Systems and methods for monitoring resection procedures

The ultrasound catheter system addresses the challenge of measuring ice ball dimensions by emitting ultrasound signals to create a 3D model, ensuring effective cryosurgery by accurately determining ice ball size and location.

JP7783360B2Active Publication Date: 2025-12-09VERAN MEDICAL TECHNOLOGIES INC
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Patent Information

Application Number
JP2024131742
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-08-21
Filing Date
2024-08-08
Publication Date
2025-12-09
Estimated Expiration
2040-08-17

AI Technical Summary

Technical Problem

Existing ultrasound imaging techniques cannot accurately measure the size, shape, and location of ice balls formed during cryosurgery due to the acoustic shadow created by the ice balls, preventing a clear three-dimensional view of the ice ball's true dimensions and shape.

Method used

An ultrasound catheter system is used to measure the size and shape of ice balls by emitting ultrasound signals in multiple directions, calculating distances based on reflection times, and combining these measurements to create a 3D model of the ice ball, which can be superimposed on preoperative CT images for precise targeting.

Benefits of technology

Enables accurate measurement of ice ball dimensions and location, ensuring complete encapsulation of target tissue and minimizing damage to surrounding healthy tissue by allowing for adjustments in ice ball size and shape.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a system and method for treating targeted tissue using cryoablation.SOLUTION: An introducer canula and a cryoprobe 110 are inserted into the targeted tissue. The cryoprobe 110 is cooled and an ice ball is formed. The cryoprobe is pulled out while the ice ball is still frozen, and an ultrasound catheter is inserted. Ultrasound generated within the ice ball is used to measure the distance from the ultrasound catheter to a perimeter of the ice ball. This is repeated at different angles to create a slice of the ice ball. The ultrasound catheter is moved radially, and the process is repeated to create a model of at least a portion of the ice ball. The ice ball model can be displayed on a registered set of images representing the targeted tissue so as to ensure that the tissue lies within the treatment zone of the ice ball.SELECTED DRAWING: Figure 1
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Description

FIELD OF THE INVENTION

[0001] The present invention provides an ultrasound catheter system and method for measuring the size, shape, and location of ice balls during cryosurgery. Similar systems and methods can be used to measure the size, shape, and location of tissue being thermally ablated. [Background technology]

[0002] Cryosurgery, or cryoablation, is a technique for destroying abnormal or targeted tissue by freezing. Freezing of tissue cells results in the destruction of cells or organelles within the cells. The cryosurgery process requires the insertion of a device (a "cryoprobe") into the abnormal tissue, which is then cooled. In most cases, cooling of the cryoprobe is achieved by passing a high-pressure gas, such as argon, through the device. Cooling the cryoprobe in this manner results in the formation of an "ice ball" of frozen tissue located approximately at the center of the distal end of the cryoprobe.

[0003] Accurate measurement of the size, shape, and location of the ice balls is crucial to the success of this technique. If the ice balls are too large, they will unnecessarily damage healthy tissue surrounding the target tissue. If the ice balls are too small, abnormal tissue that should be killed in the process will survive.

[0004] Traditionally, ice ball size and location have been measured using ultrasound technology. Ultrasound energy penetrates healthy tissue and then strikes the outer surface of the ice ball. Due to the properties of the ice ball, the ultrasound energy typically bounces off the ice ball. This large reflection allows ultrasound imaging technology to image the surface of the ice ball closest to the source of ultrasound energy. However, ultrasound energy cannot penetrate the ice ball, and the "shadow" cast by this surface reflection prevents the true three-dimensional size and shape of the ice ball from being displayed. Essentially, existing methods allow a user to find the approximate location of the ice ball's closest surface, but are unable to determine its true size, shape, or location. Summary of the Invention

[0005] One embodiment of the present invention provides a method for treating tumors or other target tissue using cryoablation. The method begins with locating the target tissue, such as by performing CT imaging prior to the ablation procedure. The generated image may be incorporated into a 3D image or a 3D model of the patient or patient's organ. During the ablation procedure, an ultrasound catheter contained within a guiding intubation tube is inserted into the target tissue. In one embodiment, the ultrasound catheter and intubation tube are inserted percutaneously. Once positioned, the ultrasound catheter can be used to image the target tissue to ensure proper placement of the catheter and intubation. The ultrasound catheter may also allow for QUS analysis of the tissue.

[0006] Once the position of the ultrasound catheter and intubation tube is determined, the ultrasound catheter is withdrawn from the intubation tube and the cryoprobe is inserted into its place. Alternatively, the cryoprobe and intubation tube can be inserted percutaneously directly into the target tissue without the ultrasound catheter. In another embodiment, the cryoprobe is positioned with the aid of external ultrasound to ensure that the tip of the cryoprobe is placed accurately within the target tissue. In some situations, it may be necessary to insert multiple cryoprobes into the target tissue to provide some control over the size and shape of the ice ball formed by the cryoablation process.

[0007] The cryoprobe is then cooled to form an ice sphere within the patient. Ideally, the ice sphere is large enough to completely encapsulate the target tissue. To increase the effectiveness of the ice sphere in killing the target tissue, the ice sphere is frequently generated, thawed, and then the cryoprobe is re-cooled to regenerate.

[0008] The cryoprobe within the guiding tube is then withdrawn while the ice ball is still frozen. An ultrasound catheter is inserted into the tube and into the passageway in the ice ball left by the withdrawal of the cryoprobe. Using pulse-echo technology and beamforming, a strong signal is emitted from the ultrasound transducer at the end of the ultrasound catheter in one radial direction. Reflected ultrasound energy from the outer periphery of the ice ball is then monitored in the same direction. The return time of the ultrasound signal and the known velocity of ultrasound in frozen tissue determine the radial distance from the ultrasound transducer to the edge of the ice ball in this selected direction. A similar signal is sent and received in another direction to generate enough information to model a slice of the ice ball with the same shape and size as the exact portion of the ice ball examined by the ultrasound beam. The ultrasound catheter can then be moved slightly within the tube a known distance, and the process repeated to create another slice. This process is repeated long enough to calculate the slice of the entire ice ball, after which the multiple slices are combined into a single model representing the size and shape of the ice ball.

