Controlled irrigation for neuromodulation systems and related methods - Patent Application 20070122997

The neuromodulation catheter with controlled irrigation and real-time feedback adjusts energy and fluid delivery to minimize tissue damage and enhance treatment efficacy in complex anatomies.

JP7739499B2Active Publication Date: 2025-09-16MEDTRONIC ARDIAN LUXEMBOURG SARL
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Patent Information

Application Number
JP2024024439
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-04-20
Filing Date
2024-02-21
Publication Date
2025-09-16
Estimated Expiration
2039-01-17

AI Technical Summary

Technical Problem

Conventional neuromodulation systems face challenges with uncontrolled irrigation leading to inaccurate temperature measurements, tissue damage, and adverse effects such as blood clotting and scorching, particularly in complex anatomies like renal vasculature.

Method used

The system employs a neuromodulation catheter with an irrigated therapy assembly that actively monitors tissue and neuromodulation element characteristics, adjusting energy and irrigation fluid delivery parameters based on real-time diagnostic feedback to achieve controlled lesion formation.

Benefits of technology

This approach allows for precise neuromodulation treatments with controlled lesion depths, reducing adverse effects and improving treatment success, especially in blood vessels with impaired or low blood flow.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide catheter systems with controlled irrigation capabilities and methods.SOLUTION: Neuromodulation catheter systems 100 with controlled irrigation capabilities and methods for using such systems are disclosed herein. One such method includes, for example, the steps of: positioning an irrigated neuromodulation catheter at a treatment site within a renal blood vessel of a human patient; delivering neuromodulation energy at the treatment site; and delivering irrigation fluid to the treatment site having characteristics coordinated with the delivered energy. The characteristics can be adjusted to maintain an energy delivery element and / or tissue of the blood vessel at a constant temperature as power is increased. The method can further include the steps of: monitoring at least one parameter of the tissue and / or of the energy delivery element; and adjusting the neuromodulation energy and / or the characteristics of the irrigation fluid when the at least one parameter falls outside of a treatment range of values.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS

[0001] This application claims the benefit of U.S. Patent Application No. 15 / 959,043, filed April 20, 2018, and U.S. Provisional Patent Application No. 62 / 621,359, filed January 24, 2018, both of which are incorporated by reference in their entireties.

[0002]

[0002] The present technology relates to irrigated neuromodulation systems and related methods. In particular, various embodiments of the present technology relate to neuromodulation catheter systems with controlled irrigation capabilities and methods of using such systems. [Background technology]

[0003]

[0003] The sympathetic nervous system (SNS) is primarily an involuntary body control system typically associated with stress responses. SNS fibers extend through the tissues of nearly every organ system in the human body and can influence characteristics such as pupil diameter, gut motility, and urine output. Such regulation may have adaptive utility in maintaining homeostasis or preparing the body for rapid response to environmental factors. However, chronic overactivation of the SNS is a common maladaptive response that can promote the progression of many disease states. In particular, overactivation of the renal SNS has been identified experimentally and in humans as a likely contributing factor to the complex pathophysiology of arrhythmias, hypertension, states of volume overload (e.g., heart failure), and progressive renal disease.

[0004]

[0004] Renal sympathetic nerves terminate in, among other structures, the renal blood vessels, the juxtaglomerular apparatus, and the renal tubules. Stimulation of the renal sympathetic nerves can result, for example, in increased renin release, increased sodium reabsorption, and decreased renal blood flow. These and other neuromodulatory components of renal function are significantly stimulated in disease states characterized by increased sympathetic tone. For example, reduced renal blood flow and glomerular filtration rate as a result of renal sympathetic efferent stimulation likely underlie the loss of renal function in cardiorenal syndromes (i.e., renal insufficiency as a progressive complication of chronic heart failure). Pharmacological strategies to counter the consequences of renal sympathomimetic activity include centrally acting sympatholytic agents, beta-blockers (e.g., to reduce renin release), angiotensin-converting enzyme inhibitors and receptor blockers (e.g., to prevent angiotensin II and aldosterone activation resulting from renin release), and diuretics (e.g., to counter renal sympathetic mediated sodium and water retention). However, these pharmacological strategies have significant limitations, including limited efficacy, compliance issues, and side effects. Summary of the Invention [Problem to be solved by the invention]

[0005] One embodiment of the present invention relates to controlled irrigation and related methods, for example, for neuromodulation systems. [Means for solving the problem]

[0006] One embodiment of the present invention relates to controlled irrigation and related methods, for example, for neuromodulation systems. [Brief explanation of the drawings]

[0007] [Figure 1]

[0005] FIG. 1 is a partial schematic perspective view showing a renal neuromodulation system including an irrigation therapy device configured in accordance with an embodiment of the present technology. [Figure 2A]

[0006] FIG. 1 is a partial schematic side view of a neuromodulation catheter configured in accordance with an embodiment of the present technology, with a distal portion of a guidewire positioned within a blood vessel of a human patient. [Figure 2B] 2B is a partial schematic side view of the neuromodulation catheter shown in FIG. 2A with the irrigation therapy assembly in a first position within a blood vessel of a human patient. [Figure 2C] 2B is a partial schematic side view of the neuromodulation catheter shown in FIG. 2A with the irrigation therapy assembly in a second state within a blood vessel of a human patient. [Figure 2D]

