delivery catheter may include an elongated pusher that is releasably attached to occlusion device 100 and movable from an outer sheath. Once the occlusion device is moved out of the sheath, it self-expands at the target location and is released from the pusher.

[0061] 5, the distance sensor of the occlusion device 100 comprises an antenna 120 configured to change shape as the occlusion device 100 is compressed, thereby resonating at different frequencies depending on the amount of compression. As described further below, a spectrum analyzer can be used to determine the resonant frequency of the antenna 120, from which the length or shape of the antenna (i.e., the amount of compression of the occlusion device 100) can be determined from previously correlated data or calculations. Thus, the physician can determine the proximal-to-distal length of the occlusion device 100 and how compressed it is compared to previous length measurements.

[0062] Although the antenna 120 is primarily described as a distance or length sensor, other types of sensing mechanisms could alternatively be used to sense the length of the device. For example, a miniature wheeled length sensor could be used, where a wire is unwound from a rotatable wheel and the position of the wheel is monitored. In another example, a miniature tension sensor could be used to monitor the amount of tension between two ends of a device.

[0063] Antenna 120 generally forms a loop that changes size and / or shape as occlusion device 100 compresses. For example, antenna 120 can include a first wire 122 and a second wire 124, both of which are connected at their distal ends to a distal region within the lumen of occlusion device 100. Similarly, the proximal ends of wires 122 and 124 are connected at their proximal ends to one or more proximal regions within the lumen of occlusion device 100. Wires 122 and 124 are shaped or curved to form at least one contact point 126 with one another, thereby forming a loop with inner region 120A. As antenna 120 compresses, the location of contact point 126 changes, causing the size and / or shape of the loop to change.

[0064] In Figure 5, occlusion device 100 is shown in a fully expanded, uncompressed configuration in which loops and region 120A have a first shape. In Figure 6, occlusion device 100 is shown in a partially compressed configuration in which loops and region 120A have a second shape. The second shape may be smaller than the first shape and / or may have a different shape (e.g., circular vs. flattened oval).

[0065] Optionally, wires 122 and 124 may be constructed from a shape memory alloy having a heat-set shape that ensures that wires 122 and 124 contact one another at all levels of compression. Additionally, the wires preferably have a length that is longer than length 12 of occlusion device 100 in its fully expanded shape. This additional length allows wires 122 and 124 to form loops and also accommodate any increased length that occlusion device 100 may have when in an unexpanded configuration within the delivery device (i.e., occlusion device 100 may shorten when expanded).

[0066] In some embodiments, the antenna 120, depending on its compressed shape, reflects the radio signal or provides a different return loss signal at certain frequencies that is sensed by the spectrum analyzer, making the antenna 120 within the occlusion device sufficient for use with a spectrum analyzer. However, the antenna 120 may be connected to circuitry that provides additional functionality or information to the physician.

[0067] For example, an RFID circuit 128 can be connected to the proximal ends of the wires 122, 124. When the resonant frequency of the antenna 120 is provided, a small current is provided through the antenna 120 to the RFID circuit 128. The powered RFID circuit 128 can wirelessly provide different information, such as a unique device identification, manufacturer, model type, and manufacturing date, to a spectrum analyzer (which includes components and software capable of reading RFID signals and data). Thus, if multiple occlusion devices 100 (or other devices) are implanted within a patient's body, or if the device itself has multiple sensors, a physician can determine which device / sensor is receiving the signal.

[0068] The RFID circuit 128 may be encapsulated and located within the lumen of the occlusion device 100 or external to the occlusion device 100. In this example, the RFID circuit 128 is affixed to a proximal marker 128 and located intraluminally.

[0069] Because the antenna 120 of the occlusion device 100 resonates within a frequency range defined by the fully expanded and fully compressed configurations of the occlusion device 100, the spectrum analyzer must be capable of operating at frequencies within at least this expected range. More specifically, the spectrum analyzer transmits multiple successive frequencies (i.e., a frequency sweep) within this expected response range and monitors the return loss for each transmitted frequency. If the return loss signal changes at a particular frequency, the current resonant frequency of the antenna 120 is likely to be found. For example, if most transmitted frequencies within the expected frequency response range experience high return loss, but one frequency experiences low return loss (i.e., high reflections), the low return loss may indicate the current resonant frequency of the antenna 120.