[0009] In one embodiment, the ultrasound catheter includes an EM sensor at its tip. Using an EM navigation system, the position and orientation of the ultrasound catheter can be determined for each section of the ice ball model. If the EM navigation system is recorded on a preoperative CT image or model, the generated ice ball model can be superimposed on the CT image. The CT image identifies the size and location of the target tissue, revealing whether the generated ice ball fully incorporated the target tissue within its effective treatment area. In some embodiments, software compares the known size, shape, and location of the target tissue with the measured size, shape, and location of the generated ice ball and issues a warning if the target area is not within the ice ball's treatment area. If necessary, a new ice ball can be generated to treat the missing portion of the target area, and another model of this new ice ball can be generated to ensure treatment efficacy.

[0010] Cryoablation is the only ablation technique that can measure the size, shape, and location of the tissue being ablated using these embodiments. Similar systems and methods can be used with thermal ablation, such as microwave or radiofrequency ablation. An ultrasound catheter can be inserted into the tissue to be ablated, and pulse-echo technology can be used to create model slices of the tissue to be ablated. Multiple slices can then be combined to create a complete model of the tissue to be ablated, and this model can be displayed in a 3D image of the target tissue to determine the effectiveness of the ablation. [Brief explanation of the drawings]

[0011] FIG. 1 is a side perspective view of the percutaneous insertion of a cryoprobe under ultrasound guidance.

[0012] FIG. 2 is a schematic diagram of the cryoprobe of FIG. 1 penetrating the target tissue and forming an ice ball.

[0013] FIG. 3 is a schematic diagram of a formed ice ball with three isotherms shown.

[0014] FIG. 4 is a schematic illustration of the formed ice ball of FIG. 3 after secondary freezing.

[0015] Figure 5 is a schematic illustration of an irregular ice sphere formed using three cryoprobes.

[0016] FIG. 6 is a schematic illustration of the irregular ice ball of FIG. 5 as observed by standard ultrasound techniques.

[0017] Figure 7 is a schematic illustration of the irregular ice ball of Figure 5 with one cryoprobe withdrawn.

[0018] FIG. 8 is a schematic illustration of the irregular ice ball of FIG. 5 with an ultrasound probe inserted in place of the withdrawn cryoprobe.

[0019] FIG. 9 is a plan view of the distal end of an embodiment of an ultrasound probe within a guiding cannula.

[0020] FIG. 10 is a first diagram showing the reflected ultrasound signal versus time.

[0021] FIG. 11 is a second diagram showing the reflected ultrasound signal versus time.

[0022] Figure 12 is a schematic diagram of the calculated dimensions of one section of the ice ball.

[0023] FIG. 13 is a schematic diagram of the calculated dimensions of a multi-segment ice ball.

[0024] FIG. 14 is a flow diagram illustrating a method for practicing one embodiment of the present invention.

[0025] FIG. 15 is a schematic illustration of an irregularly shaped region of ablated tissue ablated using thermal ablation.

[0026] FIG. 16 is a plan view of the distal end of an alternative embodiment ultrasound probe within a guiding cannula.

[0027] Figure 17 is a side perspective view of a percutaneous insertion of an ultrasound probe rotated by an electric stepper motor.

[0028] Ice ball formation Cryoablation is typically performed to kill abnormal tissue identified within a patient prior to treatment. In most cases, the exact location of the abnormal tissue is identified by imaging using conventional techniques, such as CT or MRI imaging. After it is determined that cryoablation is appropriate for the abnormal tissue, the patient is prepared and the abnormal tissue is repositioned before treatment begins. As shown in FIG. 1, an external ultrasound device 100 is used to identify the location of the target tissue. This same ultrasound device is then used to monitor the insertion of the tip of a cryoprobe 110 into a patient 120. The tip of the cryoprobe 110 may be specially designed to improve its discernibility under ultrasound, for example, by incorporating grooves or other physical features that are highly visible to ultrasound energy. In this manner, the tip of the cryoprobe 110 is directed percutaneously toward the target tissue. As described below with reference to FIG. 14, a further inserted ultrasound catheter can be used to identify the location of the target tissue and position the cryoprobe 110.

[0029] 1, there is a computer system that determines which signals and how much power to send to the ultrasound device 100 and cryoprobe 110, sends these signals and power to the devices 100, 110, receives signals from the devices 100, 110, analyzes these signals, and then displays the results of that analysis to the user. The computer systems that control and analyze the signals and power sent to and from the devices used in the disclosed embodiments are standard computer systems that include a CPU, short-term and long-term memory, computer programming, a display system, and interfaces for communicating with devices such as devices 100, 110. Computer systems such as these are also responsible for controlling signals sent to and from the devices described below and for performing the calculation and display steps in the methods described below, including method 1400 in FIG. 14.

[0030] Figure 2 shows the distal end or tip 112 of the cryoprobe 110 after the cryoprobe 110 has been inserted into abnormal target tissue 200 of the patient 120. As shown in Figure 2, the cryoprobe 110 passes through the cavity of a guiding cannula 210 that is positioned in the target tissue 200. While the guiding cannula 210 is not always required for a cryoablation procedure, its use is beneficial in most embodiments of the present invention, as it allows for placement of additional catheter devices in the target tissue 200.

[0031] When the tip 112 of the cryoprobe 110 is inserted into the target tissue 200, argon gas passes through the probe 110. The probe 110 is designed so that the gas expands at or near the tip 112. Because argon gas cools as it expands, this expansion causes the tip 112 of the probe 110 to cool very rapidly. In a conventional cryoprobe 110, the injection of argon gas causes the tissue proximal to the tip 112 to reach a temperature of −160 to −170° C. This temperature causes an iceball 220 of frozen tissue to rapidly form adjacent the tip 112 and expand within the target tissue 200.

[0032] Although the temperature of the ice ball 220 formed near the probe may drop below -160°C, the surface temperature of the ice ball 220 remains at 0°C. It is generally known that to ensure tissue destruction, tissue must reach a temperature of -40°C or below and be held there for approximately three minutes. This temperature induces intracellular ice formation, which destroys most cells. As a result, abnormal tissue is typically frozen for three to five minutes during a cryoablation procedure. At this point, the ice ball 220 has completed its growth, as shown in Figure 3. After this time, at least half of the ice ball's diameter has reached a temperature of -40°C. This location is shown diagrammatically by the shaded region 300 in Figure 3. The larger shaded region 310 indicates the approximate location of the -20°C isotherm, while the outer surface 320 of the ice ball 220 is at a temperature of 0°C.