[0008] 2D is a front view of the irrigation therapy assembly in the second condition shown in FIG. 2C, looking proximally down the longitudinal axis of a blood vessel of a human patient. [Figure 3]

[0009] FIG. 1 is a partial schematic side view of a neuromodulation catheter with an irrigation therapy assembly in a deployed state within a blood vessel of a human patient, configured in accordance with an embodiment of the present technology. [Figure 4]

[0010] FIG. 1 is a partial schematic side view of a neuromodulation catheter with an irrigation therapy assembly in a deployed state within a blood vessel of a human patient, configured in accordance with an embodiment of the present technology. [Figure 5]

[0011] 10 is a graph illustrating an energy delivery algorithm that may be used in conjunction with a neuromodulation system configured in accordance with an embodiment of the present technology. [Figure 6]

[0012] 1 is a flow diagram of a process or method for treating a patient using a neuromodulation system configured in accordance with an embodiment of the present technology. [Figure 7]

[0013] 2 illustrates evaluation of renal neuromodulation and / or neuromodulation therapy using the system of FIG. 1 in accordance with an embodiment of the present technology. [Figure 8]

[0014] A conceptual diagram of the sympathetic nervous system (SNS) and how the brain communicates with the body through the SNS. [Figure 9]

[0015] Close-up anatomy of the nerves innervating the left kidney, forming the renal plexus surrounding the left renal artery. [Figure 10]

[0016] 1 is a diagram of human anatomy showing nerve efferent and afferent communication between the brain and kidneys. [Figure 11] FIG. 1 is a schematic diagram of the human body showing nerve efferent and afferent transmission between the brain and kidneys. [Figure 12]

[0017] 1 is an anatomy diagram of the human arterial vasculature. [Figure 13] Anatomy of the human venous vasculature. DETAILED DESCRIPTION OF THE INVENTION

[0008]

[0018] The following disclosure describes neuromodulation catheter systems with controlled irrigation capabilities and methods of using such systems. More specifically, neuromodulation systems configured in accordance with embodiments of the present technology utilize a neuromodulation catheter with an irrigated therapy assembly. The disclosed neuromodulation systems are configured to deliver regulated neuromodulation energy and irrigation fluid to an irrigated therapy assembly at a treatment site within a patient's blood vessel (e.g., renal blood vessel). The disclosed systems are configured to adjust / modify one or more parameters of energy delivery and irrigation throughout the treatment based, for example, on the patient's tissue characteristics at the treatment site, characteristics of the therapy assembly components, characteristics of the irrigation fluid, the power at which energy is currently being applied, and other relevant parameters.

[0009]

[0019] Using conventional neuromodulation systems and methods, increasing the power at which energy is delivered to tissue can increase the depth of damage at a target site within a patient's body. However, the temperature of the electrode (or electrodes) used to deliver such energy also increases as the power increases. In some cases, the increased electrode temperature can cause blood clotting and scorching of vascular tissue. This tissue damage, in turn, can cause other adverse effects, including downstream infarction or other undesirable tissue damage. For this reason, some conventional systems incorporate irrigation to provide cooling to the treatment site and avoid some of the adverse effects experienced with non-irrigated catheters. Nevertheless, irrigated ablation systems have been shown to create undesirable and greater lesions than non-irrigated catheters, and several adverse effects associated with tissue damage after the use of such irrigated catheters have been documented, including renal artery stenosis, arterial access site problems, and / or significant reductions in eGFR.

[0010]

[0020] There are several reasons why adverse effects associated with the use of conventional irrigated catheters continue to exist. For example, the irrigation fluid in these conventional systems is typically delivered in an uncontrolled manner, with limited control over flow rate and delivery timing and limited control over the temperature of the infusate. These practices can distort temperature measurements obtained by the neuromodulation system during treatment. Specifically, the irrigation fluid can cause these conventional systems to report electrode temperatures anywhere between the temperature of the irrigation fluid (e.g., room temperature) and the patient's body temperature, and the electrode temperature becomes increasingly inaccurate over the course of treatment (e.g., as power increases). Thus, in many situations, any electrode temperature information transmitted back to the system's generator after use of irrigation fluid cannot be reliably used to measure ablation progress. As a result, these conventional irrigation systems provide inaccurate observations of the size of the lesion created and the condition of the treated tissue. While this issue is less of a problem when ablating certain anatomical structures (e.g., cardiac tissue), this lack of control is particularly challenging when ablating electrically sensitive structures, thin-walled structures, or near other arterial structures. For example, renal anatomy is typically more complex than cardiac tissue in terms of regional heterogeneity of the anatomy, and therefore requires a greater degree of control and care when performing renal denervation than can be provided by conventional irrigation systems.

[0011]

[0021] In contrast to conventional systems and techniques, neuromodulation systems and methods according to embodiments of the present technology are configured to deliver regulated neuromodulation energy and irrigation fluid to a treatment site. In some embodiments, such systems and methods are configured to actively monitor characteristics (e.g., temperature, impedance, etc.) of the tissue and / or neuromodulation elements at the treatment site. The systems and methods can use this diagnostic information to monitor treatment progress and / or adjust (i) the characteristics (e.g., type, power level, duration, frequency, etc.) of the neuromodulation energy applied to the treatment site in light of a neuromodulation treatment control algorithm, and / or (ii) the characteristics (e.g., volume, temperature, type, duration, rate, etc.) of the irrigation fluid delivered to the treatment site. Thus, systems configured according to the present technology are expected to achieve greater control of lesion characteristics during a neuromodulation treatment, increasing the likelihood of a successful neuromodulation treatment, particularly in blood vessels with impaired and / or low blood flow. For example, systems and methods according to embodiments of the present technology are expected to achieve greater lesion depths without the adverse effects observed in patients following the use of conventional systems and methods.