[0070] 7 shows an example of an apparatus 130 for analyzing data collected from the occlusion device 100. The apparatus 130 may include a spectrum analyzer 132 configured to transmit and receive radio frequency signals within a predetermined range, a voltage standing wave ratio (VSWR) bridge network 134 in communication with the spectrum analyzer 132, amplifiers 136 and 138 connected to the bridge network 134, an external antenna 150, and a computer or computer module 140. The measurement apparatus 130 may be used to analyze data collected from the occlusion device 100. Furthermore, all of these components may be integrated into a single device, or one or more components may be separate from one another.

[0071] The measurement device 130 may transmit one or more interrogation pulses 152, which may be provided by the spectrum analyzer 132, to the obstructing device 100 via the VSWR bridge network 134, the amplifier 136, and the external antenna 150. Each of the interrogation pulses 152 may have a frequency within a predetermined or known range at which the antenna 120 of the obstructing device 100 is known to resonate. In this regard, the measurement device 130 may "sweep" a known frequency range with multiple interrogation pulses 152.

[0072] As each interrogation pulse 152 is transmitted, the measurement device 130 also receives a radio signal 154 that is measured as the return loss of each transmitted interrogation pulse 152. The return loss signal 154 may be received by the external antenna 150, provided to the amplifier 138, transmitted to the VSWR bridge network 134, and ultimately transmitted to the spectrum analyzer 130. The spectrum analyzer 130 may be used to measure and process the return loss signal 154.

[0073] Ultimately, the computer or computer module 140 can receive the return loss data and determine whether the return loss signal 152 at a particular frequency indicates that the resonant frequency of the antenna 120 of the occlusion device 100 has been found. Alternatively, this function can be performed by the spectrum analyzer 132 itself. For example, the computer can monitor frequencies where the return loss is relatively low compared to other frequencies within a known frequency sweep range, which may indicate that the antenna 120 of the occlusion device 100 is resonating and therefore reflecting a portion of the interrogation pulse 152.

[0074] For occlusion devices 100 that use RFID circuitry 128, additional data is sent from the occlusion device 100 back to the measurement device 120 and computer 140 to further confirm that the correct resonant frequency was found. The resonant frequency and any data generated from the RFID circuitry 128 (e.g., device ID, device make and model) can be stored in memory (e.g., hard drive) of the computer module 140.

[0075] 8 shows a flowchart 160 for measuring and analyzing return loss, thereby determining the resonant frequency of the antenna 120 of the occlusion device 100. Fewer or more processes may be used, and those shown are for illustrative purposes. The process may begin at step 162, where interrogation pulses 152 are transmitted from the spectrum analyzer 130 via the antenna 150. As previously mentioned, these interrogation pulses 152 may be transmitted at multiple different frequencies within a known or predetermined frequency range.

[0076] Next, in step 164, the return loss 154 of the return loss data device can be measured for each interrogation pulse 152. For example, Figure 9 shows a spectrum analyzer 132 displaying a first return loss signal 132A and a second return loss signal 132B.

[0077] Referring to step 168, the resonant frequency of the antenna 120 of the occlusion device 100 is determined. As previously mentioned, this can be determined by monitoring the frequency within a known range for the lowest return loss (i.e., the frequency at which the signal is reflected at the highest level). For example, this can be determined by simply monitoring for return loss above a predetermined threshold or by making a relative comparison with other frequencies within the known frequency range.

[0078] In step 170, the length of the antenna 120, and therefore the proximal-to-distal length of the occlusion device 100, is determined. This length can be determined in several different ways. In one example, a lookup table or database can be used. The lookup table can include which resonant frequencies of a particular device correlate with which lengths. This data can be obtained experimentally by measuring both the proximal-to-distal length of the device and its resonant frequency at various amounts of compression. In another example, the size and shape of the antenna can be calculated based on the resonant frequency. This exact formula or calculation will likely vary depending on the type of frequency used and the size of the loop in the antenna 120. For example, small loop antennas typically have lengths that are approximately one-tenth of the resonant frequency wavelength.

[0079] In step 174, the determined occlusion device length is stored in a database associated with computer / module 140, where it can be displayed and optionally analyzed. For example, the length may be compared to a previous or initial measurement (e.g., a measurement taken immediately after implantation of device 100) and displayed.

[0080] A graph or similar display can also be generated. If the compression exceeds a certain predetermined amount or threshold, the computer 140 can provide the physician with a recommendation to perform additional visualization procedures to determine whether the compression has resulted in recanalization. For example, FIG. 10 shows a graph 180 illustrating a trend line 181 of length change over time (percent change in distance versus time in days). In another example, FIG. 11 shows a similar graph 182 illustrating example trend lines for slight compression 183, moderate compression 184, and a relatively large amount of compression 185.