[0033] To ensure that only that portion of the icesphere 220 exhibiting a sustained temperature of −40° C. is destroyed, most cryoablation practitioners perform this procedure twice: first, by forming the icesphere 220 and then allowing it to thaw. Slow thawing of the frozen tissue within the icesphere 220 can cause further cell damage as the thawing ice crystals fuse to form larger crystals that can cause further cell damage. This thawing process can be accelerated by passing helium through the cryoprobe 110. Unlike cryogenic gases such as argon, helium warms as it expands. As helium passes through the cryoprobe 110, it has the opposite effect to argon, warming the tip 112 of the cryoprobe 110.

[0034] The standard technique of refreezing abnormal tissue after thawing causes tissue freezing to occur more quickly (this technique is more destructive to the tissue). This allows complete tissue destruction at slightly higher temperatures, such as -20°C to -30°C. As a result, the effective treatment area of ​​this procedure moves closer to the outer periphery 320 of the ice ball 220. As shown in Figure 4, the shaded death area extends to approximately the -20°C isotherm 310. In most situations, the distance between the death area and the ice ball periphery is expected to be 4-10 mm. Because the outer region of the ice ball 220 is outside the definitive treatment area 310, it is generally necessary to form an ice ball larger than the tissue 200 desired to be destroyed during cryosurgery.

[0035] In some situations, the ice sphere 220 may need to be formed into various shapes to conform to the shape and size of the target tissue 200. In this situation, multiple cryoprobes may be inserted into various portions of the tissue 200. As shown in FIG. 5 , a first cryoprobes 110 is combined with a second cryoprobes 510 and a third cryoprobes 520. These two additional cryoprobes 510, 520 may be inserted into the target tissue 200 using a guide tube, but it is essential that only one probe 110 is accompanied by its outer tube 210. When the three cryoprobes 110, 510, 520 are cooled, they act together to form a single ice sphere 530 with a unitary but irregularly shaped surface 532. Some of the cryoprobes 110, 510, 520 may operate at various temperatures, with slightly higher temperatures resulting in less effective freezing. Additionally, the conditions under which the cryoprobes 110, 510, and 520 are fabricated can affect the shape of the resulting ice sphere (e.g., some probes form more spherical morphologies). Using different designs and temperatures among the cryoprobes 110, 510, and 520 allows the resulting ice sphere 530 to be purposefully tailored to a shape that more efficiently kills the target tissue 200 while minimizing damage to surrounding tissue. As shown in FIG. 5 , the resulting ice sphere 530 fails to destroy the entire target tissue 200 because a portion of the tissue 200 distal to the tip of the cryoprobe 520 may remain outside the boundary of the formed ice sphere 530. This is likely due to the third cryoprobe 520 not being inserted far enough into the target tissue 200 before forming the ice sphere 530.

[0036] The ultrasound device 100 used to guide the cryoprobes 110, 510, and 520 can also be used to monitor the size and location of the iceball after its formation is complete, although the device 100 is limited in the range it can observe. As shown in Figure 6, when using the ultrasound device 100 to image the iceball 530, the ultrasonic acoustic energy 600 emitted from the device 100 passes through unfrozen tissue 620 before impacting the iceball 530. The device 100 is designed to monitor the returning ultrasonic energy. Using time and intensity information associated with this returning energy, the ultrasound imaging device can generate a three-dimensional image of the various tissues of the patient 120 into which the energy 600 has penetrated.

[0037] However, the frozen nature of ice ball 530 makes it an extremely echogenic source for ultrasound waves 600. In fact, differences in the physical properties between thawed and frozen tissue, including changes in tissue density and the resulting changes in the velocity of sound as it passes through the tissue, create an acoustic impedance mismatch that causes ultrasound energy to bounce off the ice ball. Furthermore, the ice ball itself absorbs ultrasound energy much more efficiently than unfrozen tissue. The reflective properties of ice ball 530 allow ultrasound to form a clear image of ice ball surface 532, but ultrasound energy 600 cannot penetrate efficiently beyond this surface 532. This creates an acoustic shadow behind this surface 532, which prevents any tissue or structure behind surface 532 from appearing in the resulting ultrasound image.

[0038] Furthermore, because the ultrasonic acoustic energy 600 is emitted from a single device 100, the energy 600 essentially forms a field of view 610 that defines that portion of the ice ball surface 532 that is observed in the ultrasound image. This is true whether the device 100 utilizes a curved ultrasound train that transmits an arc-shaped ultrasonic energy or a phased array probe that transmits a pie-shaped energy. In either case, the ultrasonic energy 600 is emitted from the single device, which defines an effective field of view 610. This means that a medical professional using the ultrasound device 100 can observe the formed ice ball 530 in close proximity with high precision, that the width of the ice ball 530 is wide enough to encompass the target tissue, and that the proximal surface 632 is located far enough away from the target tissue 200 to ensure destruction of a proximal portion of that tissue 200. However, because the medical professional cannot see into the shadow formed beyond the nearest surface 632 of the ice ball 530, the medical professional cannot determine whether the third cryoprobe 520 has been inserted deep enough into the target tissue 200. Ultrasound catheter

[0039] To overcome this problem, the cryoprobe 110 may be withdrawn from the guiding tube 210 while the ice ball 530 is still frozen. The cryoprobe 110 may be initially frozen in place, but a brief injection of helium warms the cryoprobe 110 sufficiently to allow the probe 110 to move freely without violently thawing the ice ball 530. Figure 7 shows the ice ball 530 of Figure 5 in a state where the cryoprobe 110 has been withdrawn. As shown in this figure, withdrawal of the cryoprobe 110 leaves an opening or passageway 700 within the ice ball 530.