[0012]

[0022] Specific details of some embodiments of the present technology are described herein with reference to FIGS. 1A-13. While many of the embodiments are described with respect to devices, systems, and methods for intravascular renal neuromodulation, other applications and other embodiments are within the scope of the present technology in addition to those described herein. For example, at least some embodiments of the present technology may be useful for use in intraluminal neuromodulation, extravascular neuromodulation, non-renal neuromodulation, and / or therapies other than neuromodulation. It is noted that other embodiments, in addition to those disclosed herein, are also within the scope of the present technology. Furthermore, embodiments of the present technology may include configurations, components, and / or procedures different from those illustrated or described herein. Furthermore, it is understood that, without departing from the present technology, embodiments of the present technology may include configurations, components, and / or procedures in addition to those illustrated or described herein, and that such embodiments and other embodiments may incorporate configurations, components, and / or procedures in addition to those illustrated or described herein. Those skilled in the art will appreciate that some of the steps may be omitted and / or may not be required.

[0013]

[0023] As used herein, the terms "distal" and "proximal" define a location or direction relative to a clinician or a clinician's control device (e.g., the handle of a neuromodulation catheter). The terms "distal" and "distally" refer to a location along the length of a device away from or in a direction away from a clinician or a clinician's control device. The terms "proximal" and "proximally" refer to a location along the length of a device near or in a direction toward a clinician or a clinician's control device. The headings provided herein are for convenience only and should not be construed as limiting the disclosed subject matter. A. Selected Embodiments of Neuromodulation Catheters and Systems

[0024] FIG. 1 is a partial schematic diagram illustrating a neuromodulation system 100 configured in accordance with an embodiment of the present technology. System 100 may include a treatment device 110 (e.g., an irrigation catheter) operably coupled to a console 102 via a connector 101 (e.g., a cable). System 100 further includes an irrigation pump 104 integrated with console 102 to facilitate simultaneous and / or coordinated delivery of neuromodulation energy and irrigation fluid during treatment. As shown in FIG. 1 , treatment device 110 may include an elongate shaft 112 having a proximal portion 114, a handle assembly 111 at a region proximal to proximal portion 114, and a distal portion 116 extending distally relative to proximal portion 114. Elongate shaft 112 may be configured to position distal portion 116 at a treatment location within a blood vessel (e.g., within a renal artery) or another suitable body cavity (e.g., within a ureter). The treatment device 110 may further include a therapy assembly 120 carried by or secured to the distal portion 116 of the elongate shaft 112. The therapy assembly 120 may include one or more neuromodulation elements 126 (shown schematically in FIG. 1 ) configured to deliver therapeutic energy or compounds to nerves located at least proximate to the wall of the body cavity. In some embodiments, the handle 111 may include an actuator 113 that switches the therapy assembly 120 between a delivery state and a deployed state via remote actuation of a guidewire (not shown) and the actuator 113.

[0014]

[0025] The console 102 may be configured to control, monitor, provide, or otherwise assist in the operation of the therapy device 110. For example, the console 102 may include an energy generator operably connected to the neuromodulation element 126 and configured to generate a selected form and magnitude of therapeutic neuromodulation energy (e.g., radiofrequency ("RF") energy, pulsed energy, microwave energy, light energy, direct thermal energy, or another suitable type of energy) for delivery via the neuromodulation element 126 to the treatment site to alter, damage, or destroy nerves.

[0015]

[0026] In some embodiments, the console 102 may be configured to store and / or deliver (via the connector 101 and / or elongate shaft 112) irrigation fluid (e.g., saline, distilled water, etc.) to the therapy assembly 120. As previously mentioned, for example, the console 102 includes an irrigation pump 104 for transferring irrigation fluid from the console 102 to the therapy assembly 120 of the therapy device 110. In other embodiments, the system 100 may include a neuromodulation console (not shown) and a separate irrigation console (not shown) that includes the irrigation pump 104 and / or a reservoir (not shown) for storing irrigation fluid. In such embodiments, the neuromodulation console may be communicatively coupled to the irrigation console. As described in more detail below, the system 100 may facilitate simultaneous and / or coordinated delivery of neuromodulation energy and irrigation fluid to the therapy assembly 120. To reduce the potential for tissue damage and / or associated adverse effects, the irrigation fluid may be applied to (i) the tissue at the treatment site. and / or (ii) may be used to cool components of the therapy assembly 120.

[0016]

[0027] The console 102 may be electrically coupled to the therapy device 110 via a connector 101 (e.g., a cable). One or more supply wires (not shown) may run along or through a lumen of the elongate shaft 112 to the neuromodulation element 126 to deliver neuromodulation energy to the neuromodulation element 126. Additionally, one or more fluid supply lumens (not shown) may run along or through a lumen of the elongate shaft 112 to the therapy assembly 120. The fluid supply lumens may deliver irrigation fluid to one or more irrigation outlets (not shown) in the therapy assembly 120.