[0081] A small line of compression 183 is an ideal case where there is no compression of the occlusion device over time. A moderate line of compression 184 may indicate some compression over time due to wound healing. This may indicate instability, but not necessarily recanalization. A relatively large line of compression migration 185 may indicate recanalization of the aneurysm with significant compression. This may require further medical attention.

[0082] As previously mentioned, compression from the distal side of occlusion device 100 (i.e., by distal marker 22) does not necessarily indicate a problem but may be the result of desired tissue growth within aneurysm 10. And, compression from the proximal side of occlusion device 100 (i.e., by proximal marker 24) may indicate that undesired recanalization has occurred. However, because antenna 120 extends completely (or nearly completely) between the proximal and distal ends of device 100, its resonant frequency may only indicate that compression has occurred, and not necessarily on which side. In this regard, it may be desirable to measure compression of both the proximal half of the occlusion device and the distal half of the occlusion device.

[0083] 12 and 13 illustrate an embodiment of an occlusion device 200 that can independently measure the amount of compression in both the proximal and distal halves by including two sensors to measure each half. Specifically, the occlusion device 200 can include a first antenna 202A in the proximal half of the lumen of the device 200 and a second antenna 202B in the distal half of the lumen of the device 200.

[0084] A barrier 204, such as a mesh or polymer sheet, can optionally be placed across the center of the lumen of the occlusion device 200 to electrically isolate the two antennas 202A, 202B and to impose a physical structure that remains approximately in the center of the device. Each of the antennas 202A, 202B can be connected to its own RFID circuit 128B and therefore can communicate with each in a manner similar to that described with respect to the occlusion device 100. The RFID circuit 128 can further include its location (proximal or distal) along with its ID and other information, which can be transmitted to the measurement device 130 and computer 140.

[0085] Figure 12 shows occlusion device 200 in a fully expanded configuration, and Figure 13 shows occlusion device 200 with both proximal and distal compression that changes the shape and / or size of antennas 202A, 202B. Antennas 202A, 202B are shown as circular loops, but each can also be shaped similarly to the shape of antenna 120 of occlusion device 100 (i.e., two curved or "S" shaped wires that touch each other to form a loop).

[0086] In another embodiment, one or more micro-pressure or force sensors can be included in the occlusion device to monitor the pressure within the occlusion device and / or the aneurysm (or other region). For example, Figure 14 shows an occlusion device 210 that includes a wireless pressure sensor 212 located within the lumen of the device or on the exterior surface of the device.

[0087] The wireless pressure sensor 212 can detect a drop in pressure within the aneurysm 10 compared to the surrounding arterial blood pressure, which may indicate healing of the aneurysm 10 (i.e., being sealed off from blood and its blood pressure). If the pressure rises after the initial drop, it may indicate compression of the occlusion device due to impingement of arterial blood flow and / or scar tissue growth. Therefore, measuring this pressure and recognizing such a drop in pressure can help indicate to the physician that follow-up angiographic imaging and potential repeat treatment of the cerebral aneurysm may be necessary.

[0088] The wireless pressure sensor 212 is preferably configured to measure pressure, be powered, and communicate with an external device via radio frequency. For example, the wireless pressure sensor 212 can function through the resonant frequency of an inductor-capacitor LC resonator mechanism within the sensor. The inductance of the inductor with a slidable electromagnetic element changes due to the effect of ambient pressure on the slidable electromagnetic element, thereby changing the resonant frequency of the LC resonator. A wireless antenna within the wireless pressure sensor 212 can be used for power and communication. An example of such a mechanism can be found in U.S. Patent Application Publication No. 2001 / 0120110, the contents of which are incorporated herein by reference.

[0089] In another embodiment, this wireless pressure sensor 212 can be combined with the length / distance sensor of the occlusion devices 100 and 200. In such an embodiment, an antenna and RFID circuitry can be connected to and power the wireless pressure sensor 212, and this pressure information can be provided to an external device.

[0090] This wireless pressure sensor can be used for similar purposes, but also in other devices used to occlude or treat aneurysms, blood vessels, or other vascular malformations. For example, Figures 15 and 16 show an embolic coil 220, as seen in Figure 16, that is typically delivered to an aneurysm 10 and similar areas to cause occlusion. The aforementioned pressure sensor 212 can be included in the embolic coil 220. For example, the pressure sensor 212 can be located at the distal end of the embolic coil 220, the proximal end of the embolic coil 220, or a location between the proximal and distal ends of the embolic coil 220.