[0040] The fact that this passage 700 is in communication with the inside of the outer cannulation tube 210 means that an ultrasound catheter 800 can be inserted into the ice sphere 530, as shown in Figure 8. This catheter 800 has multiple ultrasound transducer elements 810 at its distal end. By inserting the ultrasound catheter 800 directly into the formed ice sphere 530, the size and shape of the ice sphere 530 can be analyzed with greater precision.

[0041] Catheter 800 can be constructed according to the disclosures filed as U.S. Provisional Application Nos. 62 / 776,667 and 62 / 776,677, both of which were filed by the applicant of the present application on December 7, 2018. The entire contents of these two provisional applications are incorporated herein by reference.

[0042] One embodiment of an ultrasound catheter 900 is shown in FIG. 9. This catheter 900 has a plurality of ultrasound transducer elements 910 near the catheter's distal end 902. In a preferred embodiment, a 64-element annular array of ultrasound transducer elements 910 is arranged around the periphery of the catheter 900. These transducer elements 910 may be PZT, pMUT, or cMUT-based transducer elements and are capable of transmitting and detecting ultrasound energy at various frequencies, such as frequencies operating between 4 and 50 MHz. Because FIG. 9 shows a plan view of the end of the ultrasound catheter 900, the individual transducer elements 910 appear to be coplanar, i.e., arranged on a flat surface of the catheter 900. While this arrangement is one possible configuration, the transducer elements 910, as in the configuration shown in FIG. 9, may be arranged around the periphery of a non-flat surface (such as an annular or cylindrical surface formed using a catheter with a circular, elliptical, or other rounded cross-section).

[0043] Individual transducer elements 910 can form a phased array, meaning that energy from multiple transducer elements 910 can work together to form a unidirectional beam of ultrasonic energy. This is typically done by timing the transmission of ultrasonic energy from multiple transducer elements to form an interference pattern in one controllable direction. The amount of ultrasonic energy transmitted in that direction is greater than the amount that can be transmitted from a single transducer element. The same principle operates while receiving energy, where the reception of energy at multiple transducer elements 910 is individually and carefully delayed and analyzed to maximize the signal received by the transducer elements 910 in one direction. Using this approach and the annular array of transducer elements 910 shown in FIG. 9, it is possible to transmit and receive ultrasonic signals from the transducer elements 910 in one radial direction.

[0044] In other embodiments, a synthetic aperture approach is used, where individual transmit pulses are transmitted and received in an unfocused state, and a beamforming algorithm then analyzes the unfocused signals in order to focus the transmission and reception of ultrasound energy in one direction.

[0045] To allow for the insertion of the transducer elements 910 into the passageway 700 formed by the withdrawal of the cryoprobe 110, it is preferable to reduce the ultrasound catheter 900 to the smallest possible device size, preferably less than 2 mm in diameter. Furthermore, one embodiment is contemplated as having at least 64 imaging elements 910, although other configurations having from 16 to over 256 elements are possible. Indeed, Figure 16 (described below) shows one embodiment with only a single transducer element 1610.

[0046] In one embodiment, the ultrasound catheter 900 can generate images using conventional ultrasound imaging techniques, including grayscale "B-mode" imaging, which displays echo amplitude in the scan plane; M-mode imaging, which tracks motion at a specific fixed location over time; dual-tone power Doppler imaging, which displays motion within the scan plane; harmonic imaging, which displays nonlinear responses to incident ultrasound; elasticity imaging, which displays relative tissue stiffness; and contrast imaging, which uses contrast agents to display blood-filled spaces or targeted agents to display specific drug-coupled tissue types.

[0047] A lesser-known ultrasound imaging technique is quantitative ultrasound (QUS), which analyzes the distribution of power as a function of frequency of received echo signals backscattered from tissue. QUS utilizes the resulting spectral parameters to characterize and differentiate tissues. QUS can be used to efficiently construct in situ acoustic biopsies (ABs) or sonic biopsies of tissues, analyzing minute targeted tissue samples. Furthermore, QUS can be used to analyze tumor stroma and microvascular properties, providing parameters related to cell death and / or apoptosis, and providing confirmation or monitoring data for treatments such as chemotherapy, brachytherapy, cytotoxic agents, or resection. This analysis can provide intermediate feedback on tumor response to treatment using parameters such as effective scattering diameter and effective acoustic density. Heterogeneity in tumor or tissue stiffness can be analyzed by evaluating nodules from multiple directions and measuring the penetration depth of the ultrasound signal.

[0048] A preferred embodiment of the ultrasound catheter 900 further includes electromagnetic (EM) sensors 920 embedded in the distal end 902. These sensors 920 can be used to guide the catheter 900 within the patient 120. In practice, at least two sensors 920 are provided adjacent to each other but positioned at different orientations within the catheter 900 to maximize available positional and directional information. Veran Medical Technologies has developed a series of catheter systems that use EM sensors and EM navigation to precisely target and reach minute tissue masses. This technology is described in detail in U.S. Pat. No. 8,696,549, entitled "Apparatus and Method for Four-Dimensional Soft Tissue Navigation for Endoscopic Applications," which is incorporated herein by reference in its entirety. This patent explains that computed tomography x-ray scans (CT scans) can often be used to build models of organs, such as lung airways, within a patient prior to surgery. Electromagnetic navigation during the procedure then uses the sensors 920 on the catheter 900 to provide positional and directional information in three-dimensional space. The 3D EM space is registered to the CT model, allowing for a real-time display of the catheter's position in the organ model. Veran's system also provides 4D tracking over time. It can perform under-respiratory tracking, which changes the apparent position of the probe in the virtual display to match the physical position of the EM sensor as it moves with the body's respiratory movements, a significant improvement over current devices.

[0049] In catheter 900, both the EM sensor 920 and the array of ultrasound transducer elements 910 are coupled to an electronics package 930. This electronics package is responsible for operating the individual transducer elements 910 and transmitting the received signals along a data transmission path (not shown) through catheter 900 for digitization, analysis, and display to a medical professional. In one embodiment, electronics package 930 is responsible for multiplexing the signals from both the EM sensor 920 and the transducer elements 910 so that they can share a single data path along catheter 900. Measuring ice ball size

[0050] Although the ultrasound catheter 900 is designed to generate standard ultrasound images (e.g., using B-mode imaging) and to analyze specific tissues using QUS, such imaging techniques are not used to measure the size of the ice ball 530. Due to the nature of frozen tissue, ultrasound energy transmitted through the tissue travels much more quickly than it would through normal tissue. Furthermore, the absorptive nature of frozen tissue and the risk of the signal being reflected before the ultrasound penetrates the ice ball make generating a standard ultrasound image nearly impossible. Furthermore, the fact that all of the tissue in question is frozen can make it difficult to detect any differences from normal tissue visible with ultrasound.