[0017]

[0028] The console 102 may also be configured to deliver neuromodulation energy and / or irrigation fluid to the therapy assembly 120 according to an automatic control algorithm 150 and / or under the control of a clinician. The control algorithm 150 may execute on a processor (not shown) of the system 100. One or more sensors (e.g., pressure, temperature, impedance, flow, chemical, ultrasonic, electromagnetic, etc.) of the therapy assembly 120 and / or therapy device 110 may generate diagnostic information / measurements regarding the patient's tissue at the treatment site and / or regarding components of the therapy assembly 120. The diagnostic information may be used as feedback for the control algorithm 150, allowing the system 100 to adjust the control algorithm 150 (e.g., based on a comparison of the diagnostic information to ranges of predetermined parameter profiles). Specifically, the system 100 can adjust the characteristics (e.g., type, power level, duration, frequency, etc.) of the neuromodulation energy delivered to the neuromodulation element 126 and / or the characteristics (e.g., volume, temperature, type, rate, duration, etc.) of the irrigation fluid delivered to the therapy assembly 120. The diagnostic information can also provide feedback to the clinician, such as using indicators 105 (e.g., a display, a user interface, one or more LEDs, etc.) coupled with the console 102 and / or the system 100. For example, the console 102 can have a user interface that can receive user input and / or provide diagnostic information to the user. Feedback from the diagnostic information can enable the clinician to determine the effectiveness of the applied energy during and / or immediately thereafter (e.g., while the patient is still catheterized). Similarly, the clinician can determine to repeat, pause, and / or terminate a therapy (e.g., to avoid tissue damage) while the patient is still catheterized based on feedback from the diagnostic information. This feedback may therefore be useful in assisting the clinician in increasing the likelihood of success of a current or subsequent therapy and / or avoiding adverse effects of the therapy. Further details regarding a suitable control algorithm 150 are described below with reference to FIG.

[0018]

[0029] The system 100 may include a controller 106 comprising, for example, memory (not shown), a storage device (e.g., a disk drive), one or more output devices (e.g., a display), one or more input devices (e.g., a keyboard, a touchscreen, etc.), and / or processing circuitry (not shown). The controller 106 may be configured to execute, adjust, and / or modify the control algorithm 150. For example, the output device may be configured to communicate with the therapy device 110 (e.g., via the connector 101) to control power to the neuromodulation element 126 and / or to control the supply of irrigation fluid to the therapy assembly 120. In some embodiments, the output device may be further configured to obtain signals from the neuromodulation element 126 and / or any associated sensors. The display device may be configured to provide an indication of power levels or sensor data, such as an audio, visual, or other display, and / or the display device may be configured to communicate information to another device.

[0019]

[0030] In some embodiments, the controller 106 may be a The controller 106 may be part of the server 102. Additionally or alternatively, the controller 106 may be a personal computer, a server computer, a handheld or laptop device, a multiprocessor system, a microprocessor-based system, a programmable consumer electronics, a digital camera, a network PC, a minicomputer, a mainframe computer, a tablet, and / or any suitable computing environment. The memory and storage devices are computer-readable storage media that may have, or be encoded with, non-transitory computer-executable instructions (e.g., control algorithms 150, feedback algorithms, etc.). In addition, instructions, data structures, and message structures, such as signals on communications links, may be recorded or transmitted over data transmission media and may be encrypted. Various communications links may be used, such as the Internet, a local area network, a wide area network, a point-to-point dial-up connection, a cellular network, Bluetooth, RFID, and other suitable communications channels. The system 100 may be described in general terms of computer-executable instructions, such as program modules, executed by one or more computers or other devices. Generally, program modules include routines, programs, objects, components, data structures, etc. that perform particular tasks or implement particular abstract data types. Typically the functionality of the program modules may be combined or distributed as desired in various embodiments.

[0020]

[0031] The neuromodulation element 126 of the therapy assembly 120 may be configured to modulate one or more nerves (e.g., renal nerves) within the tissue of a wall of a blood vessel or lumen, or within tissue at least proximate to the wall of a blood vessel or lumen. As described in more detail below, the neuromodulation element 126 may include one or more energy delivery elements (e.g., the electrodes of FIGS. 2A-4) and / or one or more sensors (e.g., for monitoring the energy delivery elements and / or the tissue at the treatment site). For example, in some embodiments, the neuromodulation element 126 may include a single energy delivery element disposed at the distal portion 116 of the therapy device 110. In other embodiments, the neuromodulation element 126 may include two or more energy delivery elements. The energy delivery elements may be separate band electrodes spaced apart from one another along a portion of the length of the shaft 112. The electrodes may be adhesively bonded to a support structure at various locations along the length of the shaft 112. In some embodiments, the energy delivery elements may be formed from a suitable electrically conductive material (e.g., a metal such as gold, platinum, or an alloy of platinum and iridium). The number, arrangement, shape (e.g., helical and / or coil electrodes), and / or composition of the energy delivery elements may vary. Individual energy delivery elements of the neuromodulation element 126 may be electrically connected to the handle assembly 111 and / or console 102 by conductors or bifilar wires extending through the lumen of the shaft 112.

[0021]

[0032] In embodiments comprising multiple energy delivery elements, the energy delivery elements may deliver power simultaneously, selectively, or sequentially independently (e.g., may be used in a monopolar fashion), and / or may deliver power between any desired combination of elements (e.g., may be used in a bipolar fashion). Additionally, a clinician may optionally be able to select which energy delivery elements are used for power delivery to create highly customized lesions, as needed, within blood vessels (e.g., renal arteries) or other body cavities (e.g., ureters). In some embodiments, the system 100 may be configured to enable delivery of a monopolar electric field by the neuromodulation element 126. In such embodiments, an indifferent or dispersive electrode 109 may be electrically connected to the console 102 and attached to the patient's exterior.

