Systems, methods, and devices for progressive softening of multi-component endovascular tissues

The method of applying multiple pressure pulse periods with relaxation phases to a balloon within a blood vessel occlusion addresses the challenge of safely treating calcified lesions, reducing vessel wall damage and enhancing treatment efficacy.

JP7802463B2Active Publication Date: 2026-01-20CARDIOVASCULAR SYSTEMS INC
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Patent Information

Application Number
JP2021077933
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-01-02
Filing Date
2021-04-30
Publication Date
2026-01-20
Estimated Expiration
2038-01-03

AI Technical Summary

Technical Problem

Existing angioplasty and atherectomy systems face challenges in safely treating calcified lesions in blood vessels, often causing damage to the vessel wall due to high stress strains and strain rates, leading to complications such as arterial rupture and dissection.

Method used

A method involving multiple pressure pulse periods with relaxation periods is applied to a balloon within the occlusion, allowing the vessel wall to relax and realign, reducing mechanical chain damage by incrementally increasing pressure to safely break up calcified material without excessive strain.

Benefits of technology

This approach minimizes vessel wall trauma and tissue damage while effectively softening calcified lesions, improving blood flow and restoring vessel compliance.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide systems and methods including angioplasty to break up calcification or other tissue in occlusive areas within a blood vessel.SOLUTION: A method includes pressure pulse periods designed to break up calcified occlusive material through cyclic stretching of vessel walls without damaging vessel wall tissue.SELECTED DRAWING: Figure 7
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Description

[Technical Field]

[0001] [Inventor] Victor L Schoenle, Greenfield, MN, U.S. citizen [Reference to Related Application] This application claims the benefit of U.S. Provisional Application No. 62 / 441,796, filed January 3, 2017, and entitled "Systems, Methods, and Devices for Multi-Component Intravascular Tissue Softening Stress." [Statement Regarding Federally Sponsored Research or Development] Not applicable [Background technology]

[0002] FIELD OF THE INVENTION The present invention relates to systems, devices, and methods for destroying calcified lesions in anatomical conduits. More specifically, specific, increasingly increasing pressure increments are delivered to a balloon inside a calcified conduit, e.g., a blood vessel, to destroy the calcified material without damaging the tissue of the vessel wall.

[0003] 2. Description of Related Art A variety of techniques and devices have been developed for use in the removal or repair of tissue in arteries and similar body passageways. A primary purpose of such techniques and devices is the removal of atherosclerotic plaque in a patient's arteries. Atherosclerosis is characterized by the buildup of fatty deposits (atheromas) in the intimal layer (below the endothelium) of a patient's blood vessels, where cholesterol-rich atheromatous material initially deposits as relatively soft material and frequently hardens over time into calcified atherosclerotic plaques. Because such atheromas restrict blood flow, they are often referred to as stenotic lesions or stenoses, and the obstructing material is referred to as stenotic material. If left untreated, such stenoses can lead to angina, hypertension, myocardial infarction, stroke, and the like.

[0004] Angioplasty, or balloon angioplasty, is an intravascular procedure for treating stenosed or blocked arteries or veins by widening them, typically for treating arterial atherosclerosis. A folded balloon is typically passed through a pre-positioned catheter and over a guidewire into the narrow occlusion and then inflated to a fixed size. The balloon distends the occlusion within the vessel and surrounding muscular wall until the occlusion emerges from the radial force exerted by the expanding balloon, opening the vessel to a luminal diameter similar to that of the natural vessel within the occluded area and improving blood flow.

[0005] Angioplasty procedures are subject to several risks and complications, including, but not limited to, arterial rupture or other damage to the vessel wall from overinflation of the balloon catheter, use of an inappropriately large or stiff balloon, or the presence of a calcified target vessel, and / or hematoma or pseudoaneurysm formation at the access site. Thus, a major problem with known angioplasty systems and methods is that the occlusion is created over a relatively short period of time at high stresses and strain rates, often resulting in damage or dissection of the conduit, e.g., blood vessel, wall tissue.

[0006] Currently, the best way to address the high stress strains in the wall tissue adjacent to a calcified occlusion in a blood vessel, e.g., an artery, is with an atherectomy system commercially available from Cardiovascular Systems, Inc., ("CSI"), the assignee of the present application. The system includes an abrasive crown attached to a drive shaft, the abrasive crown being "eccentric," i.e., with a center of mass located radially away from the axis of rotation of the drive shaft. This eccentric (or non-concentric) crown abrades and removes calcium inherent in the intimal layer of the target blood vessel in combination with impact energy from the pivoting eccentric crown, which acts to disrupt and / or soften embedded calcified plaque.