[0051] Thus, rather than generating an image of the iceball 530, the catheter 900 uses a pulse-echo technique that effectively operates as an ultrasound detector. The annular array of transducer elements 910 is first controlled to transmit an ultrasound signal in one direction. Multiple transducer elements 910 can be utilized to generate and transmit a single beamformed signal. Alternatively, a single transducer element 910 in the annular array can be used to transmit the ultrasound signal in that direction. The amount of energy transmitted in this signal pulse can be greater than the amount of acoustic energy typically transmitted during imaging. In fact, this pulse-echo technique does not require fine tuning, but rather, it requires maximizing the transmitted energy.

[0052] The same transducer element(s) 910 that transmit the pulse also detect the ultrasound waves after they bounce off the surface of the ice ball 530. As explained above, the impedance mismatch between the ice ball 530 and the surrounding unfrozen tissue 620 causes the ultrasound signal to reflect upon impact with the outer periphery 532 of the ice ball 530. This reflection causes the signal to return to the transducer elements 910, where it is detected after the time it takes for the acoustic energy to travel through the ice ball 530, to the surface 532, and then return. Using the phased array technique described above, multiple transducer elements 910 can receive this energy and filter the received energy to visualize only the energy received from the same direction as the transmitted energy. Alternatively, the same transducer element that transmitted the signal in that direction can receive the returned energy. The peak of the received acoustic energy can be plotted against time, as seen in diagram 1000 shown in FIG. 10. This diagram 1000 shows that a large amount of ultrasound energy is received as peak 1010 in diagram 1000 versus time 1012. If time 1012 is T and the velocity of the ultrasound through frozen ice ball 530 is V, then the total distance traveled by the sound wave received at peak 1010 is D = V * T. Because the ultrasound must travel to the end 532 of ice ball 530 and return, the actual distance from catheter 900 to the end of ice ball 530 in this direction is ½ V * T. Ultrasound typically travels through unfrozen tissue at approximately 1540 m / s. However, in frozen tissue, the speed of sound is significantly faster, ranging from 2500 m / s to 4000 m / s. Furthermore, the speed of sound in frozen water is known to increase as the temperature of the ice decreases, and this is expected to be true for frozen tissue during cryoablation treatments.

[0053] Diagram 1000 shows a somewhat idealized depiction of received ultrasound energy. In reality, a significant portion of the ultrasound energy transmitted from transducer element 910 is likely to be immediately reflected back from the initial boundary of ice ball 530 within passageway 700. In this case, the received ultrasound energy may appear similar to diagram 1100 of FIG. 11 . In this case, the outer boundary 532 of ice ball 530 is observed as peak 1110 at time 1112. Additionally, a prominent peak 1120 is observed at time 1122, indicating an immediate reflection from within passageway 700. This peak 1120 may be ignored when measuring the size of ice ball 530, and may not even be detectable if it occurs too quickly after the pulse is transmitted. Preferably, ultrasound transducer element 910 is in contact with the frozen tissue of ice ball 530 when inserted into passageway 700. This should reduce the initial reflection of ultrasound energy.

[0054] As explained above, the ultrasound pulse generated by the transducer element 910 is transmitted in one direction. This pulse is shown in the schematic diagram of FIG. 12 as direction 1200. Using a time analysis of diagrams 1000 / 1100 and the equations above, the distance from the catheter 900 to the outer wall 532 of the ice ball 530 can be calculated. Once this pulse is generated, the transducer element 910 transmits another pulse in a different direction, such as direction 1210, and then measures the distance to the outer boundary 532 in that direction 1210. This is repeated in a third direction 1220, and then across the entire 360° range of the transducer element 910. In each direction, the distance to the outer boundary 532 is measured from a known position of the catheter 900 (position 1202 in FIG. 12). When these distances are combined as shown in FIG. 12, a segment 1230 is formed that indicates the size and shape of the ice ball's perimeter 532. In this embodiment, each pulse is transmitted radially from transducer element 910 of catheter 900 (position 1202), meaning that the resulting slice 1230 represents only the size of iceball 530 at the current position of transducer element 910.

[0055] The process of physically sliding the catheter 900 within the guide tube 210 to create segments 1230 at various locations within the ice sphere 530 can be repeated. In one embodiment, the catheter 900 is moved 2-10 mm along the passageway 700, starting at the most distal location, for each segment (e.g., segment 1230) created along the passageway 700. These segments are combined to create a relatively complete model 1300 of the size and shape of the ice sphere 530, as shown in FIG. 13 . To create these various segments, the catheter 900 is moved along a path, shown as element 1302 in FIG. 13 , relative to the passageway 700 and the guide tube 210. Note that the outer wall 532 of the ice sphere 530 may not be centered around the passageway 700 created by the cryoprobe 110, and therefore this path 1302 is not the “axis” or “center point” of the segments that make up the model 1300.