[0022]

[0033] 2A-2C are partial schematic side views of a neuromodulation catheter 210 (e.g., therapy device 110 shown in FIG. 1) configured in accordance with an embodiment of the present technology. 2A-2C , neuromodulation catheter 210 is shown in different configurations as it is positioned at a treatment site within blood vessel V (e.g., a renal artery) of a human patient. Neuromodulation catheter 210 includes guidewire 215 (only visible in FIG. 2A ) and irrigation therapy assembly 220 that can be advanced over guidewire 215 to the treatment site within blood vessel V. Irrigation therapy assembly 220 is configured to perform neuromodulation therapy at the treatment site, e.g., to ablate nerves adjacent the wall of blood vessel V. As discussed in more detail below, irrigation therapy assembly 220 can be configured to monitor the tissue of blood vessel V and components of irrigation therapy assembly 220 (e.g., neuromodulation element 226) at the treatment site. For example, one or more sensors (not shown) of irrigation therapy assembly 220 are configured to collect diagnostic information and measurements related to the temperature of the tissue and / or neuromodulation element 226 during neuromodulation therapy of the tissue. The diagnostic information can be used as feedback to adjust the neuromodulation energy delivery characteristics and / or the irrigation fluid delivery characteristics to the irrigation therapy assembly 220.

[0023]

[0034] Guidewire 215 comprises an elongate member 218 having a distal portion 218a configured to be positioned at a treatment site within blood vessel V and a proximal portion (not visible) that extends outside the patient's body to a handle (e.g., handle 111 shown in FIG. 1 ) or other mechanism that allows an operator to manipulate distal portion 218a to a desired location / orientation (e.g., using actuator 113 shown in FIG. 1 ). Elongate member 218 may be sized to be slidably disposed within a lumen of neuromodulation catheter 210. In other embodiments, elongate member 218 comprises other suitable components (e.g., sensors) and / or structures. Furthermore, elongate member 218 may have a uniform stiffness along its length, or may have varying stiffness along its length.

[0024]

[0035] As best shown in Figure 2B, the elongate shaft 112 of the neuromodulation catheter 210 is configured to be slidably delivered over a guidewire 215. The elongate shaft 112 comprises a distal portion 116 configured to be positioned intravascularly at a treatment site within the blood vessel V, and a proximal portion 114 that extends outside the patient's body to a handle (e.g., handle 111 shown in Figure 1) or other mechanism that allows an operator to manipulate the distal portion 116 of the elongate shaft 112 (e.g., using actuator 113 shown in Figure 1). 2B and 2C, for example, the irrigated therapy assembly 220 of the neuromodulation catheter 210 is transformable between a first state or configuration (FIG. 2B) in which the distal portion 116 of the elongate shaft 112 is in an at least generally straight, low-profile delivery configuration, and a second (e.g., deployed, expanded, etc.) state or configuration (FIG. 2C) in which the distal portion 116 is deformed into a helical / hewn shape or otherwise expanded. In some embodiments, the therapy assembly 220 can have a shape memory corresponding to the second state, and the guidewire 215 (FIG. 2A) can retain the therapy assembly 220 in the first state until the guidewire 215 is at least partially removed (e.g., withdrawn). The dimensions (e.g., outer diameter and length) of the distal portion 116 of the elongate shaft 112 (e.g., the portion having a helical / helical shape in the second state shown in FIG. 2C ) can be selected to accommodate the vessel or other body cavity within which the distal portion 116 is designed to be delivered. For example, when in the second state, the axial length of the distal portion 116 of the elongate shaft 112 can be selected to be no longer than the patient's renal artery (e.g., typically less than 7 cm) and can have a diameter that accommodates the inner diameter of a typical renal artery (e.g., approximately 2-10 mm). In other embodiments, the distal portion 116 of the elongate shaft 112 can have other dimensions depending on the body cavity within which the distal portion 116 is configured to be deployed. In other embodiments, the distal portion 116 of the elongate shaft 112 can have other suitable shapes (e.g., semicircular, curved, straight, etc.), sizes, and / or configurations.Other suitable devices and techniques are described, for example, in U.S. Pat. Nos. 8,777,942, 9,084,610, 9,060,755, 8,998,894, PCT Application No. PCT / US2011 / 057754 filed October 25, 2011, and U.S. Pat. No. 88,773, all of which are incorporated herein by reference in their entireties. Non-limiting examples of devices and systems include the Symplicity Spyral™ multi-electrode RF ablation catheter and the Arctic Front Advance™ cardiac cryoablation system.

[0025]

[0036] 2B and 2C together, the irrigation therapy assembly 220 includes four neuromodulation elements 226 spaced along the distal portion 116 of the elongate shaft 112. However, in other embodiments, the irrigation therapy assembly 220 may include one, two, three, or more than four neuromodulation elements 226 and / or may include multiple support members configured to carry one or more neuromodulation elements 226. In the illustrated embodiment, each neuromodulation element 226 includes an electrode 224 (individually identified as first through fourth electrodes 224a-d, respectively). In other embodiments, the neuromodulation element 226 may include a greater and / or fewer number of electrodes 224. In some embodiments, the neuromodulation element 226 may include one or more sensors configured to monitor the tissue at the treatment site and / or components of the therapy assembly 220 (e.g., electrodes 224a-d).