[0007] CSI atherectomy systems and methods typically increase compliance of calcified occlusions, as evidenced by balloon dilation, which requires lower inflation pressures following the atherectomy procedure than non-atherectomy procedures. However, CSI atherectomy systems and methods may still use auxiliary dilation balloons to enhance luminal diameter gain in occlusions where calcium is present in the intimal wall, i.e., not within the vessel lumen.

[0008] Additionally, the inventors provide the disclosures of the following patents and patent applications, each of which is assigned to Cardiovascular Systems, Inc. and is incorporated herein in its entirety, and which may include systems, methods, and / or devices that can be used in various embodiments of the presently disclosed subject matter:

[0009] US Patent 6,295,712, "Rotational Atherectomy Device" US Patent 6,494,890, "Eccentric Rotational Atherectomy Device" U.S. Patent 6,132,444, "Eccentric Drive Shaft for Atherectomy Device and Method for Manufacture" U.S. Patent 6,638,288, "Eccentric Drive Shaft for Atherectomy Device and Method for Manufacture" U.S. Patent 5,314,438, "Grinding drive shaft apparatus for rotational atherectomy" US Patent 6,217,595, "Rotational Atherectomy Device" US Patent 5,554,163, "Atherectomy Device"; US Patent 7,507,245, "Rotational Angioplasty Device with Ground Crown"; U.S. Patent 6,129,734, "Rotational atherectomy device with radially expandable motor coupling" U.S. Patent Application 1 1 / 761,128, "Eccentric Grinding Head for High Speed ​​Rotating Atherectomy Device" U.S. Patent Application 1 1 / 767,725, "System, Apparatus, and Method for Opening an Obstructed Obstruction" U.S. Patent Application No. 12 / 130,083, "Eccentric Grinding Element for High-Speed ​​Rotating Atherectomy Devices" U.S. Patent Application No. 12 / 363,914, "Multi-Material Grinding Head for Atherectomy Device with Laterally Shifted Center of Mass" U.S. Patent Application No. 12 / 578,222, "Rotary Atherectomy Device with Pre-Bent Drive Shaft" U.S. Patent Application No. 12 / 130,024, "Eccentric Grinding and Removal Head for High-Speed ​​Rotary Atherectomy Device" U.S. Patent Application No. 12 / 580,590, "Eccentric Grinding and Removal Head for High-Speed ​​Rotary Atherectomy Device" U.S. Patent Application No. 29 / 298,320, "Rotational Atherectomy Polished Crown" U.S. Patent Application No. 29 / 297,122, entitled "Rotational Atherectomy Polished Crown" U.S. Patent Application No. 12 / 466,130, "Bidirectionally Expandable Head for Rotational Atherectomy Device" U.S. Patent Application No. 12 / 388,703, "A Rotary Atheroma Cutting Machine with a Split Abrasive Head" and methods for improving polishing efficiency U.S. Patent Application No. 13 / 624,313, "Rotary Atherectomy Device with Electric Motor" US Patent Application No. 14 / 315,774, "Devices, Systems, and Methods for Locally Measuring Compliance, Resistance, and Caliber of Biological Conduits and / or Lesions Thereof" U.S. Patent Application No. 14 / 801,269, "Methods, Devices, and Systems for Detecting, Measuring, and / or Characterizing Changes in Conduit and / or Lesion Compliance and / or Elastic Modulus During Conduit Procedures" Various embodiments of the present invention specifically address the above-mentioned problems. [Brief explanation of the drawings]