[0091] The wireless pressure sensor 212 may also include an inductor and a capacitor. The inductor and capacitor may form an LC resonator having a resonant frequency. The inductance of the inductor may be influenced by a slidable electromagnetic element. When external pressure is applied to the element, the element may move, changing the inductance of the inductor. This movement may change the resonant frequency. A change in the resonant frequency may indicate a change in external pressure. The LC resonator may be calibrated to correlate with external pressure.

[0092] Embolic coil 220 may be a helical embolic coil. Embolic coil 220 may be welded to wireless pressure sensor 212. The wireless pressure sensor may be attached to pressure sensor 212 by ultraviolet adhesive or laser welding.

[0093] The exemplary embolic coil 220 can be embodied in multiple versions, with the primary coil material being expanded filled tubing (DFT), bi-layered, or tri-layered DFT, with nitinol, platinum, or a combination of nitinol and platinum. In another embodiment, the embolic coil 220 may have a primary filament material as a bioabsorbable polymer, such as polylactic acid (PLA), poly(L-lactide) (PLLA), and poly(lactic-co-glycolic acid) (PLGA). Alternatively, the embolic coil 220 may include configured hydrogel polymer strands within the primary winding, allowing the hydrogel to expand upon contact with blood in the human vasculature. The exemplary embolic coil 220 may include the above-mentioned materials in combination with parametric shapes, including but not limited to shapeless straight, helical, and 3D structures, which can be altered by the selection of heat-setting fixtures around which the primary winding of the coil is wound.

[0094] The embolic coil 220 can be used to embolize arterial, venous, and arteriovenous vascular cavities. Examples of arterial cavities include cerebral aneurysms, visceral aneurysms, type II endoleaks, and arterial lumens. Examples of venous cavities include venous aneurysms, intracranial sinuses, and intracranial and peripheral veins. Examples of arteriovenous vascular cavities include cerebral arteriovenous malformations (AVMs), arteriovenous fistulas (AVFs), dural sinus AVFs, spinal AVFs, and peripheral AVFs.

[0095] The embolic coil 220 may be provided through a delivery system that may be inserted into a vein or artery leading to the aneurysm 10. The delivery system may include the use of a catheter, which may be a tubular member. Control of the catheter may be provided to a user or technician at the proximal end. In one example of delivering the embolic coil 220, the catheter may be placed within a blood vessel and a pusher 224 may be advanced distally within the catheter to push the embolic coil 220 out of the catheter. Ultimately, the pusher 224 is detached from the embolic coil via a detachment mechanism, such as a tether and heater coil mechanism.

[0096] The arrows emanating from the aneurysm 10 in Figure 16 may relate to pressure that can be sensed by a wireless pressure sensor 212. This pressure can be sensed through the LC resonator as described above. This sensed pressure can be provided to an external reading device via wire or wirelessly. AVMs and AVFs may be treated using a pressure cooker technique. This may involve coiling of the arterial feeder or venous drainage, depending on whether the interventional neuroradiologist employs an antegrade or retrograde fluid embolic injection approach to avoid backflow. Providing a wireless pressure sensor 212 within the coil mass can help detect whether adequate pressure drop has been achieved to prevent backflow.

[0097] As seen in FIG. 17 , the aforementioned pressure sensor 212 can alternatively or additionally be used on a stent 230 (e.g., a flow shunt stent) placed across the mouth of the aneurysm 10. The stent 230 can be placed alone or to help retain one or more embolic coils 220 or occlusion devices 20, 100, 200. The pressure sensor 212 can be placed within the lumen of the stent 230, on the outer surface of the stent 230, or between multiple layers of the stent 230. Again, the pressure sensor 212 can be used to monitor pressure within or near an aneurysm or similar anomaly. After delivery of the stent 230, the pressure sensor 212 will indicate a relatively constant pressure from blood flow through the blood vessel relative to the aneurysm and the embolic coil 220 or occlusion device located therein. However, as recanalization begins to occur, the pressure sensor 212 may not contact the embolic coil or occlusion device within the aneurysm, and therefore may sense a decrease in pressure. Additionally, the pressure sensor 212 can be powered via a wireless signal and can relay the pressure back to an external device for examination by a physician.

[0098] While the aforementioned pressure sensors are useful in connection with the treatment and occlusion of aneurysms, blood vessels, and other malformations, they can also be used to improve other medical devices and treatment procedures. For example, multiple pressure sensors can be placed along the length of a stentriever to measure the reaction force between the stentriever and a thrombus. These pressure values ​​can be used to determine thrombus stiffness, thrombus length, and other characteristics. Because thrombi can exist in various forms, such as soft, fresh, red blood cell-rich emboli based on atrial fibrillation, or more rigid, mature thrombi based on atherosclerosis, stiffness and length values ​​can be particularly valuable in determining treatment strategies (i.e., different treatment tools / catheters, or desired locations that may be useful).

