Laser pulse shaping to increase transduction efficiency and protect fiber optic delivery systems for destroying vascular calcifications

The catheter system uses composite energy pulses to generate plasma pulses away from the light guide, addressing the challenge of treating vascular lesions and minimizing guide damage, thereby improving treatment efficacy and safety.

JP2026000970AInactive Publication Date: 2026-01-06BOSTON SCIENTIFIC SCIMED INC
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Patent Information

Application Number
JP2025148176
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-03-03
Filing Date
2025-09-08
Publication Date
2026-01-06
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Vascular lesions are difficult to treat effectively and can lead to major adverse events, while existing medical procedures may not be ideal and can damage light guides used for plasma generation due to high energy requirements and potential self-damage from plasma generation near the distal end.

Method used

A catheter system with a power source, controller, and light guide that generates composite energy pulses to create plasma pulses away from the light guide, using a combination of energy pulses with varying wavelengths, widths, and amplitudes to minimize damage and increase conversion efficiency.

Benefits of technology

The system effectively treats vascular lesions by generating plasma-induced pressure waves to disrupt lesions while reducing the risk of light guide damage, thus enhancing treatment efficacy and safety.

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Abstract

A catheter system for placement in a blood vessel having a vessel wall.SOLUTION: The catheter system includes a power source, a controller, and a light guide. The power source generates a plurality of energy pulses 342B. The controller controls the power source such that the plurality of energy pulses cooperate to produce a resultant energy pulse 348B having a resultant pulse shape. The light guide emits optical energy in a direction away from the light guide to generate a plasma pulse 346B away from the light guide. The power source may be a laser and the light guide may be an optical fiber. Each of the energy pulses 342B has a pulse width and are added together such that the combined energy pulse has a pulse width that is longer than the pulse width of any of the energy pulses. The at least two energy pulses can have the same wavelength or different wavelengths from each other.SELECTED DRAWING: Figure 3B
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Application No. 62987060, filed March 9, 2020, and U.S. Patent Application No. 17190921, filed March 3, 2021. Where permitted, the contents of U.S. Provisional Application No. 62987060 and U.S. Patent Application No. 17190921 are incorporated herein by reference in their entirety. [Background technology]

[0002] Vascular lesions within and adjacent to blood vessels in the body can be associated with an increased risk of major adverse events such as myocardial infarction, embolism, deep vein thrombosis, and stroke. Severe vascular lesions are difficult to treat and can make it difficult for physicians to achieve patency in a clinical setting.

[0003] Vascular lesions can be treated using medical procedures such as drug therapy, balloon angioplasty, atherectomy, stenting, vascular graft bypass surgery, to name a few, but such medical procedures may not always be ideal or may require subsequent treatment to address the lesion.

[0004] Plasma generation by optical breakdown of aqueous solutions typically requires a significant amount of energy in the short time it is converted into therapeutic bubbles and / or therapeutic pressure waves. If the energy is high enough and the pulse duration is short, it can damage the distal end of the light guide used to deliver the optical energy for plasma generation. Means of increasing the efficiency of conversion of optical energy to (plasma) pressure waves and bubble growth can reduce the power handling requirements of the optical delivery system. Therefore, less input energy is needed for an equivalent treatment while minimizing the potential for damage to the light guide.

[0005] Plasma generation near the distal end of a small diameter light guide, such as in the case of optical breakdown of aqueous solutions as a method for intravascular lithotripsy catheters, carries the potential for self-damage due to, but not limited to, proximate plasma generation and / or pressure waves, high plasma temperatures, and water jets resulting from bubble collapse. Summary of the Invention

[0006] The present invention relates to a catheter system for placement within a blood vessel having a vascular wall. The catheter system can be used to treat a treatment site within or adjacent to the vascular wall. In various embodiments, the catheter system includes a power source, a controller, and a light guide. The power source generates a plurality of energy pulses. The controller controls the power source such that the plurality of energy pulses cooperate to generate a composite energy pulse having a composite pulse shape. The light guide receives the composite energy pulses. The light guide radiates light energy away from the light guide to generate a plasma pulse away from the light guide.

[0007] In some embodiments, the power source is a laser. Furthermore, in certain embodiments, the light guide is an optical fiber. In some embodiments, the catheter system further comprises an inflatable balloon surrounding the distal end of the light guide.

[0008] Furthermore, in certain embodiments, each of the plurality of energy pulses is a submillimeter waveband pulse. Additionally, in some embodiments, each energy pulse has a pulse width, and the energy pulses are added together such that the resulting energy pulse has a pulse width that is longer than the pulse width of any one energy pulse.

[0009] In certain embodiments, at least two of the plurality of energy pulses have the same wavelength as each other. Additionally or alternatively, in some embodiments, at least one of the plurality of energy pulses has a different wavelength than the other energy pulses.

[0010] In certain embodiments, at least two of the plurality of energy pulses have the same pulse width as each other. Additionally, in some embodiments, at least two of the plurality of energy pulses have different pulse widths.

[0011] Furthermore, in certain embodiments, at least two of the plurality of energy pulses have the same optical energy as one another. Additionally or alternatively, in some embodiments, at least two of the plurality of energy pulses have different optical energies from one another.

[0012] In various embodiments, the multiple energy pulses combine to produce one continuous plasma pulse that leaves the distal end of the light guide. Furthermore, in certain embodiments, the composite energy pulse has a pulse amplitude that increases over time.

[0013] Additionally, in some embodiments, the composite energy pulse has a pulse amplitude that decreases over time. In certain embodiments, the composite energy pulse has a pulse width of time t, and the composite energy pulse has a temporal peak that occurs after time t / 2.

[0014] Alternatively, in other embodiments, the composite energy pulse has a pulse width of time t, and the composite energy pulse has a temporal peak that occurs before time t / 2. Still alternatively, in yet another embodiment, the composite energy pulse has a pulse width of time t, and the composite energy pulse has a temporal peak occurring at approximately time t / 2.

[0015] In some embodiments, the resultant energy pulse has a temporal peak that remains substantially constant over time. Furthermore, in certain embodiments, the combined energy pulse generates multiple plasma pulses away from the distal end of the lightguide, and in some such embodiments, the multiple plasma pulses are generated at different times from one another.

[0016] Additionally, in some embodiments, the composite energy pulse includes two temporal peaks that are substantially similar to one another. Additionally, or alternatively, in certain embodiments, the composite energy pulse includes two temporal peaks that are different from one another.

[0017] Furthermore, in certain embodiments, the combined energy pulses have a pulse amplitude that generally increases over time, while in other embodiments, the combined energy pulses have a pulse amplitude that generally decreases over time.

[0018] In some embodiments, the composite energy pulse has a pulse width of time t, and the composite energy pulse has a temporal peak occurring after time t / 2. Alternatively, in other embodiments, the composite energy pulse has a pulse width of time t, and the composite energy pulse has a temporal peak occurring before time t / 2. Alternatively, in still other embodiments, the composite energy pulse has a pulse width of time t, and the composite energy pulse has a temporal peak occurring at approximately time t / 2. Furthermore, in some such embodiments, the composite energy pulse has a temporal peak that remains substantially constant over time.

[0019] Furthermore, in certain embodiments, the light guide has a distal end, and the catheter system is configured to generate an initial gas bubble at the distal end of the light guide. In some such embodiments, the composite energy pulse is configured to generate an initial gas bubble at the distal end of the light guide. In one such embodiment, the initial gas bubble is generated by electrolysis. In another such embodiment, the initial gas bubble is generated using a resistive heating element. In yet another such embodiment, the initial gas bubble is generated using a fluid delivered near the distal end of the light guide.

[0020] In some embodiments, the controller can control the timing of the resulting energy pulse relative to the onset of initial bubble generation. For example, in certain such embodiments, the resulting energy pulse is generated about 1 ns but not later than about 100 ms after the onset of initial bubble generation. In other such embodiments, the resulting energy pulse is generated about 100 ns but not later than about 1 ms after the onset of initial bubble generation. In still other such embodiments, the resulting energy pulse is generated about 1 μs but not later than about 10 ms after the onset of initial bubble generation. In still other such embodiments, the resulting energy pulse is generated about 5 μs but not later than about 500 μs after the onset of initial bubble generation. In still other such embodiments, the resulting energy pulse is generated about 50 μs after the onset of initial bubble generation.