[0056] As described above, the physical location of the catheter tip 902 can be identified at any time using EM navigation and signals generated by the EM sensor 920. The resulting 3D model 1300 of the ice ball 530 can be located in 3D space and then superimposed on a recorded CT image showing the target tissue 200. Using this approach, a medical professional can identify areas where the dead zone of the ice ball 530 failed to encompass the target tissue 200. In some embodiments, the model of the target tissue 200 in the CT image is automatically compared to the 3D model 1300 of the ice ball 530, automatically alerting the medical professional to any target tissue 200 that remains outside the effective area of ​​the ice ball 530. This feedback allows the medical professional to reinsert the cryoprobe 110 and refreeze the tissue using the existing position of the probes 110, 510, 520 by using a longer or more intense freezing cycle. Alternatively, the medical professional can insert additional probes to treat unfrozen areas of the target tissue 200. Process 1400

[0057] The individual steps described above can be combined into a process or method 1400, as shown in the flowchart of FIG. 14 . The first step 1405 in this process is the only step that differs significantly from the steps described above. In connection with FIGS. 1 and 2 , this step described an ultrasound device 100 that can assist in guiding the cryoprobe 110 into the target tissue 200. In another embodiment, the EM sensor 920 of the ultrasound catheter 900 can be directed toward the target tissue 200 using EM navigation. Once the ultrasound transducer 910 is positioned within the (unfrozen) target tissue 200, an image of the tissue 200 can be acquired. In one embodiment, QUS is used to assist in diagnosing or otherwise analyzing the target tissue. In step 1405, the ultrasound image formed by the sensor 910 can be used to ensure that the guide tube 210 is properly positioned for insertion of the cryoprobe 110. In step 1410, the ultrasound catheter 900 is withdrawn, and in step 1415, the cryoprobe 110 is inserted through the guide tube 210 to the same location. Optionally, additional cryoprobes 510, 520 may be inserted into the target tissue 200 to form an iceball 530 of appropriate size and shape.

[0058] In step 1420, the cryoprobe is used to freeze the target tissue, and as explained above, the freezing process often involves two distinct freezing operations separated by a thawing operation of the ice spheres 530 to improve the effectiveness of the ice spheres 530.

[0059] In step 1425, the cryoprobe 110 is withdrawn, thereby creating a passageway within the ice globe 530 that is accessible through the guiding tube 210. In step 1430, the ultrasound catheter 900 is inserted into this passageway.

[0060] The ultrasound catheter 900 is then used to create a 3D model the size of the ice ball. This creation is performed by steps 1435-1455 of method 1400. In step 1435, a direction is selected for transmitting a pulse of ultrasound energy. Echoes from the outer edge 532 of the ice ball 530 are then detected in that direction. The known velocity of ultrasound in frozen tissue is used to determine the distance from the catheter 900 to the outer edge 532 in that direction. This is then repeated at various angles until the size and shape of each piece of ice ball 530 is determined in step 1440. The ideal angle between each pulse is determined using laboratory testing to achieve a good compromise between the increased detail of the piece model obtained by a smaller angle between pulses and the speed of model creation obtained by using a larger angle between pulses. As computational technology improves, the analysis speed of each pulse increases, reducing the preferred angle. In one embodiment, the angle between pulses is selected to be between 5° and 20°. In step 1445, steps 1430-1445 are repeated, moving catheter 900 to form multiple slices, each representing the shape and size of iceball 530 at that position along the path of catheter 900 movement (step 1450). These multiple slices are then combined into a single 3D model of iceball 530 in step 1455.

[0061] Catheter 900 includes EM sensor 920, which allows for the positioning, sizing, and orientation of the 3D model within the CT images used for EM navigation. In step 1460, the 3D model is displayed on these images.

[0062] In step 1465, any portions of the target tissue 200 that appear to have escaped the effect of the modeled ice ball 530 are determined. This determination can be accomplished using computer software that compares the size, shape, and orientation of the 3D model to the known size, shape, and orientation of the target tissue 200. Because both the 3D model and the target tissue can be simultaneously displayed on a display, some distinguishable visual characteristic can be used to indicate the surviving portions of the target tissue. For example, the surviving tissue may be displayed with a unique color or a different (brighter or darker) intensity than the surrounding tissue. Regardless of the characteristic used, it is important that a medical professional can immediately see and identify which portions of the target tissue are not included within the dead zone of the modeled ice ball 530. This surviving tissue can then be treated in step 1470. In some cases, steps 1405-1465 can be repeated in their entirety by step 1470 to confirm that all of the target tissue 200 has been destroyed. In other cases, the method of altering the size and shape of the ice ball 530 to effectively freeze the surviving target tissue simply requires refreezing one or more of the cryoprobes 110, 510, 520. The method then ends at step 1475. Application of thermal ablation

[0063] The novel process for visualizing ablated tissue described above has applications beyond cryosurgery. Targeted tissue can be ablated using a variety of techniques, including microwave ablation and radiofrequency ablation. Microwave ablation involves the application of electromagnetic waves in the microwave range (300 MHz to 300 GHz) to kill tissue within a target area. Water within the tissue absorbs the microwave radiation, thereby heating and killing the tissue. Radiofrequency ablation is similar, using electromagnetic waves (in this case in the radiofrequency range) to heat and kill the targeted tissue. In both cases, the electromagnetic waves are transmitted by a needle inserted directly into the target tissue. This needle is coupled to a cryoprobe 110 and guided to the target tissue in the same manner as described above, and a heat-generating signal is then emitted from the end of the needle. This means that the needle can be inserted percutaneously, laparoscopically, or intraoperatively. In either case, the needle can be inserted into the target tissue using a guiding intubation tube, such as the intubation tube 210 described above.

[0064] To apply the above-described technique in the context of thermal ablation, an RF or microwave ablation needle 1510 is inserted into the target tissue 1500 through a guide tube 1520. In the context of microwave ablation, additional microwave needles 1512, 1514 can be inserted into the target tissue 1500 to conform to the resulting shape of the ablation region 1530. It is generally not possible to activate multiple radiofrequency ablation needles simultaneously. Nevertheless, it is still possible to treat multiple ablation source locations with radiofrequency ablation by inserting multiple identical ablation needles or by using different needles while ensuring that no two needles are activated simultaneously. Whether using multiple needles or multiple insertions, multiple ablation source locations can be used to create irregularly shaped regions of ablated tissue 1530.