[0026]

[0037] The electrodes 224a-224d are configured to deliver neuromodulation energy (e.g., RF energy) to tissue in, or at least adjacent to, the vessel wall V at the treatment site to modulate one or more nerves (e.g., renal nerves) within the tissue when the irrigation therapy assembly 220 is in the second state shown in Figure 2C. In this state, the distal portion 116 of the elongate shaft 112 can be designed to apply a desired outward radial force to the vessel V, bringing the one or more electrodes 224a-224d into contact with the vessel wall. In these and other embodiments, the irrigation therapy assembly 220 may include electrodes, transducers, or other elements that deliver other suitable neuromodulation modalities, such as pulsed electrical energy, microwave energy, light energy, ultrasound energy (e.g., intravascularly delivered ultrasound and / or high-intensity focused ultrasound (HIFU)), direct thermal energy, radiation (e.g., infrared, visible light, and / or gamma radiation), and / or other suitable types of energy that alter, damage, or destroy nerves.

[0027]

[0038] As described above, the therapy assembly 220 and / or one or more neuromodulation elements 226 may include one or more sensors (not shown) configured to monitor tissue characteristics, such as the temperature, of the treatment site and / or components of the therapy assembly 220 (e.g., electrodes 224a-224d and / or neuromodulation elements 226). In some embodiments, the one or more sensors may be incorporated directly within the neuromodulation elements 226 of the irrigated therapy assembly (e.g., within and / or proximal to the electrodes 224a-224d). In these and other embodiments, the one or more sensors may be positioned at various locations along the elongate shaft 112 of the neuromodulation catheter 210 and / or remote from the neuromodulation elements 226 of the irrigated therapy assembly 220. The one or more sensors may be configured to measure and / or generate diagnostic information regarding the tissue of the blood vessel V and / or components of the neuromodulation element 226 of the irrigation therapy assembly 220. For example, the one or more sensors may continuously and / or periodically measure parameters of temperature, pressure, time, impedance, power, flow rate, volumetric flow, blood pressure, heart rate, return energy, or other parameters of the neuromodulation catheter 210 and / or the tissue at the patient's treatment site. Through these measurements, the one or more sensors generate diagnostic information that may be reported back to the one or more controllers 106 of the system 100, as described in more detail below.

[0028]

[0039] As best shown in FIGS. 2B and 2C, the irrigation therapy assembly 220 may include one or more irrigation outlets 222 at the distal portion 216 of the elongate shaft 112 . The irrigation outlet 222 may be connected to one or more fluid supply lumens (not shown) that extend along the elongate shaft 112 (or through a lumen in the elongate shaft 112) to an irrigation pump (e.g., the irrigation pump shown in FIG. 1) and / or a reservoir (not shown). As described above, irrigation fluid (e.g., saline, distilled water, etc.) may be delivered to the therapy assembly 220 through the fluid supply lumens and discharged to the treatment site through the irrigation outlet 222. In this manner, the neuromodulation catheter 210 can cool components of the irrigation therapy assembly 220 (e.g., the neuromodulation element 226) and / or tissue at the treatment site (e.g., during neuromodulation therapy).

[0029]

[0040] The irrigation outlet 222 may be configured at various locations around the elongate shaft 112 (best shown in FIG. 2B) such that the irrigation outlet 222 is positioned in a desired orientation when the therapy assembly 220 is in the second condition (shown in FIG. 2C). For example, the irrigation outlet 222 may be configured to direct irrigation fluid distally along or generally along the longitudinal axis L of the blood vessel V (as shown in FIGS. 2C and 2D). In other embodiments, the irrigation outlet 222 may be oriented in one or more different directions when the therapy assembly 220 is in the second condition (e.g., opposite the direction shown in FIGS. 2C and 2D, toward the vessel wall, and / or toward the center of the blood vessel V). In operation, the system 100 may release irrigation fluid through the irrigation outlet 222 proximal to the wall of the blood vessel V and / or proximal to the electrodes 224a-224d. Thus, irrigation fluid released from irrigation outlet 222 may provide a cooling effect to (i) tissue in the vessel wall and / or (ii) components of the therapy assembly 220 near irrigation outlet 222. Additionally, irrigation fluid released from irrigation outlet 222 may be carried along the vessel wall by blood flowing through vessel V. Thus, irrigation fluid released from irrigation outlet 222 may also provide a cooling effect to (i) tissue in the vessel wall, (ii) components of the therapy assembly 220, and / or (iii) components of the neuromodulation catheter 210 disposed downstream of irrigation outlet 222.

[0030]

[0041] Although the irrigation outlets 222 shown in Figures 2A-2D are positioned proximal to the electrodes 224a-224d of the therapy assembly 220, one or more of the irrigation outlets 222 may be positioned at other locations and / or in different arrangements in other embodiments of the present technology. For example, Figures 3 and 4 are partial, schematic side views of neuromodulation catheters 310 and 410, respectively, configured in accordance with other embodiments of the present technology. As shown in Figure 3, the neuromodulation catheter 310 includes an irrigation therapy assembly 320 having an irrigation outlet 322 (e.g., the irrigation outlet 222 shown in Figures 2A-2D) at a location along the elongate shaft 112 that is closer to the proximal portion 114 of the elongate shaft 112 than the location of the irrigation outlet 222 shown in Figures 2A-2D. The irrigation outlet 322 is positioned circumferentially around the elongate shaft 112 and configured to expel irrigation fluid radially outward from the elongate shaft 112. Additionally or alternatively, the irrigation outlet 322 may be shaped and / or the fluid supply lumen connected to the irrigation outlet 322 may be oriented within the elongate shaft 112 so that irrigation fluid is discharged from the irrigation outlet 322 in a desired direction away from the irrigation outlet 322.