[0021] In certain embodiments, the power source includes (i) a seed light source and (ii) an amplifier, where the seed light source emits a low-power seed pulse and the amplifier is in optical communication with the seed light source to increase the power of the seed pulse to produce an energy pulse.

[0022] Further, in some embodiments, the power source includes (i) a plurality of seed light sources and (ii) a plurality of amplifiers, each seed light source emitting a low-power seed pulse, each of the plurality of amplifiers in optical communication with one of the seed light sources and each receiving one of the low-power seed pulses, each amplifier increasing the power of the seed pulse received by the respective amplifier, and the plurality of amplifiers generating a plurality of energy pulses.

[0023] Further, in certain embodiments, the power source includes (i) a plurality of seed light sources and (ii) an amplifier, wherein the seed light sources each emit a low-power seed pulse, the amplifier is in optical communication with each of the seed light sources to receive the low-power output seed pulse, the amplifier increases the power of each of the seed pulses received by the amplifier, and the amplifier generates a plurality of energy pulses.

[0024] In various embodiments, the catheter system further includes a hydrophobic material disposed proximate the distal end of the light guide. In certain embodiments, the catheter system further includes a hydrophobic material disposed at the distal end of the light guide.

[0025] Additionally, in some embodiments, the catheter system further comprises a nanosurface disposed proximate to the distal end of the light guide. Additionally, in certain embodiments, the catheter system further comprises a nanosurface disposed on the distal end of the light guide.

[0026] Additionally, in some embodiments, the nanosurface is textured. In particular applications, the present invention is further directed to a method of treating a treatment site within or adjacent to a blood vessel wall, the method including the steps of generating a plurality of energy pulses with a power source, controlling the power source with a controller so that the plurality of energy pulses cooperate to generate a composite energy pulse that is delivered to a light guide, the composite energy pulse having a composite pulse shape, generating optical energy that radiates from the light guide with the composite energy pulse delivered to the light guide, and generating a plasma pulse from the optical energy that leaves the light guide.

[0027] This Summary is an overview of some of the teachings of the present application and is not intended to be an exclusive or exhaustive presentation of the present subject matter. Further details are found in the detailed description and appended claims. Other aspects will be apparent to those skilled in the art upon reading and understanding the following detailed description and review of the drawings that form a part thereof, each of which is not to be construed in a limiting sense. The scope of the present specification is defined by the appended claims and their legal equivalents.

[0028] The novel features of the present invention, both as to its structure and its operation, as well as the invention itself, will best be understood from the accompanying drawings in conjunction with the accompanying description, in which like reference numerals refer to like parts. [Brief explanation of the drawings]

[0029] [Figure 1] 1 is a schematic cross-sectional view of a catheter system having features of the present invention, in accordance with various embodiments herein. [Figure 2A] FIG. 1 is a simplified schematic diagram illustrating a first embodiment of a portion of a catheter system for generating multiple overlapping energy pulses that are sent to a light guide to generate plasma pulses. [Figure 2B] FIG. 10 is a simplified schematic diagram illustrating another embodiment of a portion of a catheter system that generates multiple non-overlapping pulses of energy that are sent to a light guide to generate plasma pulses. [Figure 3A] FIG. 1 is a simplified schematic diagram illustrating one embodiment of a portion of a catheter system that generates multiple overlapping energy pulses that are sent to a light guide to generate multiple plasma pulses. [Figure 3B] FIG. 10 is a simplified schematic diagram illustrating another embodiment of a portion of a catheter system that generates multiple non-overlapping pulses of energy that are sent to a light guide to generate plasma pulses. [Figure 4A] 1 is a simplified graph illustrating one embodiment of a composite energy pulse having a composite pulse shape. [Figure 4B] 10 is a simplified graph illustrating another embodiment of a composite energy pulse having another composite pulse shape. [Figure 4C] 10 is a simplified graph illustrating yet another embodiment of a composite energy pulse having another composite pulse shape. [Figure 5A] 10 is a simplified graph illustrating an embodiment of a composite energy pulse having an alternative composite pulse shape. [Figure 5B]10 is a simplified graph illustrating another embodiment of a composite energy pulse having another composite pulse shape. [Figure 5C] 10 is a simplified graph illustrating yet another embodiment of a composite energy pulse having another composite pulse shape. [Figure 5D] 10 is a simplified graph illustrating yet another embodiment of a composite energy pulse having another composite pulse shape. [Figure 5E] 10 is a simplified graph illustrating another embodiment of a composite energy pulse having another composite pulse shape. [Figure 5F] 10 is a simplified graph illustrating another embodiment of a composite energy pulse having another composite pulse shape. [Figure 6A] FIG. 1 is a simplified schematic diagram illustrating one embodiment of a portion of a catheter system that generates an initial bubble. [Figure 6B] FIG. 10 is a simplified schematic diagram illustrating another embodiment of a portion of a catheter system for generating an initial bubble. [Figure 6C] FIG. 10 is a simplified schematic diagram illustrating yet another embodiment of a portion of a catheter system for generating an initial bubble. [Figure 6D] FIG. 10 is a simplified schematic diagram illustrating yet another embodiment of a portion of a catheter system for generating an initial bubble. DETAILED DESCRIPTION OF THE INVENTION

[0030] While various modifications and alternative forms are possible for each embodiment, details thereof are shown by way of example and drawings and will be described in detail. However, it should be understood that the scope of the present specification is not limited to the particular embodiments described. Rather, the scope of the present specification is intended to cover modifications, equivalents, and alternatives that are within the spirit and scope of the present specification.

[0031] Treating vascular lesions can reduce major adverse events or deaths in affected subjects. As referred to herein, a major adverse event is an adverse event that can occur anywhere in the body due to the presence of a vascular lesion (sometimes referred to herein as a "treatment site"). Major adverse events can include, but are not limited to, major adverse cardiac events, major adverse events in the peripheral or central vascular system, major adverse events in the brain, major adverse events in muscle tissue, or major adverse events in any of the internal organs.

[0032] As used herein, a treatment site may include a vascular lesion, such as a calcified or fibrous vascular lesion (hereinafter sometimes simply referred to as a "lesion" or "treatment site"), typically found in blood vessels and / or heart valves. The formation of plasma can induce a pressure wave, initiating the rapid formation of one or more gas bubbles. The gas bubbles can rapidly expand to a maximum size and then dissipate via a cavitation event, which can also emit a pressure wave upon collapse. The rapid expansion of the plasma-induced gas bubbles can generate one or more pressure waves within the balloon fluid, thereby imparting pressure waves to the treatment site. The pressure waves can transfer mechanical energy to the treatment site through the incompressible balloon fluid, imparting a disruptive force to the lesion. While not wishing to be bound by any particular theory, it is believed that a rapid change in balloon fluid momentum on the balloon wall of an inflatable balloon in contact with or positioned adjacent to the lesion is transferred to the lesion, causing it to disrupt.

[0033] Those skilled in the art will understand that the following detailed description of the present invention is illustrative only and is not intended to be limiting in any way. Other embodiments of the present invention will readily occur to such skilled artisans given the benefit of this disclosure. Furthermore, other methods of delivering energy to a lesion may be utilized, including, but not limited to, generating an induced current plasma. Reference will now be made in detail to embodiments of the present invention as illustrated in the accompanying drawings.

[0034] In the interest of clarity, not all routine features of the implementations described herein are shown and described. It will, of course, be understood that the development of any such actual implementation will involve making numerous implementation-specific decisions to achieve the developer's specific goals, including adhering to application- and business-related constraints, and that these specific goals will vary from implementation to implementation and from developer to developer. Moreover, it will be understood that such a development effort might be complex and time-consuming, but would nevertheless be a routine undertaking of engineering for those of ordinary skill in the art having the benefit of this disclosure.

[0035] As used herein, the terms "intravascular lesion," "vascular lesion," and "treatment site" are used interchangeably unless otherwise specified. Thus, an intravascular lesion and / or a vascular lesion may be referred to herein simply as a "lesion," and may include a lesion in or adjacent to a blood vessel or heart valve.