[0065] As explained above, a physician performing an ablation procedure needs to know whether the area of ​​lysed / ablated tissue 1530 successfully killed the target tissue 1500 in the patient. To determine this, the ablation needle 1510 inserted through the guiding tube 1510 is withdrawn, and an ultrasound catheter is inserted through the same guiding tube 1510 into the central portion of the ablated tissue 1530. Using the same techniques described above, the size, shape, location, and orientation of the ablated tissue 1530 relative to the target tissue 1500 can be determined. Of course, because the ablated tissue 1530 is heated instead of frozen, the above calculations are slightly modified. It is known that ultrasound energy travels much faster through frozen tissue than normal tissue, and as a result, it is difficult to image a frozen ice ball in three dimensions using standard ultrasound imaging techniques. It is also true that the manner in which ultrasound energy passes through heated ablated tissue 1530 is very different, which further complicates imaging the ablated tissue 1530 using standard ultrasound techniques. Using pulse-echo technology and beamforming, and modifying the algorithm described above to use the velocity of ultrasonic energy in the heated ablated tissue rather than the velocity in the ice ball, it is possible to generate a model of the ablated tissue 1530 and compare this model to the size and location of the target tissue 1500. As described above in connection with cryotherapy, this process can determine if the heated ablated tissue 1530 failed to encompass all of the target tissue 1500, resulting in the physician performing another RF or microwave ablation procedure to ensure adequate treatment of the portion of the target tissue 1500 outside of the original thermal ablation region 1530. Single transducer catheter

[0066] Another embodiment of an ultrasound catheter 1600 is shown in Figure 16, but includes only a single transducer element 1610 proximal to the tip 1602 of the catheter 1600. A larger single transducer element 1610 could be used to maximize the amount of ultrasound energy transmitted perpendicular to the transducer element 1610. The same large transducer element 1610 would also be more sensitive at receiving ultrasound energy reflected from the distal boundary 532 of the ice ball 530. This single transducer element pulsing in one direction makes the ultrasound catheter 1600 optimal for the sonar-like pulses required to perform the method 1400 described above.

[0067] The transducer element 1610 is preferably flat, and in one embodiment, the transducer element is located on a flat surface 1620 at the distal end of the ultrasound catheter 1600. The flat surface 1620 may extend the entire length of the catheter 1600, or it may terminate at a location 1622, as shown in FIG. 16 . The location 1622 separates the distal section with the flat surface 1620 from the remaining section 1630 of the catheter 1600. The remaining section 1630 may therefore have a circular or nearly round cross-section to facilitate movement within the guide catheter 210. The cross-section of the distal section with the flat surface 1620 may be semicircular with a rounded base (not shown) at the apex of which the flat surface 1620 is located, which holds the transducer element 1610.

[0068] 16, the catheter 1600 may also include embedded electromagnetic (EM) sensors 1640 at the distal end 1602. These EM sensors 1640 are associated with the sensors 920 and function as described above. An electronics package 1642 is coupled to the single transducer element 1610 and the EM sensors 1640 to control the signals transmitted and received from these components.

[0069] The use of an ultrasound catheter containing a single transducer element 1610 allows for greater energy transfer in one direction and better signal detection. While the use of a single transducer element 1610 significantly reduces the catheter 1600's ability to generate ultrasound images, this reduction in capability is inconsequential in the context of method 1400. However, due to the absence of an annular array of transducer elements 910 utilized in catheter 900, creating the aforementioned slices (such as slice 1230) requires the single transducer element catheter 1600 to be rotated. This rotation can be performed manually by a medical professional in the same manner as a medical professional rotates any other catheter. The need for a 360° rotation to perform manually highlights the importance of high-precision position measurements that are only available through the use of the EM sensor 1640. Manual rotation of the catheter 1600 by a medical professional can cause inadvertent translation of the catheter 1600 relative to the guide catheter 210. Such inadvertent position changes can be recorded by detecting the position of the EM sensor 1602. The exact current position of catheter 1600 for each angular distance measurement (step 1435) may not allow for the formation of isomorphic "slices," but a highly accurate overall model equivalent to ice ball 530 can be formed.

[0070] Another embodiment is shown in FIG. 17, which illustrates a single transducer element catheter 1600 being used with a patient by inserting the catheter through a guide tube 210. An electric stepper motor 1700 is attached to the catheter 1600. The stepper motor is physically coupled to the catheter 1600 so that the motor 1700 can control the rotation of the catheter 1600. Each step of the motor 1700 corresponds to a predetermined angular rotation of the catheter, so that a control signal can be sent along control wiring 1710 to cause the motor 1700 to rotate the catheter 1600 as needed and as commanded. In this way, a medical professional does not need to manually rotate the catheter 1600. Instead, the motor 1700, under the control of control wiring 1710, can time the rotation of the single transducer element 1600 so that translational motion of the transducer element 1600 is minimized during the rotation cycle, allowing measurements of the entire slice of the ice ball 530 to be performed as quickly and efficiently as possible.