[0099] 18 illustrates an embodiment of a stentriever 300 having multiple pressure sensors 212 fixed along its length to assess thrombus 310 within a blood vessel 304 before or during removal from the patient. The pressure sensors 212 may include wireless pressure or micro-force sensors that can communicate with a device, such as a dedicated medical display, tablet, PC, or smartphone, located outside the patient's body during the thrombectomy procedure. Alternatively, the sensors 212 may be activated and communicate via a wireline configuration extending through the catheter 306. The wireline may be integrated into the pushwire 308.

[0100] The micro-force pressure sensor 212 can be configured to detect a counterforce generated on the embolus or thrombus 310 as the stentreaver 300 is withdrawn from the delivery guide catheter 306 and engages the thrombus 310. The counterforce is typically considered to be the force the thrombus 310 exerts on the inside of the stentriever 300. The length of the embolus or thrombus 310 can be estimated based on the sensor 212 activated by the counterforce exhibited by the sensor 212 and the body of the thrombus 310, and its stiffness / composition can be determined based on the strength or magnitude of the counterforce from the thrombus 310. During placement across the embolus or thrombus 310, the stentriever 300 can be navigated until the most distal sensor 212 no longer detects the embolus or thrombus 310. At this point, the distal end of the stentriever 300 has likely passed the distal end of the embolus or thrombus 310, ensuring engagement along the entire length of the device 300.

[0101] In general, stentrievers and similar clot removal devices can take many different forms, but often include an expandable framework formed by multiple struts made of wires braided together or cut from a tube. Some stentrievers have a tubular, stent-like shape, while others form multiple hollow spheres. Some examples of such devices are described in U.S. Patent Nos. 202 / 003,7561, 2020 / 0297,365, 9,833,252, and 9,770,251, all of which are incorporated herein by reference. Generally, stentrievers are delivered adjacent to the thrombus and either pulled or pushed into or onto the thrombus, or inserted in a compressed state within the thrombus and radially expanded through the thrombus.

[0102] 19 and 20, the micro-force pressure sensors 212 can be attached to the interior or exterior surface of the stentriever 300 and at various locations along its length. Viewed from the side in FIG. 19, the stentriever 300 can include pressure sensors 212 at regular intervals along its length. For example, multiple pressure sensors 212 can be spaced 0.2, 0.5, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, or more centimeters apart from one another in a generally linear or pseudo-linear array.

[0103] Although only one linear array of pressure sensors 212 may be included, two, three, four, five, six, or more linear arrays may be included at different circumferential locations (e.g., locations A, B, C, D in FIG. 20). These circumferential locations may be equally spaced from one another. For example, if four linear arrays of sensors 212 are used, each array may be circumferentially spaced at approximately 90 degrees from one another. In another example, if three linear arrays of sensors 212 are used, each array may be circumferentially spaced at approximately 120 degrees from one another.

[0104] In one example, a 6 mm diameter by 40 mm long stentriever 300 may include longitudinal arrays of force sensors 212 positioned at 0, 10, 20, 30, and 40 mm along its axial length, with each array positioned at four circumferential locations equidistant from one another along the circumference. A 4x5 sensor matrix may consist of a total of 20 sensors 212 that can enable an external computing device to estimate the length and stiffness of the embolus or thrombus 310.

[0105] Sections can be defined along the stentriever 300, such as sections 1, 2, 3, 4, and 5. Each section and its associated sensor 212 can be used to determine where the thrombus 310 terminates and, therefore, where to stop further insertion of the stentriever 300. That is, after at least the sensor in section 1 at the distal end of the stentriever 300 no longer detects an embolus or thrombus, the stentriever 300 can no longer be pushed further into the vessel through the catheter. Section 1 may be the most distal sensor location, and section 5 may be the most proximal sensor location.

[0106] 21 shows an exemplary graph illustrating that data from each of the pressure or force sensors 212 can be collated to determine the length of the clot 310. When a sensor 212 from the stentriever 300 contacts the clot 310, the sensor 212 will transmit an increased pressure / force value. Generally, most or all of the sensors 212 from the radial sections (e.g., A, B, C, D) will indicate an increase in pressure / force value upon contact with the clot 310. If the spacing of the sensors 212 in each radial section is known, then the radial section indicating an increased pressure / force value can be multiplied by that spacing to determine an estimate of the clot length (e.g., with a 2 cm sensor spacing and three radial sections indicating sensor data, the clot length would be 6 cm).