[0036] It is understood that the catheter systems herein can include many different forms and / or configurations other than those specifically shown and / or described herein. Referring now to FIG. 1 , a schematic cross-sectional view of a catheter system according to various embodiments herein is shown. The catheter system 100 is suitable for applying pressure to a treatment site within or adjacent to a vessel wall of a blood vessel and / or heart valve to cause fracturing. In the embodiment shown in FIG. 1 , the catheter system 100 can include one or more of a catheter 102, one or more light guides 122, a controller 123, a power source 124, a manifold 136, and a fluid pump 138.

[0037] The catheter 102 includes an inflatable balloon 104 (sometimes referred to herein as a "balloon"). The catheter 102 is configured to be advanced to a treatment site 106 within or adjacent to a blood vessel 108. The treatment site 106 may include, for example, a treatment site such as a calcified vascular lesion. Additionally or alternatively, the treatment site 106 may include a vascular lesion such as a fibrous vascular lesion.

[0038] The catheter 102 can include a balloon 104, a catheter shaft 110, and a guidewire 112. The balloon can be coupled to the catheter shaft 110. The balloon can include a balloon proximal end 104P and a balloon distal end 104D. The catheter shaft 110 can extend between a shaft proximal end 114 and a shaft distal end 116. The catheter shaft 110 can include a guidewire lumen 118 configured to advance over the guidewire 112. The catheter shaft 110 can also include an inflation lumen (not shown). In some embodiments, the catheter 102 can have a distal end opening 120 to accommodate the guidewire 112 and allow the balloon 104 to be moved over and / or along the guidewire so that it is positioned at or adjacent the treatment site 106.

[0039] The catheter shaft 110 of the catheter 102 can enclose one or more light guides 122 (only one light guide 122 is shown in FIG. 1 for clarity) that are in optical communication with a power source 124. The light guides 122 can be disposed along and / or at least partially within the catheter shaft 110 and at least partially within the balloon 104. In various embodiments, the light guides 122 can be optical fibers and the power source 124 can be a laser. The power source 124 can be in optical communication with the light guides 122. In some embodiments, the catheter shaft 110 can enclose multiple light guides, such as a second light guide, a third light guide, etc.

[0040] The balloon 104 can include a balloon wall 130. The balloon 104 can be deployed from a collapsed configuration suitable for advancing at least a portion of the catheter shaft 102 through a patient's vasculature to an expanded configuration suitable for securing the catheter 102 in position relative to the treatment site 106.

[0041] Controller 123 can control power source 124 to cause the power source to generate one or more energy pulses 242A, 242B, 342A, 342B (e.g., shown in FIGS. 2A-3B), as described in more detail herein. Controller 123 can also perform other related functions to control the operation of catheter 102.

[0042] The power source 124 of the catheter system 100 can be configured to provide one or more submillimeter-wave energy pulses that are received by the light conductors 122. As described in more detail herein, in various embodiments, the energy pulses can be combined or coordinated to generate a composite energy pulse (not shown in FIG. 1 ) having a composite pulse shape that is received by the light conductors 122. The light conductors 122 act as a conduit for the optical energy generated by the composite energy pulses. In certain embodiments, the power source 124 can include one or more seed light sources 126 and one or more amplifiers 128. Each amplifier 128 can be in optical communication with at least one of the seed light sources 126. Each seed light source 126 can emit a low-power seed pulse. The amplifiers 128 can increase the power of the seed pulses to generate the energy pulses. In one embodiment, the power source can include one seed light source 126 and one amplifier 128. Alternatively, the power source 124 can include multiple seed light sources 126 and one amplifier 128. Further alternatively, the power supply 124 may include multiple seed sources 126 and multiple amplifiers 128 .

[0043] The light energy generated by the combined energy pulse is delivered by the light guide 122 to a location within the balloon 104. The light energy causes plasma formation in the form of a plasma pulse 134 that occurs in the balloon fluid 132 within the balloon 104. The plasma pulse 134 causes rapid bubble formation and imparts a pressure wave at the treatment site 106. An exemplary plasma pulse 134 is shown in FIG. 1. The balloon fluid 132 can be a liquid or a gas. As will be described in more detail herein, the plasma-induced bubbles 134 are intentionally formed some distance from the light guide 122 to reduce the likelihood of damaging the light guide.

[0044] In various embodiments, submillimeter wave light pulses can be delivered near the treatment site 106 at a frequency of at least about 1 Hertz (Hz) to about 5000 Hz. In some embodiments, submillimeter wave light pulses can be delivered near the treatment site 106 at a frequency of at least 30 Hz to 1000 Hz. In other embodiments, submillimeter wave light pulses can be delivered near the treatment site 106 at a frequency of at least 10 Hz to 100 Hz. In still other embodiments, submillimeter wave light pulses can be delivered near the treatment site 106 at a frequency of at least 1 Hz to 30 Hz. In some embodiments, the light pulse in the submillimeter wave band has a frequency of 1 Hz, 2 Hz, 3 Hz, 4 Hz, 5 Hz, 6 Hz, 7 Hz, 8 Hz, or 9 Hz, 10 Hz, 20 Hz, 30 Hz, 40 Hz, 50 Hz, 60 Hz, 70 Hz, 80 Hz, 90 Hz, 100 Hz, 200 Hz, 300 Hz, 400 Hz, 500 Hz, 600 Hz, 700 Hz, 800 Hz, 900 Hz, 1000 Hz, 125 The submillimeter waveband light pulses can be delivered near the treatment site 106 at frequencies that may be greater than 0 Hz, 1500 Hz, 1750 Hz, 2000 Hz, 2250 Hz, 2500 Hz, 2750 Hz, 3000 Hz, 3250 Hz, 3500 Hz, 3750 Hz, 4000 Hz, 4250 Hz, 4500 Hz, 4750 Hz, or 5000 Hz or greater, or at frequencies that may be amounts within any of the foregoing ranges. Alternatively, the submillimeter waveband light pulses can be delivered near the treatment site 106 at frequencies that may be greater than 5000 Hz.

[0045] It is understood that the catheter system 100 herein can include any number of light guides 122 in optical communication with the power source 124 at the proximal portion 114 and the balloon fluid 132 in the balloon 104 at the distal portion 116. For example, in some embodiments, the catheter system 100 herein can include 1 to 5 light guides 122. In other embodiments, the catheter system 100 herein can include 5 to 15 light guides. In still other embodiments, the catheter system 100 herein can include 10 to 30 light guides. The catheter system 100 herein can include 1 to 30 light guides. It is understood that the catheter system 100 herein can include any number of light guides that can fall within a range, and that any of the aforementioned numbers can be the lower or upper limit of a range, so long as the lower limit of the range is less than the upper limit of the range. In some embodiments, the catheter system 100 herein can include more than 30 light guides.

[0046] The manifold 136 can be located at or adjacent to the shaft proximal end 114. The manifold 136 can include one or more proximal end openings that can receive one or more light guides, such as the light guide 122, the guidewire 112, and / or an inflation conduit 140. The catheter system 100 can also include a fluid pump 138 configured to inflate the balloon 104 with the balloon fluid 132 and / or deflate the balloon 104 as needed.

[0047] As with all embodiments shown and described herein, various features may be omitted from the drawings for clarity and ease of understanding. Additionally, the drawings may include certain features that can be omitted without departing from the spirit and scope of the present invention.

[0048] FIG. 2A is a simplified schematic diagram illustrating a first embodiment of a portion of a catheter system 200A that generates multiple overlapping energy pulses 242A. In this embodiment, the overlapping energy pulses 242A are combined and delivered to a light conductor 222A to generate an initial bubble 244A and a plasma pulse 246A. The plasma pulse 246A generates a pressure wave (not shown), which then destroys calcified lesions at or near the treatment site 106 (shown in FIG. 1). Multiple energy pulses 242A are configured and combined to generate a composite energy pulse 348A (e.g., as shown in FIG. 3A). As described in more detail below, in this and other embodiments, the composite energy pulse 348A can be individually tailored or otherwise adjusted to achieve a particular initial bubble 244A and / or plasma pulse 246A.

[0049] In one embodiment, and in the following embodiments, each energy pulse 242A can be substantially similar in shape, amplitude, and / or pulse width (duration). Alternatively, one or more of the shape, amplitude, and / or pulse width duration can vary from one energy pulse 242A to another. With this design, the composite energy pulses can be individually tailored in a manner advantageous to generate one or more plasma pulses 246A with desired characteristics.