[0031]

[0042] In other embodiments, as shown in FIG. 4 , a neuromodulation catheter 410 can include an irrigation therapy assembly 420 comprising an irrigation ring / donut element 430 having one or more irrigation outlets 422. The irrigation ring element 430 is configured to surround the elongate shaft 112 and extend radially outward from the elongate shaft 112 such that the irrigation ring 430 is adjacent to or engages the interior wall of the blood vessel. As shown, one or more fluid supply lumens 434 can extend into the irrigation ring element 430 (e.g., from the elongate shaft 112). The irrigation outlets 422 and / or fluid supply lumens 434 can be (i) oriented to direct irrigation fluid along the longitudinal axis L of the blood vessel V, (ii) oriented toward the vessel wall and / or another direction, or (iii) configured to direct irrigation toward the vessel wall. and / or (iv) may be shaped and / or oriented within the irrigation ring element 430 so that irrigation fluid is discharged from the irrigation ring element 430 in a desired direction away from the irrigation outlet 422.

[0032]

[0043] As discussed above, neuromodulation catheters 210, 310, and 410 configured in accordance with embodiments of the present technology may be communicatively coupled to one or more controllers 106 of console 102 (FIG. 1) via a wired or wireless communication link. In some embodiments, one or more controllers 106 may be separate from the console, such as in the embodiment shown in FIG. 1 in which irrigation pump 104 is separate from console 102. Controller 106 may be configured to initiate, terminate, and / or adjust operation of one or more components (e.g., electrodes 224a-224d) of therapy assemblies 220, 320, and 420 directly and / or via console 102. For example, controller 106 may be configured to continuously or intermittently monitor the tissue of the vessel wall and / or components of therapy assemblies 220, 320, and 420 using diagnostic information from one or more sensors (not shown) of therapy assemblies 220, 320, and 420. More specifically, the controller 106 can use the diagnostic information to adjust (e.g., according to a control algorithm) (i) the characteristics of the neuromodulation energy and / or (ii) the characteristics of the irrigation fluid delivered to the therapy assemblies 220, 320, and 420. Thus, the controller 106 can be configured to control, monitor, provide, adjust, and / or otherwise assist in the operation of the neuromodulation catheters 210, 310, and 410 based at least in part on the diagnostic information generated by one or more sensors of the therapy assemblies 220, 320, and 420. B. Control of Applied Energy and Irrigation Characteristics

[0044] As discussed above, a neuromodulation system (e.g., system 100 shown in FIG. 1 ) configured in accordance with embodiments of the present technology may be configured to deliver regulated neuromodulation energy (e.g., RF energy) and irrigation fluid to a treatment assembly of a treatment device according to an automated control algorithm 150 and / or under the control of a clinician. FIG. 5 illustrates one embodiment of an automated control algorithm 150 that may be implemented by a controller 106 (e.g., the controller 106 shown in FIGS. 1-4 ). As shown in FIG. 5 , when a clinician initiates treatment, the control algorithm 150 may include instructions to cause a console (e.g., the console 102 shown in FIG. 1 ) to progressively adjust the power of the energy applied to the treatment site to a first power level P1 (e.g., 5 watts) over a first time period t1 (e.g., 15 seconds). The power may increase approximately linearly during the first time period. As a result, the console may increase the power output at an approximately constant rate P1 / t1. Alternatively, the power may increase non-linearly (eg, exponentially or parabolically) if the rate of increase is variable.

[0033]

[0045] Additionally or alternatively, the control algorithm 150 may include instructions to adjust the delivery of irrigation fluid to the treatment site before, during, and / or after neuromodulation energy is applied, adjusted, and / or modified to the treatment site. For example, the control algorithm 150 may include instructions to direct the system (e.g., the console and / or irrigation pump) to deliver irrigation fluid having characteristics corresponding to an increase in power to a first power level P1. In some embodiments, the instructions may direct the system to deliver a particular type (e.g., saline, distilled water, etc.) and / or a particular volume of irrigation fluid to the treatment site. In these and other embodiments, the instructions may direct the system to (i) deliver irrigation fluid at a specified temperature (e.g., room temperature, body temperature, or another temperature above or below room temperature), (ii) deliver irrigation fluid at a specified flow rate, and / or (ii) deliver irrigation fluid for a specified duration. In these and still other embodiments, the instructions may direct the system to adjust (e.g., increase, decrease, change, and / or maintain constant) any of these irrigation fluid characteristics as the power is adjusted (e.g., increased, decreased, and / or maintained constant). In still other embodiments, the control algorithm 150 may have instructions to stop delivery of irrigation fluid until a specified power level is reached, until a specified electrode temperature is reached, and / or for a specified time.