[0107] Power and communication to the sensors 212 can be achieved via multiple conductors extending from a computing device at the proximal end of the push wire 308 to each sensor 212, or can be achieved via a wireless power and communication system. For example, FIG. 22 shows a stentriever 300 with micro-force sensors 212 communicatively coupled (e.g., via wires) to a wireless power transceiver capsule 322. The wireless power transceiver capsule 322 may include an antenna configured to receive wireless signals and convert the signals to both power and data, as well as transmit data received from each of the sensors 212 to an external device (e.g., RFID). In this manner, the wireless power transceiver capsule 322 can eliminate the use of wires returning to the proximal end of the device or battery.

[0108] Information from the wireless power transmitting / receiving capsule 322 may be provided to a device outside the body, such as a dedicated receiver and display device, a smartphone, a tablet, or a personal computer. Software on this device may be configured to perform the above-described clot length calculations and / or clot stiffness / composition assessments. The device may include or be connected to a transceiver for wireless communication with the sensor 212.

[0109] The antenna can be contained within the wireless power transceiver capsule 322, or the body of the stentriever 300 itself can be used as the antenna. In this regard, each micro-force sensor 212 can be directly connected to the wireless power transceiver capsule 322 via an insulated conductor. Alternatively, each sensor 212 can have its own wireless power and transceiver circuitry, using the body of the stentriever 300 as the antenna.

[0110] Again, an example of a wireless pressure / force sensor 212 may include an inductor-capacitor LC resonator mechanism within the sensor. The inductance of the inductor with a slidable electromagnetic element changes due to the effect of ambient pressure on the slidable electromagnetic element, thereby changing the resonant frequency of the LC resonator. A wireless antenna within the wireless pressure sensor 212 can be used for power supply and communication. An example of such a mechanism is described in U.S. Patent Application Publication No. 2001 / 0120110, the contents of which are incorporated herein by reference.

[0111] In the above communication techniques, measurements acquired by the stentreaver 300 can be transferred in several ways, including modulating a signal based on the analog measurement, whereby frequency components are added to an intermediate frequency (IF) and adjusted proportionally to the analog measurement. Each sensor 212 can provide different frequency components separated by a bandwidth proportional to the full range of the analog measurement.

[0112] An intermediate frequency is a frequency to which a carrier wave is shifted as an intermediate stage in transmission or reception. Intermediate frequencies are created by mixing a carrier signal with a local oscillator signal in a process called heterodyning, resulting in a signal at the difference frequency or beat frequency. Intermediate frequencies are used in superheterodyne radio receivers, where the received signal is shifted to an IF for amplification before final detection takes place.

[0113] Conversion to an intermediate frequency is useful for several reasons: When using multiple filter stages, they can all be set to a fixed frequency, making the filter easier to build and tune; Lower frequency transistors generally have higher gain, so fewer stages are needed; and It is easier to create sharp, selective filters at low fixed frequencies.

[0114] For example, FIG. 23 shows a plot illustrating a frequency domain representation of frequency components added to an IF signal according to one embodiment of the present disclosure. To recover each sensor signal, the received signal must be multiplied by the IF signal. The resulting signal can be demodulated to recover the frequency-shifted signal. The frequency difference from the expected frequency is proportional to the analog measurement of the target sensor. Alternatively, the force-sensing element can be used to generate a very small analog differential voltage signal that can be transmitted via the described communication method.

[0115] As shown, an IF signal is added when a signal is transmitted to each sensor within the stentriever. This is then demodulated when the signal is received by the reading device. This demodulation allows the signal to be recovered from the transmitted signal provided by the power transmitting / receiving capsule using a multiplier, as described above. Advantageously, the pressure readings of each sensor within the stentriever can be determined and appropriate action can be taken.

[0116] Typically, the stent triever 300 can be introduced into the blood vessel 304 through a delivery guide catheter 306. Once deployed, the stent triever 300 can expand to engage and capture the embolus or thrombus 310. After deployment from the catheter, the pressure / force sensor 212 can be activated. In other words, power can be supplied via a wire or a wireless antenna (RFID). The stent triever 300 can then be pushed distally until one or more peripheral sections of the sensor 212 no longer detect the counterforce of the thrombus 310. In this regard, the physician can determine where the end of the thrombus 310 is located and, as previously described, can calculate the length of the thrombus 310.