[0050] FIG. 2B is a simplified schematic diagram illustrating a first embodiment of a portion of a catheter system 200B that generates multiple, separate, spaced-apart energy pulses 242B. In this embodiment, the spaced-apart energy pulses 242B are delivered to a light guide 222B to generate an incipient bubble 244B and / or a plasma pulse 246B. The plasma pulse 246B generates a pressure wave (not shown), which then destroys calcified lesions at or near the treatment site 106 (shown in FIG. 1 ). Multiple energy pulses 242B are configured and used to generate a composite energy pulse 348B (e.g., as shown in FIG. 3B ). As described in more detail below, in this and other embodiments, the composite energy pulse 348B can be individually tailored or otherwise adjusted to achieve specific incipient bubbles 244B and / or plasma pulses 246B.

[0051] FIG. 3A is a simplified schematic diagram illustrating one embodiment of a portion of a catheter system 300A that generates multiple overlapping energy pulses 342A to generate a composite energy pulse 348A. The composite energy pulses 348A can be delivered to a light conductor 322A to generate one or more plasma pulses 346A. In this embodiment, each plasma pulse 346A can occur relatively close to one another and / or close in time to one another. In the embodiment shown in FIG. 3A, the plasma pulses 346A occur substantially continuously, e.g., the plasma pulses 346A are successive pulses with a fairly short period of time, essentially creating one continuous plasma pulse 346A having a longer duration than any single plasma pulse 346A. The plasma pulses 346A generate pressure waves (not shown), which can then destroy calcified lesions at or near the treatment site 106 (shown in FIG. 1).

[0052] In one embodiment, and in the following embodiments, each energy pulse 342A may be substantially similar in shape, amplitude, and / or pulse width (duration). Alternatively, one or more of the shape, amplitude, and / or pulse width duration may vary from one energy pulse 342A to another.

[0053] 3B is a simplified schematic diagram illustrating one embodiment of a portion of a catheter system 300B that generates multiple separate, spaced-apart energy pulses 342B to generate a composite energy pulse 348B. The composite energy pulse 348B is delivered to a light conductor 322B and can generate one or more plasma pulses 346B. In this embodiment, the plasma pulses 346B can have a greater distance between each other and / or a greater time between each plasma pulse 346B. The plasma pulses 346B generate pressure waves (not shown), which can then destroy calcified lesions at or near the treatment site 106 (shown in FIG. 1 ).

[0054] FIG. 4A is a simplified graph illustrating one embodiment of a composite energy pulse 448A having a pulse width of duration t. In this embodiment, the composite energy pulse 448A is formed by combining multiple energy pulses (e.g., as shown in FIGS. 2A-2B and 3A-3B) as described in more detail herein. In the embodiment shown in FIG. 4A, the composite energy pulse 448A has a temporal peak 450A (maximum amplitude) that occurs after time t / 2. Furthermore, in this embodiment, the composite energy pulse 448A has a relatively low energy at its onset, resulting in an initial plasma prior to the plasma pulse (not shown in FIG. 4A). In this embodiment, the composite energy pulse 448A has a greater energy toward the end of the pulse, ultimately generating the plasma pulse.

[0055] FIG. 4B is a simplified graph illustrating one embodiment of a composite energy pulse 448B having a pulse width of duration t. In this embodiment, the composite energy pulse 448B is formed by combining multiple energy pulses (e.g., as shown in FIGS. 2A-2B and 3A-3B) as described in more detail herein. In the embodiment shown in FIG. 4B, the composite energy pulse 448B has a temporal peak 450B (maximum amplitude) that occurs before time t / 2 and results in a plasma pulse (not shown in FIG. 4B). Furthermore, in this embodiment, the composite energy pulse 448B maintains a relatively high sustained energy after the temporal peak 450B and can provide a relatively high-energy, long-response plasma pulse after the temporal peak 450B.

[0056] FIG. 4C is a simplified graph illustrating one embodiment of a composite energy pulse 448C having a pulse width of duration t. In this embodiment, the composite energy pulse 448C is formed by combining multiple energy pulses (e.g., as shown in FIGS. 2A-2B and 3A-3B) as described in more detail herein. In the embodiment shown in FIG. 4C, the composite energy pulse 448C has a temporal peak 450C (maximum amplitude) that occurs before time t / 2 and results in a plasma pulse (not shown in FIG. 4C). Furthermore, in this embodiment, the composite energy pulse 448C maintains a relatively low sustained energy after the temporal peak 450C and can provide a relatively low-energy, long-response plasma pulse after the temporal peak 450C.

[0057] 5A-5F illustrate some representative, non-exclusive embodiments of composite energy pulses that can be generated using the devices and methods provided herein. It is understood that these embodiments are not intended to, and certainly cannot, represent all possible composite energy pulses. Rather, FIGS. 5A-5F are presented to illustrate that any composite energy pulse shape can be achieved using the devices and methods disclosed herein.

[0058] 5A is a simplified graph illustrating one embodiment of a composite energy pulse 548A having a single composite pulse shape. In this embodiment, the composite energy pulse 548A includes two (or more) spaced-apart temporal peaks, such as a first temporal peak 550AF and a second temporal peak 550AS. Furthermore, in one embodiment, the composite energy pulse 548A can have two (or more) separate, spaced-apart pulses, including a first pulse 552AF and a second pulse 552AS, each having a different pulse shape, although it will be understood that the pulse shapes can alternatively be substantially similar or identical to one another.

[0059] 5B is a simplified graph illustrating one embodiment of a composite energy pulse 548B having a single composite pulse shape. In this embodiment, the composite energy pulse 548B includes two (or more) spaced-apart temporal peaks, such as a first temporal peak 550BF and a second temporal peak 550BS. Furthermore, in one embodiment, the composite energy pulse 548B can have two (or more) separate, spaced-apart pulses, including a first pulse 552BF and a second pulse 552BS, each having a different pulse shape, although it will be understood that the pulse shapes can alternatively be substantially similar or identical to one another.

[0060] 5C is a simplified graph illustrating one embodiment of a composite energy pulse 548C having a single composite pulse shape. In this embodiment, the composite energy pulse 548C includes two (or more) spaced-apart temporal peaks, such as a first temporal peak 550CF and a second temporal peak 550CS. Furthermore, in one embodiment, the composite energy pulse 548C can have two (or more) separate, spaced-apart pulses, including a first pulse 552CF and a second pulse 552CS, each having a different pulse shape, although it will be understood that the pulse shapes can alternatively be substantially similar or identical to one another.

[0061] 5D is a simplified graph illustrating one embodiment of a composite energy pulse 548D having a single composite pulse shape. In this embodiment, the composite energy pulse 548D includes two (or more) spaced-apart temporal peaks, such as a first temporal peak 550DF and a second temporal peak 550DS. Furthermore, in one embodiment, the composite energy pulse 548D can have two (or more) separate, spaced-apart pulses, including a first pulse 552DF and a second pulse 552DS, each having a different pulse shape, although it will be understood that the pulse shapes can alternatively be substantially similar or identical to one another.

[0062] 5E is a simplified graph illustrating one embodiment of a composite energy pulse 548E having a single composite pulse shape. In this embodiment, the composite energy pulse 548E includes three (or more) spaced-apart temporal peaks, such as a first temporal peak 550EF, a second temporal peak 550ES, and a third temporal peak 550ET. Furthermore, in one embodiment, the composite energy pulse 548E can have three (or more) separate, spaced-apart pulses, including a first pulse 552EF, a second pulse 552ES, and a third pulse 552ET, such that at least two of the pulses 552EF, 552ES have different pulse shapes from one another, although it is understood that the pulse shapes may alternatively all be substantially similar or identical, or may alternatively all be different from one another.

[0063] 5F is a simplified graph illustrating one embodiment of a composite energy pulse 548F having a single composite pulse shape. In this embodiment, the composite energy pulse 548F includes two (or more) spaced-apart temporal peaks, such as a first temporal peak 550FF and a second temporal peak 550FS. Furthermore, in one embodiment, the composite energy pulse 548F can have two (or more) separate, spaced-apart pulses, including a first pulse 552FF and a second pulse 552FS, each having a different pulse shape, although it will be understood that the pulse shapes can alternatively be substantially similar or identical to one another.