[0010] [Figure 1] FIG. 1 is a graph showing a typical stress-strain curve of a single balloon inflation to the point where arterial wall tissue is damaged. [Figure 2] FIG. 2 is a graph showing that arteries with higher collagen content soften to a greater extent than arteries with lower collagen content. [Figure 3] Figure 3 is a graph showing that different arteries have different collagen-to-elastin ratios. [Figure 4] FIG. 4 is a pressure plot obtained using one embodiment of the present invention. [Figure 5] FIG. 5 is a graph showing the change in balloon diameter in relation to the pressure used in the embodiment of the present invention that produced the pressure plot of FIG. [Figure 6] FIG. 6 shows a schematic diagram of one embodiment of the present invention. [Figure 7] FIG. 7 shows a schematic diagram of one embodiment of the present invention. [Figure 8A] FIG. 8A shows plots of pressure and diameter, respectively, with pulse number for an embodiment of the present invention. [Figure 8B] FIG. 8B shows a plot of pressure and diameter, respectively, with pulse number for an embodiment of the present invention. [Figure 8C] FIG. 8C shows a plot of pressure and diameter, respectively, with pulse number for an embodiment of the present invention. [Figure 8D] FIG. 8D shows a plot of pressure and diameter, respectively, with pulse number for an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0011] Detailed Description of the Invention Various embodiments of the present invention are illustrated in the drawings. For example, Figure 1 is a graphical representation including a reference line 10 showing a typical stress-strain curve for one balloon inflation sequence up to the point where the arterial wall is damaged. The remaining lines and dots show how periods of pulsatile inflation / cyclically stretched pressure pulses applied sequentially as described herein reduce the applied stress to the strain imposed on the arterial wall and / or how large deformations can occur at similar safe stress levels.

[0012] Figure 2 is a graph showing that arteries with higher collagen content soften to a greater extent than arteries with lower collagen content, and Figure 3 is a graph showing that different arteries have different collagen-elastin ratios.

[0013] Figure 4 shows a pressure plot obtained using one embodiment of the present invention in a cadaver study. The method produces a series of pressure pulse periods with 40 steps per atmosphere, with the rate (strain rate) set to a dimensionless number of 15. These steps may be varied to any number, e.g., 1-99 steps, and the rate may be any number, e.g., 1-99.

[0014] FIG. 5 shows the pressures employed in the embodiment of the present invention that produced the pressure plot of FIG. 1 is a graph showing balloon diameter variation with the balloon diameter being varied by material properties and may vary among various known balloon manufacturers and models.

[0015] Thus, certain embodiments of the present invention include multiple pressure pulse periods delivered via a balloon positioned within an occlusion in a biological conduit, e.g., a blood vessel such as an artery, with relaxation periods between the pressure pulse periods. The pressure pulse periods may increase or vary in pressure magnitude within each pressure pulse period and / or may include a single pressure magnitude within each pressure pulse period. The time interval between each pressure pulse period may increase continuously from the initial pressure pulse period time interval to the final pressure pulse period time interval. Alternatively, the time intervals T for pressure pulse periods may be approximately equal in some embodiments. As best shown in FIG. 4, the pressure pulse periods may increase in magnitude from the initial pressure pulse period 102 to the final pressure pulse period 104. The pressure magnitude within each pressure pulse period may be constant, increasing, or variable. An example of increasing pressure magnitude within each pressure pulse period is shown in FIGS. 4 and 5, along with FIG. 5, which illustrates the relationship of the balloon's radial expansion as indicated by the y-axis.

[0016] Thus, with reference to FIGS. 4, 5, and 8A-8D, a method according to an embodiment of the present invention includes a series 100 of pressure pulse durations P applied to an inner wall of a blood vessel over a period of time, with each pressure pulse duration P including a time T that may be constant or varying, e.g., increasing with each successive pressure pulse duration P within the series of pressure pulse durations 100. Each pressure pulse duration P may include at least one pressure waveform, a pressure magnitude within each individual pressure waveform, and / or a pressure magnitude across a pressure pulse duration having one or more pressure waveforms. The pressure magnitude is represented in FIG. 4 by the y-axis with time on the x-axis. The pressure magnitude of each pressure waveform may be constant within the waveform or may vary, e.g., increase over time. Alternatively, in combination with the pressure magnitude, the radial expansion of the balloon may be a further component of the pressure pulse duration, as shown on the y-axis in FIG. 5. Each pressure waveform may also include a time of pressurization 102 that may be constant or may vary across the pressure wave form of the pressure pulse duration. Additionally, a decompression period between each successive or adjacent pressure waveform D is provided to allow the vascular material time to relax and realign. The length of time of the decompression period may be constant or variable throughout the series of pressure pulse periods. Finally, with particular reference to Figures 8A-8D, the rate of pressure increase, or balloon inflation, at the beginning of each pressure pulse period and the rate of pressure decrease, or balloon deflation, at the end of each pressure pulse period are important controlling factors of the duration of the series of pressure pulses.