[0117] Additionally, for sensors 212 that detect a thrombus 310, the magnitude of the reaction force can be used to determine the stiffness and therefore the likely composition of the thrombus 310. For example, one or more pressure / force thresholds can be used, with pressure / force measurements above the threshold indicating a relatively stiff thrombus and measurements below the threshold indicating a relatively soft thrombus.

[0118] The stentriever 300 is removed from the blood vessel 304 along with the emboli or thrombus 310, allowing blood to begin flowing again through the blood vessel 304. The stentriever 300 may be engulfed within the large-bore catheter 306 so that the emboli or thrombus 310 are captured and removed by the stentriever 300 without fragmenting.

[0119] Those skilled in the art will appreciate that any block diagrams herein represent conceptual views of illustrative circuitry embodying the principles of the present disclosure. Similarly, it will be appreciated that flowcharts, flow diagrams, state transition diagrams, pseudocode, and the like, are substantially expressed on a machine-readable medium and represent various processes executed by a computer or processor (whether or not such a computer or processor is explicitly shown).

[0120] From the foregoing description, it is apparent that various exemplary embodiments of the present disclosure may be implemented in hardware. Furthermore, various exemplary embodiments may be implemented as instructions stored on a non-transitory machine-readable storage medium, such as a volatile or non-volatile memory, which may be read and executed by at least one processor to perform the operations described in detail. A machine-readable storage medium may include any mechanism for storing information in a machine-readable form, such as a personal or laptop computer, a server, or other computing device. Thus, a non-transitory machine-readable storage medium does not include a transitory signal, but may include both volatile and non-volatile memory, including, but not limited to, read-only memory (ROM), random-access memory (RAM), magnetic disk storage media, optical storage media, flash memory devices, and similar storage media.

[0121] The foregoing description is provided to enable those skilled in the relevant art to practice the various embodiments described herein. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be applied to other embodiments. Accordingly, the claims are not intended to be limited to the embodiments shown and described herein, but are to be accorded the full scope consistent with the language of the claims, wherein reference to an element in the singular does not mean "one" but rather "one or more," unless expressly stated otherwise. All structural and functional equivalents to the elements of the various embodiments described throughout this disclosure that are known, or later become known, to those skilled in the relevant art are expressly incorporated herein by reference and are intended to be encompassed by the claims. Furthermore, nothing disclosed herein is intended to be made available to the public, regardless of whether such disclosure is expressly recited in the claims.

Claims

1. 1. An occlusion device for occluding a space within a patient's body, comprising: The implant body and a distance sensor configured to measure a distance between the distal portion of the implant body and the proximal portion of the implant body.

2. The occlusion device of claim 1 , wherein the distance sensor comprises an antenna having one or more wires connected to the distal portion of the implant body and the proximal portion of the implant body.

3. two regions of the one or more wires are configured to form a contact point; The occlusion device of claim 2 , wherein the location of the contact point moves as the distance between the distal portion and the proximal portion of the implant body decreases.

4. The occlusion device of claim 2 , wherein the one or more wires are configured to change size and / or shape as the distance between the distal portion and the proximal portion of the implant body decreases.

5. The occlusion device of claim 2 , wherein the antenna is disposed within a lumen of the implant body.

6. The occlusion device of claim 1 , wherein the distance sensor is configured to independently measure a first distance in a proximal half of the implant body and a second distance in a distal half of the implant body.

7. The occlusion device of claim 6 , further comprising a first antenna disposed within the proximal half of the implant body and a second antenna disposed within the distal half of the implant body.

8. further comprising an RFID circuit connected to the antenna; The occlusion device of claim 2 , wherein the RFID circuit is configured to transmit identification data.

9. The occlusion device of claim 2 , further comprising a measurement device configured to determine a resonant frequency of the antenna.

10. 10. The occlusion device of claim 9, wherein the measurement device comprises a spectrum analyzer configured to transmit a plurality of radio frequencies and monitor a return loss signal indicative of a resonant frequency of the antenna.

11. 1. A method for measuring the length of an implant, comprising: implanting the implant into a patient; wirelessly interrogating the implant; and determining a length of the implant based on the wireless interrogation.

12. 12. The method of claim 11, wherein the step of wirelessly interrogating the implant comprises transmitting a plurality of wireless signals at different frequencies and monitoring a return loss value of each of the plurality of wireless signals.

13. 13. The method of claim 12, wherein determining the length of the implant further comprises determining a resonant frequency of an antenna connected to the implant.

14. The method of claim 13 , wherein the length of the antenna is determined based on the resonant frequency.

15. 12. The method of claim 11, further comprising wirelessly interrogating the implant to again determine the length of the implant.

16. 1. An occlusion device for occluding a space within a patient's body, comprising: The implant body and a pressure sensor configured to measure pressure in the implant body.