[0064] FIG. 6A is a simplified schematic diagram illustrating one embodiment of a portion of a catheter system 600A that generates an initial bubble 644A. In this embodiment, the catheter system 600A includes a catheter shaft 610A, a light conductor 622A, and an initial bubble generator 654A. The initial bubble generator 654A generates the initial bubble 644A to establish a gap between the light conductor 622A and the eventual plasma pulse (not shown in FIG. 6A ). In one such embodiment, the initial bubble generator 654A may include a resistive heating element. Alternatively, or in addition, the initial bubble generator 654A may include one or more electrolytic electrodes or any other material that stimulates or promotes the generation of the initial bubble 644A at or near the distal end 660A of the light conductor 622C. These designs reduce damage to the light guide 622A because the plasma pulse does not occur immediately at or on the light guide 622A, but instead occurs away from the light guide 622A.

[0065] FIG. 6B is a simplified schematic diagram illustrating another embodiment of a portion of a catheter system 600B that generates an initial bubble 644B. ​​In this embodiment, the catheter system 600B includes a catheter shaft 610B, a light conductor 622B, and an initial bubble generator 654B. The initial bubble generator 654B generates the initial bubble 644B to establish a gap between the light conductor 622B and the ultimately generated plasma pulse (not shown in FIG. 6B ). In one such embodiment, the initial bubble generator 654B can include a fluid port 656 and a fluid line 658 in fluid communication with the fluid port 656. In this embodiment, a fluid (such as air in one non-exclusive embodiment) can be delivered to the fluid port 656 via the fluid line 658, thereby generating the initial bubble 644B. This design reduces damage to the light guide 622B because the plasma pulse does not occur immediately at the distal end 660B or anywhere on the light guide 622B, but instead occurs away from the light guide 622B.

[0066] FIG. 6C is a simplified schematic diagram illustrating yet another embodiment of a portion of a catheter system 600C that generates an initial bubble 644C. In this embodiment, the catheter system 600C includes a catheter shaft 610C, a light guide 622C, and an initial bubble generator 654C. The initial bubble generator 654C generates the initial bubble 644C to establish a gap between the light guide 622C and the eventual plasma pulse (not shown in FIG. 6C ). In one such embodiment, the initial bubble generator 654C can include a hydrophobic coating. In this embodiment, surface tension is created to self-form the initial bubble via hydrophobic forces. Alternatively, or in addition, the initial bubble generator 654C can include a nano-textured surface or any other surface or material that stimulates or promotes the generation of an initial bubble at or near the distal end 660C of the light guide 622C. In this embodiment, the initial bubble generator 654C is disposed on the catheter shaft 610C. However, it is recognized that the initial bubble generator 654C may be located on or at another structure within the catheter system 600C. This design reduces damage to the light guide 622C because the plasma pulse is generated away from the light guide 622C, rather than immediately at or on the light guide 622C.

[0067] FIG. 6D is a simplified schematic diagram illustrating yet another embodiment of a portion of a catheter system 600D that generates an initial bubble 644D. In this embodiment, the catheter system 600D includes a catheter shaft 610D, a light guide 622D, and an initial bubble generator 654D. The initial bubble generator 654D generates the initial bubble 644D to establish a gap between the light guide 622D and the eventual plasma pulse (not shown in FIG. 6D ). In one such embodiment, the initial bubble generator 654D can include a hydrophobic coating. Alternatively, or in addition, the initial bubble generator 654D can include a nano-textured surface or any other surface or material that stimulates or promotes the generation of an initial bubble at or near the distal end 660D of the light guide 622D. In this embodiment, the initial bubble generator 654D is disposed on the light guide 622D. However, it is recognized that the initial bubble generator 654D may be located on or at another structure within the catheter system 600D. This design reduces damage to the light guide 622D because the plasma pulse is generated away from the light guide 622D rather than immediately at or on the light guide 622D.

[0068] Balloon Fluid Exemplary balloon fluids suitable for use herein may include, but are not limited to, one or more of water, saline, contrast medium, fluorocarbons, perfluorocarbons, gases such as carbon dioxide, and the like. In some embodiments, the balloon fluids shown and / or described herein can be used as the base inflation fluid, as discussed elsewhere herein. In some embodiments, the balloon inflation fluid comprises a 50:50 volumetric mixture of saline and contrast medium. In some embodiments, the balloon fluid comprises a 25:75 volumetric mixture of saline and contrast medium. In some embodiments, the balloon fluid comprises a 75:25 volumetric mixture of saline and contrast medium. Balloon fluids suitable for use herein can be tailored based on composition, viscosity, etc., to manipulate the speed of travel of pressure waves therein. Balloon fluids suitable for use herein are biocompatible. The volume of the balloon fluid can be tailored depending on the power source selected and the type of balloon fluid used.

[0069] In some embodiments, the contrast agent used in the contrast media herein can include, but is not limited to, an iodinated contrast agent, such as an ionic or non-ionic iodinated contrast agent. Some non-limiting examples of ionic iodinated contrast agents include diatrizoate, metrizoate, iothalamic acid, and ioxaglic acid. Some non-limiting examples of non-ionic iodinated contrast agents include iopamidol, iohexol, ioxilan, iopromide, iodixanol, and ioversol. In other embodiments, non-iodinated contrast agents can be used. Suitable non-iodinated contrast agents can include gadolinium(III) contrast agents. Suitable fluorocarbon and perfluorocarbon agents can include, but are not limited to, agents such as the perfluorocarbon dodecafluoropentane (DDFP, C5F12).

[0070] Some balloon fluids shown and / or described herein may include absorbers capable of selectively absorbing light in the ultraviolet (e.g., at least 10 nanometers (nm) to 400 nm), visible (e.g., at least 400 nm to 780 nm), and near-infrared (e.g., at least 780 nm to 2.5 μm) regions of the electromagnetic spectrum, or in the far-infrared region, which is at least 10 nm to 2.5 micrometers (μm) of the electromagnetic spectrum. Suitable absorbers may include those having an absorption maximum along a spectrum of at least 10 nm to 2.5 μm. In various embodiments, the absorber may have an absorption maximum that coincides with the emission maximum of a laser used in the catheter system. By way of non-limiting example, various lasers described herein may include a neodymium:yttrium aluminum garnet (Nd:YAG, emission maximum = 1064 nm) laser, a holmium:YAG (Ho:YAG, emission maximum = 2.1 μm) laser, or an erbium:YAG (Er:YAG, emission maximum = 2.94 μm). In some embodiments, the absorbers used herein may be water-soluble. In other embodiments, the absorbers used herein are water-insoluble. In some embodiments, the absorbers used in the balloon fluids herein may be tailored to correspond to the peak emission of the power source. Various power sources having emission wavelengths of at least 10 nanometers to 1 millimeter are discussed elsewhere herein.

[0071] In some embodiments, the introduction of balloon fluid causes the balloon to expand from a collapsed configuration to a first expanded configuration, and from the first expanded configuration to a second, further expanded configuration. Additionally or alternatively, balloon expansion can be achieved using a shape memory material or other means.

[0072] Light guide The light guides shown and / or described herein may include optical fibers or flexible light conductors. The light guides shown and / or described herein may be thin and flexible, and may transmit optical signals with little loss in intensity. The light guides shown and / or described herein may include a core surrounded by a cladding. In some embodiments, the core may be a cylindrical core or a partially cylindrical core. The core and cladding of the light guide may be formed from one or more materials, including, but not limited to, one or more types of glass, silica, or one or more polymers. The light guide may include a protective coating, such as a polymer. It is understood that the refractive index of the core is greater than the refractive index of the cladding.

[0073] Each light guide can direct light along its length to a distal portion having at least one optical window. The light guides can create optical paths as part of an optical network that includes a power source. Optical paths within an optical network allow light to travel from one portion of the network to another. Both optical fibers or flexible light guides can provide optical paths within the optical networks herein.

[0074] The light guides shown and / or described herein can have many configurations about the catheter shaft of the catheters shown and / or described herein. In some embodiments, the light guides can extend parallel to the longitudinal axis of the catheter shaft of the catheter. In some embodiments, the light guides can be arranged in a spiral or helical configuration about the longitudinal axis of the catheter shaft of the catheter. In some embodiments, the light guides can be physically coupled to the catheter shaft. In other embodiments, the light guides can be arranged along the length of the outer diameter of the catheter shaft. In still other embodiments, the light guides herein can be arranged in one or more light guide lumens within the catheter shaft. Various configurations of catheter shafts and light guide lumens are described below.