[0017] It will be understood that the series of pressure pulse periods 100, and all of the elements and variables comprising the series of pressure pulse periods 100, may be predetermined and may be executed using a controller including a processor capable of executing programmed instructions that, when executed, result in balloon inflation management of the series of pressure pulse periods 100.

[0018] Examples of pressure pulse period sequences 100 are provided in FIGS. 4, 5, and 8A-8D. FIGS. 8A-8D illustrate several exemplary waveforms that may be used to achieve the intended results of the present invention. However, as shown in FIGS. 8A-8D, the pulses, rates, and waveforms used in various embodiments of the present invention may vary. For example, the shape of the waveform may be constant, e.g., a repetitive constant pressure non-variable, such as a sine wave of constant peak magnitude and duration (time), or may vary, i.e., the pressure and / or duration may vary. Additionally, as will be readily recognized by those skilled in the art, the pressure waveform type may be the same, particularly in terms of pressure pulse duration P, e.g., all sine waves, or the pressure waveforms may vary in terms of pressure pulse duration P, e.g., square waves and / or The waveform type may be constant or may vary over the series of pressure pulse periods 100, such that one pressure pulse period P in the series employs a square wave and a second pressure pulse period P in the series employs a sawtooth wave. Those skilled in the art will recognize that all equivalents of these parameters are within the scope of the present invention.

[0019] This causes the balloon outer diameter to systematically increase and decrease at a specified rate with predetermined pressure increments over a predetermined time period. The wall of an exemplary blood vessel, e.g., an artery, is given time to relax between the application of each pressure pulse period. As shown in Figures 4 and 5, the cyclical nature of each successive pressure pulse period allows the weaker, shorter chains of vessel wall material time to disengage and align and accommodate the applied strain to the longer, more tangled chains of vessel wall material, reducing overall vessel wall mechanical chain damage and resulting tissue trauma. In other words, the magnitude of pressure during each pressure pulse period is selected so that the target vessel wall does not inelastically deform. Preferred embodiments of the present invention include incremental increases in at least one of the variables, e.g., pressure magnitude, pressure application time, and pressure rate, so that the balloon can accommodate increasing loads without collapsing the vessel wall while breaking up calcified material.

[0020] The exemplary artery may be tensioned further at safe stress levels so that the longer and more intertwined vessel wall physical chains are not broken and damaged, or the artery may be tensioned to similar pressure levels as known angioplasty methods, but with lower stress levels applied to the vessel wall over the length of the inventive procedure resulting in reduced overall vessel wall material chains / tissue damage.

[0021] In addition to the stress softening effects, including reduced tissue damage as well as reduced cellular injury responses, there are other effects, namely, increased stress softening of the dilated portion of the stress softened conduit, e.g., blood vessels such as arteries, which in turn results in a return to normal blood pressure and compliance of the healthy normal conduit, e.g., arteries, that was previously compromised.

[0022] 6 illustrates an exemplary system for implementing pressure pulse periods of various embodiments of the present invention. Thus, a pressure controller is provided having a program thereon that executes instructions or is otherwise adapted to provide pressure pulse periods in a predetermined sequence as described above. The pressure controller is operatively connected, either wired or wirelessly, to a fluid reservoir and to a known balloon that is fluid-inflatable from the reservoir according to instructions provided by the pressure controller.

[0023] The functions of the above method can be accomplished using a variety of devices, such as those shown in FIG. 6. Alternatively, as shown in FIG. 7, the system may include a balloon of known elasticity or a compliant one, a device, such as a syringe capable of injecting a known and fixed volume of fluid to inflate the balloon to the required pressure pulse duration, and an optional pressure transducer connected and in communication with the inflating balloon to measure the pressure exerted on the balloon as it inflates. An exemplary linear motor is shown that can move the syringe plunger to meet the pressure pulse duration requirement. If present, the pressure transducer is in operable communication with the balloon to measure, display, and / or record pressure data and volume data corresponding to the pressure data.

[0024] The system of FIG. 7 has a memory in communication with a processor, an input, e.g., a keyboard in operative communication with the processor, and a display also in operative communication with the processor. 1 is shown in operative communication with an external computing device that performs the programmable logic circuitry described above. As one skilled in the art will appreciate, the memory can store programmed instructions for a series of pressure pulse periods 100, and the processor can be adapted to execute the stored programmed instructions.