17. 17. The occlusion device of claim 16, wherein the pressure sensor further comprises an antenna configured to power the pressure sensor and transmit pressure data.

18. the implant body is an expandable intracapsular device having a lumen; The occlusion device of claim 17 , wherein the pressure sensor is disposed within the lumen.

19. 18. The occlusion device of claim 17, wherein the implant body is an embolic coil and the pressure sensor is connected to a distal end, a proximal end, or a location between the distal end and the proximal end.

20. 1. A method for determining compression of an implant, comprising: implanting the implant into a patient; wirelessly interrogating the implant; receiving a pressure value from a pressure sensor connected to the implant based on the wireless interrogation; and determining whether the implant has compressed based on the pressure value.

21. 21. The method of claim 20, wherein the step of implanting the implant within the patient's body comprises implanting the implant into an aneurysm.

22. 21. The method of claim 20, wherein the implant is an expandable intracapsular device and the pressure sensor is disposed within a lumen of the implant.

23. 21. The method of claim 20, wherein the implant is an embolic coil and the pressure sensor.

24. 21. The method of claim 20, wherein implanting the implant comprises expanding a stent across the opening of the aneurysm such that the pressure sensor is positioned adjacent the opening of the aneurysm.

25. 1. A thrombus capture device for removing a thrombus from a patient, comprising: an implant body including a framework formed from a plurality of struts and having a compressed configuration and an expanded configuration; a first array of a plurality of force sensors disposed along a longitudinal length of the implant body.

26. 26. The thrombus capture device of claim 25, further comprising a second array of force sensors positioned along the longitudinal length of the implant body.

27. 27. The thrombus capture device of claim 26, further comprising a third array of force sensors positioned along the longitudinal length of the implant body.

28. 28. The thrombus capture device of claim 27, further comprising a third array of force sensors positioned along the longitudinal length of the implant body.

29. 26. The thrombus capture device of claim 25, wherein the force sensors of the first array are positioned equidistant radially from one another.

30. 26. The thrombus capture device of claim 25, further comprising an inductor-capacitor LC resonator mechanism.

31. 26. The thrombus capture device of claim 25, wherein the framework is configured as an antenna and is connected to a wireless transceiver secured to the framework.

32. a wireless transceiver secured to the framework; 26. The thrombus capture device of claim 25, wherein the wireless transceiver is configured to transmit force data from each of the force sensors over an intermediate frequency.

33. 26. The thrombus capture device of claim 25, wherein each of the first arrays of the plurality of force sensors are longitudinally spaced equidistant from one another.

34. 26. The thrombus capture device of claim 25, wherein the framework is in the shape of a tube or one or more spheres.

35. further comprising a computing device connected to the wireless transceiver; 26. The thrombus capture device of claim 25, wherein the computing device is configured to receive force data from each of the plurality of force sensors and calculate a length of the thrombus.

36. further comprising a computing device connected to the wireless transceiver; 26. The thrombus capture device of claim 25, wherein the computing device is configured to receive force data from each of the plurality of force sensors and calculate thrombus stiffness.

37. further comprising a computing device connected to the wireless transceiver; 26. The thrombus capture device of claim 25, wherein the computing device is configured to receive force data from each of the plurality of force sensors and calculate a thrombus composition.

38. 1. A method for assessing thrombus during a medical procedure, comprising: delivering the thrombus removal framework into the patient's body such that the thrombus removal framework is disposed around or within the thrombus; obtaining force measurements from a plurality of locations along a longitudinal length of the thrombus removal framework; and communicating the force measurements to a computing device external to the patient's body.

39. 39. The method of claim 38, wherein obtaining the force measurements comprises obtaining the force measurements from a plurality of wireless pressure sensors positioned along a longitudinal length of the thrombus removal framework.

40. 40. The method of claim 39, wherein the wireless pressure sensors are further positioned at different radial locations on the thrombectomy framework.

41. 40. The method of claim 39, wherein communicating the force measurements further comprises transmitting a wireless signal to a wireless transceiver secured to the thrombus removal framework and then using the wireless transceiver to transmit the force measurements to the computing device outside the patient's body.

42. 42. The method of claim 41, wherein communicating the force measurements includes adding a frequency component to an intermediate frequency and adjusting the frequency component in proportion to one of the force measurements.

43. 40. The method of claim 39, wherein obtaining the force measurements comprises obtaining the force measurements from a plurality of wireless pressure sensors arranged in a plurality of longitudinal arrays along a longitudinal length of the thrombus removal framework.