[0075] Directional and focusing mechanisms Redirecting features suitable for use herein include reflective elements, refractive elements, and fiber optic diffusers. In some embodiments, the redirecting feature can be a reflective element. In some embodiments, the redirecting feature can be a refractive element. In some embodiments, the redirecting feature can be a fiber optic diffuser.

[0076] The fiber optic diffuser can direct light from within the light guide to exit the side of the light guide. The fiber optic diffusers described herein can be created in several ways. In some embodiments, the fiber optic diffuser can be created by micromachining the surface of the distal portion of the light guide with a CO2 laser. In some embodiments, a fused silica coating can be applied to the distal portion of the light guide. In other embodiments, the fiber optic diffuser can be formed from a glass, polymer, or metal coating on the distal portion of the light guide. In other embodiments, the fiber optic diffuser can be formed by a fiber Bragg grating on the distal portion of the light guide. In some embodiments, the fiber optic diffuser can include a machined portion of the light guide, a laser machined portion of the light guide, a fiber Bragg grating, a fusion splice, a fusion splice to form at least one internal mirror, and a splice of two or more diffusing regions.

[0077] Suitable materials for optical fiber diffusers include, but are not limited to, lightguide cores or cladding, frosted glass, silver-coated glass, gold-coated glass, titanium dioxide, and other materials that scatter and do not significantly absorb the light wavelengths of interest. One method that can be used to create a uniform diffuser in a lightguide, optical component, or optical material is to utilize scattering centers on the order of at least 50 nanometers to 5 micrometers in size. The scattering centers can have a size distribution of about 200 nanometers.

[0078] Redirecting and focusing mechanisms suitable for focusing light away from the tip of the light guide herein can include, but are not limited to, those having a convex surface, a gradient index (GRIN) lens, and a mirror focus lens.

[0079] power supply Power sources suitable for use herein can include various types of power sources, including lasers and lamps. Suitable lasers can include short-pulse lasers on the submillimeter time scale. In some embodiments, power sources can include lasers on the nanosecond (ns) time scale. These lasers can also include short-pulse lasers on the picosecond (ps), femtosecond (fs), and microsecond (us) time scales. It is understood that there are many combinations of laser wavelengths, pulse widths, and energy levels that can be used to achieve plasma in the balloon fluid of the catheters shown and / or described herein. In various embodiments, the pulse width can be in a range of at least 10 ns to 200 ns, inclusive. In some embodiments, the pulse width can be in a range of at least 20 ns to 100 ns, inclusive. In other embodiments, the pulse width can be in a range of at least 1 ns to 5000 ns, inclusive.

[0080] Exemplary nanosecond lasers can include those in the UV to IR spectrum, spanning wavelengths from approximately 10 nanometers to 1 millimeter. In some embodiments, a power source suitable for use in the catheter systems herein can include one capable of generating light with wavelengths of at least 750 nm to 2000 nm. In some embodiments, the power source can include one capable of generating light with wavelengths of at least 700 nm to 3000 nm. In some embodiments, the power source can include one capable of generating light with wavelengths of at least 100 nm to 10 micrometers (μm). Nanosecond lasers can include those having repetition rates up to 200 kHz. In some embodiments, the laser can include a Q-switched thulium:yttrium aluminum garnet (Tm:YAG) laser. In some embodiments, the laser can include neodymium:yttrium aluminum garnet (Nd:YAG, holmium:yttrium aluminum garnet (Ho:YAG), erbium:yttrium aluminum garnet (Er:YAG), excimer lasers, helium neon lasers, carbon dioxide lasers, as well as doped and pulsed fiber lasers.

[0081] pressure waves The catheters shown and / or described herein are capable of generating pressure waves having a maximum pressure in the range of at least 1 megapascal (MPa) to 100 MPa. The maximum pressure generated by a particular catheter depends on the power source, absorber material, bubble expansion, propagation medium, balloon material, and other factors. In some embodiments, the catheters shown and / or described herein are capable of generating pressure waves having a maximum pressure in the range of at least 2 MPa to 50 MPa. In other embodiments, the catheters shown and / or described herein are capable of generating pressure waves having a maximum pressure in the range of at least 2 MPa to 30 MPa. In still other embodiments, the catheters shown and / or described herein are capable of generating pressure waves having a maximum pressure in the range of at least 15 MPa to 25 MPa. In some embodiments, the catheters shown and / or described herein can generate pressure waves having peak pressures of 1 MPa, 2 MPa, 3 MPa, 4 MPa, 5 MPa, 6 MPa, 7 MPa, 8 MPa, 9 MPa, 10 MPa, 11 MPa, 12 MPa, 13 MPa, 14 MPa, 15 MPa, 16 MPa, 17 MPa, 18 MPa, 19 MPa, 20 MPa, 21 MPa, 22 MPa, 23 MPa, 24 MPa, or 25 MPa, 26 MPa, 27 MPa, 28 MPa, 29 MPa, 30 MPa, 31 MPa, 32 MPa, 33 MPa, 34 MPa, 35 MPa, 36 MPa, 37 MPa, 38 MPa, 39 MPa, 40 MPa, 41 MPa, 42 MPa, 43 MPa, 44 MPa, 45 MPa, 46 MPa, 47 MPa, 48 MPa, 49 MPa, 50 MPa or greater. It is understood that the catheters shown and / or described herein can generate pressure waves having working pressures or maximum pressures that can fall within a range, and that any of the foregoing numbers can be the lower or upper limit of a range, so long as the lower limit of the range is less than the upper limit of the range.

[0082] The therapeutic treatment can be applied by a fatigue method or a brute force method. For a fatigue method, the applied pressure is at least about 0.5 MPa to 2 MPa, or about 1 MPa. For a brute force method, the applied pressure is at least about 20 MPa to 30 MPa, or about 25 MPa. Pressures between the ends of these two ranges can be applied to the treatment site using a combination of fatigue and brute force methods.

[0083] The pressure waves described herein can be applied to the treatment site from a distance ranging from at least 0.1 millimeter (mm) to 25 mm, extending radially from the longitudinal axis of the catheter positioned at the treatment site. In some embodiments, the pressure waves can be applied to the treatment site from a distance ranging from at least 10 mm to 20 mm, extending radially from the longitudinal axis of the catheter positioned at the treatment site. In other embodiments, the pressure waves can be applied to the treatment site from a distance ranging from at least 1 mm to 10 mm, extending radially from the longitudinal axis of the catheter positioned at the treatment site. In still other embodiments, the pressure waves can be applied to the treatment site from a distance ranging from at least 1.5 mm to 4 mm, extending radially from the longitudinal axis of the catheter positioned at the treatment site. In some embodiments, the pressure waves can be applied to the treatment site from a distance ranging from 0.1 mm to 10 mm and at a pressure ranging from at least 2 MPa to 30 MPa. In some embodiments, the pressure waves can be applied to the treatment site from a distance ranging from 0.1 mm to 10 mm and at a pressure ranging from at least 2 MPa to 25 MPa. In some embodiments, the pressure waves can be applied to the treatment site from a distance that can be 0.1 mm, 0.2 mm, 0.3 mm, 0.4 mm, 0.5 mm, 0.6 mm, 0.7 mm, 0.8 mm, or 0.9 mm, 1 mm, 2 mm, 3 mm, 4 mm, 5 mm, 6 mm, 7 mm, 8 mm, 9 mm, 10 mm or more, or from a distance within any of the aforementioned amounts.

[0084] It should be noted that as used in this specification and the appended claims, the singular forms "a," "an," and "the" include plural referents unless the content and / or context clearly dictate otherwise. It should also be noted that the term "or" has its commonly used meaning, including "and / or," unless the content or context clearly dictates otherwise.

[0085] It should also be noted that, as used herein and in the appended claims, the phrase "configured" describes a system, apparatus, or other structure that is constructed or arranged to perform a particular task or adopt a particular configuration. The phrase "configured" can be used interchangeably with other similar phrases, such as arranged and configured, constructed and arranged, constructed, manufactured and arranged, etc.

[0086] As used herein, the recitation of numerical ranges by endpoints is intended to include all numbers subsumed within that range (e.g., 2 to 8 includes 2, 2.1, 2.8, 5.3, 7, 8, etc.).