[0071] The many features and advantages of the present invention are apparent from the foregoing description. Numerous modifications and variations will readily occur to those skilled in the art. Because of the potential for such variations, the present invention is not limited to the exact construction and operation illustrated and described. Rather, the present invention is to be limited only by the scope of the following claims. Another aspect of the present invention may be as follows. <1> A medical device for cryoablation, comprising: a) a cryoprobe for insertion into a target tissue of a patient through a guiding intubation tube; b) cooling means for cooling the cryoprobe to form an ice ball; d) an ultrasound catheter for insertion into said guiding tube, said ultrasound catheter comprising an ultrasound transducer; e) a distance calculation means for calculating the distance from the ultrasound catheter to the surface of the ice ball by transmitting a directional ultrasound signal from within the ice ball using the ultrasound transducer element and receiving ultrasound reflections from the surface of the ice ball. <2> a transmitting means for transmitting a plurality of directional ultrasonic pulses radially from the ultrasound catheter; The ultrasound waves from the ice ball are generated by transmission from the ultrasound catheter. <1> The medical device described in <3> distance measurement means for measuring the distance from the ultrasound catheter to the ice ball by using the time between transmission and reception of each pulse and the known speed of ultrasound propagation within the ice ball; <2> The medical device described in <4> The plurality of directional ultrasound pulses are transmitted from a plurality of positions by moving the ultrasound catheter within the guiding tube. <2> The medical device described in <5> an intercept calculation means for calculating, using a computer, a plurality of intercepts of at least a portion of the ice ball; <4> The medical device described in <6> and a model generation means for combining the plurality of sections to generate an ice ball model representing the size and shape of the ice ball. <5> The medical device described in <7> a treatment area determining means for determining an effective treatment area for the ice ball using a computer; and and a target tissue identification means, using the computer, for comparing an ice ball model with the known size and shape of the target tissue to identify portions of the target tissue that are outside of an effective treatment area of ​​the ice ball. <2> The medical device described in <8> physically rotating the ultrasound catheter to transmit multiple ultrasound pulses in multiple radial directions; <2> The medical device described in <9> the ultrasound catheter having a plurality of ultrasound transducer elements near a distal end of the ultrasound catheter; the plurality of ultrasonic transducer elements are selected from PZT, pMUT, or cMUT based transducer elements; <2> The medical device described in <10> the plurality of ultrasonic transducer elements form a phased array; the plurality of ultrasonic transducer elements can function together to form a unidirectional beam of ultrasonic energy; <9> The medical device described in <11> The plurality of ultrasonic transducer elements forming the unidirectional beam include: individually and carefully delaying and analyzing the reception of energy at the plurality of ultrasonic transducer elements to maximize the signal received by the plurality of ultrasonic transducer elements from one direction; <10> The medical device described in <12> Forming ice balls within the patient; a transmitting means for transmitting a plurality of directional ultrasonic pulses radially from the ultrasonic catheter in a radial direction from the ice ball; the plurality of directional ultrasound pulses are transmitted radially by the ultrasound catheter from a plurality of locations; distance measurement means for measuring the distance from the ultrasound catheter to the ice ball by using the time between transmission and reception of each pulse and the known speed of ultrasound propagation within the ice ball; and model generation means for generating an ice ball model based on the radially measured distance and the translational position of each pulse. <13> displaying the ice ball model on a three-dimensional image of the patient showing a target tissue of the patient; <12> The medical device described in <14> a target tissue identification means for comparing the ice ball model with the known size and shape of the target tissue to identify portions of the target tissue that are outside the effective treatment area of ​​the ice ball; and a target tissue specific portion display means for displaying the specific portion of the target tissue using a distinguishable visual characteristic. <13> The medical device described in <15> the distal end of the ultrasound transducer further includes an electromagnetic sensor for receiving electromagnetic signals that position the distal end within an electromagnetic field, and the ablated tissue region model display means uses the received electromagnetic signals to display a model of the ablated tissue region on a three-dimensional image of the patient. <14> The medical device described in <16> the ultrasound catheter has a plurality of ultrasound transducer elements near a distal end of the catheter, and generates each ultrasound pulse using a subset of fewer than all of the ultrasound transducer elements, the subset being selected based on a particular radial direction of each ultrasound pulse; <12> The medical device described in <17> the plurality of ultrasonic transducer elements are PZT-based transducer elements; <16> The medical device described in <18> the plurality of ultrasonic transducer elements are pMUT-based transducer elements; <16> The medical device described in <19> the plurality of ultrasonic transducer elements are cMUT-based transducer elements; <16> The medical device described in <20> 1. A medical device for visualizing ablated tissue within a patient, comprising: an ultrasound catheter disposed within the ablated tissue and configured to radially transmit a plurality of directional ultrasound pulses from within the ablated tissue; the plurality of directional ultrasound pulses are transmitted radially by the ultrasound catheter from a plurality of locations; distance measurement means for measuring the distance from the ultrasound catheter to the edge of the ablated tissue by using the time between transmission and reception of each pulse and the known speed of ultrasound propagation within the ablated tissue; a model generation means for generating a model of the ablated tissue based on the measured distances and the translational position of each pulse; a display means for displaying the model of the ablated tissue on a three-dimensional image of the patient showing the target tissue of the patient; a target tissue identification means for comparing the model of the ablated tissue with the known size and shape of the target tissue to identify portions of the target tissue that are outside of an effective treatment area of ​​the ablated tissue; The medical device further comprises a target tissue identification portion indicating means for indicating said identified portion of said target tissue using a distinguishable visual characteristic.

Claims

1. A medical device for cryoablation, comprising: a) a cryoprobe for insertion into a target tissue of a patient through a guiding cannula; b) cooling means for cooling the cryoprobe to form an ice ball; d) an ultrasound catheter for insertion into said guiding tube, said ultrasound catheter comprising an ultrasound transducer; e) distance calculation means for calculating the distance from the ultrasound catheter to the surface of the ice ball by transmitting a directional ultrasound signal from within the ice ball using the ultrasound transducer and receiving ultrasound reflections from the surface of the ice ball; a transmitting means for transmitting a plurality of directional ultrasonic pulses radially from the ultrasonic catheter; Equipped with The plurality of directional ultrasound pulses are transmitted from a plurality of positions by moving the ultrasound catheter within the guiding tube; The medical device wherein the ultrasound waves from the ice ball are generated by transmission through the ultrasound catheter.

2. 10. The medical device of claim 1, further comprising a distance measurement means for measuring the distance from the ultrasound catheter to the ice ball by using the time between transmission and reception of each pulse and the known speed of ultrasound propagation within the ice ball.

3. The medical device of claim 1 , further comprising an intercept calculation means for calculating, using a computer, a plurality of intercepts of at least a portion of the ice ball.

4. The medical device of claim 3 , further comprising a model generation means for combining the plurality of sections to create an ice ball model representing the size and shape of the ice ball.

5. A treatment area determination means for determining an effective treatment area for the ice ball using a computer; and 10. The medical device of claim 1, further comprising a target tissue identification means for using the computer to compare an ice ball model with the known size and shape of the target tissue to identify portions of the target tissue that are outside the effective treatment area of ​​the ice ball.

6. The medical device of claim 1 , wherein the ultrasound catheter is physically rotated to transmit multiple ultrasound pulses in multiple radial directions.

7. the ultrasound catheter having a plurality of ultrasound transducer elements near a distal end of the ultrasound catheter; 10. The medical device of claim 1, wherein the plurality of ultrasonic transducer elements are selected from PZT, pMUT, or cMUT based transducer elements.

8. the plurality of ultrasonic transducer elements form a phased array; 8. The medical device of claim 7, wherein the plurality of ultrasonic transducer elements can function together to form a unidirectional beam of ultrasonic energy.

9. The plurality of ultrasonic transducer elements forming the unidirectional beam include:

9. The medical device of claim 8, wherein the reception of energy at the plurality of ultrasonic transducer elements is individually and carefully delayed and analyzed to maximize the signal received by the plurality of ultrasonic transducer elements from one direction.

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