[0025] In yet another case, a pressure controller that functions in a manner similar to a speaker coil to vary the pressure waveform over a wide amplitude and more precisely, wider / higher range, and frequency band can be employed to generate the desired pressure pulse duration of the present invention.

[0026] Various embodiments of the present invention include a balloon at least partially covered with a wire in combination with the incrementally pulsed balloon inflation force described herein, where the wire creates a series of elevated regions of high pressure that move with the surface of the balloon as the balloon inflates and deflates. When an at least partially covered with a wire balloon is inflated, the contact pressure of the wire increases rapidly along the arterial wall, making it less compliant to expand in response to the balloon's radial expansion. Any rigid sections within the arterial wall break down into smaller fragments. As these rigid sections break down into smaller fragments, the tissue between and around the smaller rigid sections begins to stretch in response to the radially expanding balloon. Without the relief of increasing pressure on the tissue around the rigid sections provided by various embodiments of the present invention, the tissue would experience high strain rates, likely resulting in tearing, damage, or injury to the arterial wall.

[0027] The methods described herein can be used with any known percutaneous transluminal angioplasty (PTA), percutaneous transluminal coronary angioplasty (PTCA), stent delivery system, specialized balloon or CSI BOSS application.

[0028] The description of the invention and its applications described herein are illustrative and are not intended to limit the scope of the invention. Features of various embodiments may be combined with other embodiments within the contemplation of the invention. Variations and modifications of the embodiments disclosed herein are possible, and practical alternatives and equivalents to various elements of the embodiments will be apparent to those skilled in the art upon review of this patent document. These and other variations and modifications of the embodiments disclosed herein can be made without departing from the scope and spirit of the invention.

Claims

1. 1. A system for destroying calcified lesions in an anatomical conduit, comprising: an inflatable balloon; a fluid reservoir in operative fluid connection with the inflatable balloon; a pressure controller operatively connected to the fluid reservoir and adapted to controllably increase pressure to the inflatable balloon within a plurality of pressure pulse periods by controlling delivery of fluid from the fluid reservoir, wherein the balloon is inflated during each of the pressure pulse periods, the pressure controller being further adapted to provide a pressure reduction to the inflatable balloon to create a decompression period between the pressure pulse periods, the balloon pressure during the decompression period being greater than zero; a processor operatively connected to the pressure controller, the processor executing programmed instructions that, when executed, cause the programmed execution of the plurality of pressure pulse periods and the decompression periods between the pressure pulse periods; the programmed instructions are adapted to cause the pressure in the inflatable balloon to be a predetermined pressure magnitude during each of the plurality of pressure pulse periods; the programmed instructions are adapted to increase the magnitude of the predetermined pressure over time over the plurality of pressure pulse periods. system.

2. The system of claim 1 , wherein the programmed instructions are adapted such that the magnitude of the pressure increases over time within each pressure pulse period in the plurality of pressure pulse periods.

3. 2. The system of claim 1, wherein the programmed instructions are adapted to cause the pressure in the inflatable balloon to reach a predetermined maximum pressure magnitude during each of the plurality of pressure pulse periods.

4. The system of claim 3 , wherein the programmed instructions are adapted such that the magnitude of the predetermined maximum pressure increases over time over the multiple pressure pulse periods.

5. The system of claim 1 , wherein the programmed instructions are adapted such that each pressure pulse period within the plurality of pressure pulse periods comprises a constant duration.

6. The system of claim 1 , wherein the programmed instructions are adapted to increase each pressure pulse duration within the plurality of pressure pulse durations over time.

7. The system of claim 1 , wherein the programmed instructions are adapted so that the depressurization period between the pressure pulse periods is constant.

8. The system of claim 1 , wherein the programmed instructions are adapted such that the decompression period between the pressure pulse periods is variable.

9. The system of claim 1 , wherein the programmed instructions are adapted to increase the duration of the decompression between the pressure pulse periods.

10. The system of claim 1 , wherein inflation of the inflatable balloon is effected by a predetermined pressure waveform type.

11. The system of claim 10 , wherein the predetermined pressure waveform type does not change within each pressure pulse period or across the multiple pressure pulse periods.

12. The system of claim 10 , wherein the predetermined pressure waveform type varies within at least one pressure pulse period within the plurality of pressure pulse periods.

Citation Information

Patent Citations

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