[0087] It will be appreciated that the figures shown and described are not necessarily drawn to scale, they are shown for ease of reference and understanding, and for the relative positioning of structures.

[0088] The headings used herein are provided for consistency with the teachings of 37 CFR 1.77 or for organizational purposes. These headings should not be construed as limiting or characterizing the invention(s) set forth in any claims issuing from this disclosure. As an example, a description of technology in the "Background" section is not an admission that that technology is prior art to any invention(s) in this disclosure. Nor should a "Summary" or "Abstract" be construed as characterizing the invention(s) set forth in the published claims.

[0089] The embodiments described herein are not intended to be exhaustive or to limit the invention to the precise form disclosed in the following detailed description. Rather, each embodiment is chosen and described so that others skilled in the art can appreciate and understand the principles and practices thereof. Accordingly, each aspect has been described with reference to various specific preferred embodiments and techniques. However, it should be understood that many variations and modifications can be made while remaining within the spirit and scope of the description.

[0090] While many different embodiments of the catheter system have been shown and described herein, it should be understood that one or more features of any one embodiment may be combined with one or more features of one or more other embodiments while still meeting the intent of the present invention.

[0091] While numerous exemplary aspects and embodiments of the catheter system have been described above, those skilled in the art will recognize certain modifications, permutations, additions, and subcombinations thereof. Accordingly, the claims appended hereto and following claims are intended to be interpreted to include all such modifications, permutations, additions, and subcombinations that fall within their true spirit and scope, and are not intended to limit the details of construction or design shown herein.

Claims

1. 1. A catheter system for treating a treatment site within or adjacent to a blood vessel wall or a heart valve, comprising: a power source that generates a plurality of energy pulses; a controller that controls the power sources so that the plurality of energy pulses cooperate to produce a composite energy pulse having a composite pulse shape; a light guide that receives the combined energy pulse and radiates light energy away from the light guide to generate a plasma pulse that leaves the light guide; A catheter system comprising:

2. The catheter system of claim 1 , wherein the power source is a laser.

3. The catheter system according to claim 1 or 2, wherein the light guide is an optical fiber.

4. The catheter system of claim 1 , further comprising an inflatable balloon surrounding the distal end of the light guide.

5. The catheter system according to claim 1 , wherein each of the plurality of energy pulses is a submillimeter waveband pulse.

6. 6. The catheter system of claim 1, wherein each of the energy pulses has a pulse width and the energy pulses are added together such that the resulting energy pulse has a pulse width that is longer than the pulse width of any of the energy pulses.

7. The catheter system of claim 1 , wherein at least two of the plurality of energy pulses have the same wavelength as each other.

8. The catheter system of claim 1 , wherein at least one of the plurality of energy pulses has a wavelength that is different from the other energy pulses.

9. The catheter system of claim 1 , wherein at least two of the plurality of energy pulses have the same pulse width.

10. The catheter system of claim 1 , wherein at least two of the plurality of energy pulses have different pulse widths.

11. The catheter system of claim 1 , wherein at least two of the plurality of energy pulses have the same optical energy as each other.

12. 12. The catheter system of claim 1, wherein at least two of the plurality of energy pulses have different optical energies.

13. 13. The catheter system of claim 1, wherein the multiple energy pulses combine to produce one continuous plasma pulse away from the distal end of the light guide.

14. 14. The catheter system of claim 1, wherein the resultant energy pulse has a pulse amplitude that increases over time.

15. 14. The catheter system of claim 1, wherein the resultant energy pulse has a pulse amplitude that decreases over time.

16. 16. The catheter system of claim 1, wherein the resultant energy pulse has a pulse width of time t, and the resultant energy pulse has a temporal peak that occurs after time t / 2.

17. 16. The catheter system of claim 1, wherein the composite energy pulse has a pulse width of time t, and wherein the composite energy pulse has a temporal peak occurring before time t / 2.

18. 16. The catheter system of claim 1, wherein the composite energy pulse has a pulse width of time t, and wherein the composite energy pulse has a temporal peak occurring at approximately time t / 2.

19. 14. The catheter system of claim 1, wherein the resultant energy pulse has a temporal peak that remains substantially constant over time.

20. 20. The catheter system of claim 1, wherein the combined energy pulse generates multiple plasma pulses away from the distal end of the light guide.

21. 21. The catheter system of claim 20, wherein the plurality of plasma pulses are generated at different times.

22. 22. The catheter system of claim 20, wherein the composite energy pulse includes two temporal peaks that are substantially similar to each other.

23. 22. The catheter system of claim 20, wherein the composite energy pulse includes two distinct temporal peaks.

24. 24. The catheter system of claim 20, wherein the composite energy pulses generally have pulse amplitudes that increase over time.

25. 25. The catheter system of claim 20, wherein the composite energy pulses have a pulse amplitude that generally decreases over time.

26. 26. The catheter system of claim 20, wherein the resultant energy pulse has a pulse width of time t, and wherein the resultant energy pulse has a temporal peak occurring after time t / 2.

27. 27. The catheter system of any one of claims 20 to 26, wherein the resultant energy pulse has a pulse width of time t, and the resultant energy pulse has a temporal peak that occurs before time t / 2.

28. 28. The catheter system of any one of claims 20 to 27, wherein the composite energy pulse has a pulse width of time t, and wherein the composite energy pulse has a temporal peak occurring at approximately time t / 2.

29. 29. The catheter system of any one of claims 20 to 28, wherein the resultant energy pulse has a temporal peak that remains substantially constant over time.

30. 30. The catheter system of claim 1, wherein the light guide has a distal end, and the catheter system is configured to generate an initial gas bubble at the distal end of the light guide.

31. 31. The catheter system of claim 30, wherein the combined energy pulse is configured to generate the initial gas bubble at the distal end of the light guide.

32. 32. The catheter system of claim 30, wherein the initial gas bubbles are generated by electrolysis.

33. 33. The catheter system of claim 30, wherein the initial gas bubble is generated by using a resistive heating element.

34. 34. The catheter system of claim 30, wherein the initial gas bubble is generated using a fluid delivered near the distal end of the light guide.

35. 35. The catheter system of claim 30, wherein the controller controls the timing of the resultant energy pulse relative to the onset of initial bubble generation.

36. 36. The catheter system of claim 35, wherein the combined energy pulse is generated approximately 1 ns to approximately 100 ms after the start of generation of the initial bubble.

37. 36. The catheter system of claim 35, wherein the combined energy pulse is generated about 100 ns to about 1 ms after the initiation of generation of the initial bubble.

38. 36. The catheter system of claim 35, wherein the combined energy pulse is generated approximately 1 μs to approximately 10 ms after the initiation of the initial bubble generation.

39. 36. The catheter system of claim 35, wherein the combined energy pulse is generated approximately 5 μs to approximately 500 μs after the start of the initial bubble generation.

40. 36. The catheter system of claim 35, wherein the resultant energy pulse is generated approximately 50 μs from the onset of generation of the initial bubble.

41. 49. The catheter system of any one of claims 1 to 40 and 44 to 48, wherein the power source includes (i) a seed light source and (ii) an amplifier, the seed light source emitting a low-power seed pulse, the amplifier in optical communication with the seed light source, and the amplifier increasing the power of the seed pulse to generate an energy pulse.

42. 49. The catheter system of any one of claims 1 to 40 and 44 to 48, wherein the power source includes (i) a plurality of seed light sources and (ii) a plurality of amplifiers, each of the seed light sources emitting a low-power seed pulse, each of the plurality of amplifiers in optical communication with one of the seed light sources and each receiving one of the low-power seed pulses and increasing the power of the seed pulse received by each of the amplifiers, and wherein the plurality of amplifiers generate the plurality of energy pulses.

43. 49. The catheter system of any one of claims 1 to 40 and 44 to 48, wherein the power source includes (i) a plurality of seed light sources, each of which emits a low-power seed pulse, and (ii) an amplifier, the amplifier being in optical communication with each of the seed light sources and receiving the low-power seed pulses, the amplifier increasing the power of each of the seed pulses received by the amplifier, and the amplifier generating the plurality of energy pulses.

44. 44. The catheter system of claim 1, further comprising a hydrophobic material disposed proximate the distal end of the light guide.

45. 44. The catheter system of claim 1, further comprising a hydrophobic material disposed at a distal end of the light guide.

46. 46. ​​The catheter system of claim 1, further comprising a nanosurface disposed proximate to the distal end of the light guide.

47. 46. ​​The catheter system of claim 1, further comprising a nanosurface disposed at a distal end of the light guide.

48. 48. The catheter system of any one of claims 46 to 47, wherein the nano-surface is textured.

49. 1. A method of treating a treatment site within or adjacent to a blood vessel wall, comprising: generating a plurality of energy pulses with a power source; controlling the power supplies with a controller so that the plurality of energy pulses cooperate to produce a composite energy pulse that is delivered to a light guide, the composite energy pulse having a composite pulse shape; generating light energy radiating from the light guide by the combined energy pulses transmitted to the light guide; generating a plasma pulse from the light energy leaving the light guide; A method comprising:

50. 50. The method of claim 49, wherein the power source is a laser.

51. 51. The method of any one of claims 49 to 50, wherein the light guide is an optical fiber.

52. 52. The method of any one of claims 49 to 51, further comprising surrounding the distal end of the light guide with an inflatable balloon.

53. 53. The method of any one of claims 49 to 52, wherein each of the plurality of energy pulses is a submillimeter waveband pulse.

54. 54. The method of any one of claims 49 to 53, wherein the controlling step comprises adding the plurality of energy pulses together such that the composite pulse shape has a pulse width that is longer than the pulse width of any of the plurality of energy pulses.

55. 55. The method of any one of claims 49 to 54, wherein at least two of the energy pulses have the same wavelength as each other.

56. 56. The method of any one of claims 49 to 55, wherein at least one of the energy pulses has a different wavelength than the other energy pulses.

57. 57. The method of any one of claims 49 to 56, wherein at least two of the energy pulses have the same pulse width as each other.

58. 58. The method of any one of claims 49 to 57, wherein at least two of the energy pulses have different pulse widths.

59. 59. The method of any one of claims 49 to 58, wherein at least two of the energy pulses have the same light energy as each other.

60. 60. The method of any one of claims 49 to 59, wherein at least two of the energy pulses have different light energies.

61. 61. The method of any one of claims 49 to 60, wherein the controlling step includes combining the plurality of energy pulses to generate the composite energy pulse to generate one continuous plasma pulse proximate a distal end of the light guide.

62. 62. The method of any one of claims 49 to 61, wherein the composite energy pulses have a pulse amplitude that increases over time.

63. 62. The method of claim 61, wherein the composite energy pulse has a pulse amplitude that decreases over time.

64. 64. The method of any one of claims 61 to 63, wherein the composite energy pulse has a pulse width of time t, and wherein the composite energy pulse has a temporal peak occurring after time t / 2.

65. 64. The method of any one of claims 61 to 63, wherein the composite energy pulse has a pulse width of time t, and wherein the composite energy pulse has a temporal peak occurring before time t / 2.

66. 64. The method of any one of claims 61 to 63, wherein the composite energy pulse has a pulse width of time t, and wherein the composite energy pulse has a temporal peak occurring at approximately time t / 2.

67. 62. The method of claim 61, wherein the composite energy pulse has a temporal peak that remains substantially constant over time.

68. 61. The method of any one of claims 49 to 60, wherein the controlling step comprises generating a plurality of plasma pulses proximate the distal end of the light guide.

69. 69. The method of claim 68, wherein the controlling step comprises generating the plurality of plasma pulses at different times.

70. 70. The method of any one of claims 49 to 69, wherein the composite energy pulse has at least two substantially similar temporal peaks.

71. 70. The method of any one of claims 49 to 69, wherein the composite energy pulse has at least two distinct temporal peaks.

72. 72. The method of any one of claims 49 to 71, wherein the composite energy pulses have a pulse amplitude that generally increases over time.

73. 73. The method of any one of claims 49 to 72, wherein the composite energy pulses have a pulse amplitude that generally decreases over time.

74. 74. The method of any one of claims 49 to 73, wherein the composite energy pulse has a pulse width of time t, and wherein the composite energy pulse has a temporal peak occurring after time t / 2.

75. 75. The method of any one of claims 68 to 74, wherein the composite energy pulse has a pulse width of time t, and wherein the composite energy pulse has a temporal peak occurring before time t / 2.

76. 76. The method of any one of claims 68 to 75, wherein the composite energy pulse has a pulse width of time t, and wherein the composite energy pulse has a temporal peak occurring at approximately time t / 2.

77. 77. The method of any one of claims 68 to 76, wherein the composite energy pulse has a temporal peak that remains substantially constant over time.

78. 78. The method of any one of claims 49 to 77, further comprising the step of creating an initial gas bubble at the distal end of the light guide.

79. 79. The method of claim 78, wherein the step of generating the initial bubble includes configuring the composite energy pulse to generate the initial bubble.

80. 80. The method of any one of claims 78 to 79, wherein the step of generating the initial bubbles is accomplished by electrolysis.

81. 81. The method of any one of claims 78 to 80, wherein generating the initial bubble is accomplished using a resistive heating element.

82. 82. The method of any one of claims 78 to 81, wherein generating the initial bubble is accomplished by delivering a fluid near the distal end of the light guide.

83. 83. The method of any one of claims 78 to 82, wherein the controlling step comprises controlling the timing of the resultant energy pulse relative to the onset of generation of the initial bubble.

84. 84. The method of claim 83, wherein the combined energy pulse is generated about 1 ns to about 100 ms after the initiation of generation of the initial bubble.

85. 84. The method of claim 83, wherein the resultant energy pulse is generated about 10 ns to about 10 ms after the initiation of generation of the initial bubble.

86. 84. The method of claim 83, wherein the combined energy pulse is generated about 100 ns to about 1 ms after the initiation of generation of the initial bubble.

87. 84. The method of claim 83, wherein the resultant energy pulse is generated about 500 ns to about 100 ms after the initiation of generation of the initial bubble.

88. 84. The method of claim 83, wherein the resultant energy pulse is generated about 1 μs and up to about 10 ms after the initiation of generation of the initial bubble.

89. 84. The method of claim 83, wherein the resultant energy pulse is generated about 1 μs and up to about 1 ms after the initiation of generation of the initial bubble.

90. 84. The method of claim 83, wherein the resultant energy pulse is generated about 5 μs and up to about 500 μs after the initiation of generation of the initial bubble.

91. 84. The method of claim 83, wherein the resultant energy pulse is generated at about 50 μs from the onset of generation of the initial bubble.

92. 92. The method of any one of claims 49 to 91, further comprising disposing a hydrophobic material proximate a distal end of the light guide.

93. 92. The method of any one of claims 49 to 91, further comprising disposing a hydrophobic material at a distal end of the light guide.

94. 94. The method of any one of claims 49 to 93, further comprising disposing a nano-surface proximate to a distal end of the light guide.

95. 94. The method of any one of claims 49 to 93, further comprising disposing a nanosurface on a distal end of the light guide.

96. 96. The method of any one of claims 94 to 95, wherein the nanosurface is textured.

97. 97. The method of any one of claims 49 to 96, wherein the step of generating a plurality of energy pulses using a power source includes (i) a seed light source, and (ii) an amplifier, wherein the seed light source emits low-power seed pulses, the amplifier is in optical communication with the seed light source, and the amplifier increases the power of the seed pulses to generate the energy pulses.

98. 97. The method of any one of claims 49 to 96, wherein the step of generating a plurality of energy pulses using a power source includes: (i) a plurality of seed sources; and (ii) a plurality of amplifiers, each of the seed sources emitting a low-power seed pulse; each of the plurality of amplifiers in optical communication with one of the seed sources, each receiving one of the low-power seed pulses and increasing the power of the seed pulse received by each of the amplifiers; and wherein the plurality of amplifiers generate the plurality of energy pulses.

99. 97. The method of any one of claims 49 to 96, wherein the step of generating a plurality of energy pulses using a power source includes: (i) a plurality of seed sources; and (ii) an amplifier, each of the seed sources emitting a low-power seed pulse, the amplifier in optical communication with each of the seed sources receiving the low-power seed pulses, the amplifier increasing the power of each of the seed pulses received by the amplifier, and the amplifier generating the plurality of energy pulses.