[0034]

[0046] Once P1 and t1 are reached, control algorithm 150 may hold P1 for a predetermined time t2-t1 (e.g., 3 seconds) until a new time t2. Control algorithm 150 may similarly hold the irrigation fluid characteristics constant until t2 and / or adjust the irrigation fluid characteristics (e.g., based on monitored parameters of the tissue at the treatment site and / or components of the treatment device, as described in more detail below). At t2, the power is increased by a predetermined increment (e.g., 1 watt) over a predetermined time t3-t2 (e.g., 1 second) to P2. Control algorithm 150 may have instructions to instruct the system to adjust the irrigation fluid characteristics in response to this power increase. The power ramp in predetermined increments of approximately 1 watt over a predetermined time period results in a maximum power P MAX , or until some other condition is met (e.g., maximum irrigation flow rate / volume and / or minimum irrigation fluid temperature is reached). Optionally, the power may be maintained at maximum power P for a desired time or for up to a desired total treatment time (e.g., up to about 120 seconds). MAX In these and other embodiments, the controller can repeatedly modify the characteristics of the irrigation fluid based on, for example, (i) monitored parameters of the tissue at the treatment site and / or components of the treatment device, and / or (ii) the progress of the neuromodulation treatment.

[0035]

[0047] Additionally, before, during, and / or after a neuromodulation procedure, the controller can monitor (e.g., using one or more sensors in the therapy assembly) one or more parameters corresponding to the tissue at the treatment site, the patient, the irrigation fluid, and / or components of the therapy device (e.g., the neuromodulation element). For example, the controller can continuously or periodically monitor temperature, time, impedance, power, flow rate, volumetric flow rate, blood pressure, heart rate, return energy, and / or other parameters. The controller can use the diagnostic information / parameter measurements as feedback regarding the progress of the neuromodulation procedure, the status of the therapy device components (e.g., temperature), and / or the condition of the tissue at the treatment site. In some embodiments, the controller can (i) check the monitored parameters against a predetermined parameter profile to determine whether the parameters, individually or in combination, fall within ranges established by the predetermined parameter profile, and (ii) adjust and / or regulate the characteristics of the neuromodulation energy and / or irrigation fluid delivered to the treatment site accordingly. For example, the controller can check whether the monitored parameter falls within a range established by a predetermined parameter profile that takes into account the characteristics of a particular neuromodulation energy and / or the characteristics of the irrigation fluid. If the monitored parameter falls within the range, therapy can continue according to the control algorithm 150. However, if the monitored parameter is outside the range, the controller can adjust the control algorithm 150 accordingly.

[0036]

[0048] For example, if temperature measurements related to the tissue at the treatment site and / or components of the treatment device (e.g., neuromodulatory elements) are too high for the currently applied power level, the controller can adjust and / or modify the control algorithm 150 (e.g., until the parameters are within the parameter profile). In some embodiments, the controller can reduce, pause, and / or terminate the applied power, lengthen or shorten t1, t2, t3, etc. of the control algorithm 150, and / or modify the duty cycle, frequency, or other parameters of the control algorithm 150. Additionally or alternatively, the controller can change the characteristics of the irrigation fluid delivered to the treatment site. For example, the controller may increase and / or decrease the flow rate, volume, and / or temperature of the irrigation fluid delivered to the treatment site. In these and other embodiments, the controller can adjust and / or modify the type of irrigation fluid released at the treatment site and / or the temperature at which the irrigation fluid is delivered. The duration of time delivered to the treatment site can be varied. Those skilled in the art will appreciate that the controller can adjust (e.g., increase, decrease, modify, adjust, and / or otherwise change) or hold constant the control algorithm 150 in response to other events represented by the control algorithm 150. For example, the controller can appropriately adjust the control algorithm 150 in response to (i) one or more parameters outside (e.g., above and / or below) a predetermined parameter profile and / or (ii) a sudden, unexpected, and / or undesirable change in a measured parameter / characteristic of the tissue and / or a component of the treatment device (e.g., even if the parameter / characteristic falls within the parameter profile). The system can also be equipped with various audible and visual alarms that allow the controller to alert the operator to certain conditions.

[0037]

[0049] In some embodiments, the system may have one or more safety thresholds that prevent the controller from adjusting the energy and / or irrigation fluid properties above and / or below a threshold. For example, when neuromodulation energy is applied at or above a specified power level and / or for longer than a specified duration, the system may prevent the controller from (i) reducing the flow rate below a specified threshold and / or (ii) increasing the irrigation fluid temperature above a specified threshold. In other embodiments, to prevent the system (e.g., one or more sensors in a neuromodulation element of a therapy device) from reporting inaccurate (e.g., temperature) measurements related to components of the therapy device and / or tissue at the therapy site, the system may prevent the controller from (i) increasing the irrigation fluid flow rate above a specified threshold and / or (ii) decreasing the irrigation fluid temperature below a specified threshold. In yet other embodiments, the system can prevent the controller from increasing the power level of the neuromodulation energy beyond a specified threshold (e.g., when a maximum flow rate and / or maximum volume of irrigation fluid delivered to the treatment site is reached and / or a minimum temperature of the irrigation fluid is reached).

[0038]

[0050] In this manner, the controller can deliver regulated neuromodulation energy and irrigation fluid to the treatment site. As a result, the controller can maintain the temperature of the neuromodulation element constant and / or within a desired range through the controlled and / or continuous use of irrigation fluid with desired properties. This allows the neuromodulation system to achieve greater lesion depths by increasing the power of the neuromodulation energy applied to the blood vessel without causing blood coagulation or scorching of vascular tissue associated with increased electrode temperatures during treatment. Thus, the maximum power that can be safely delivered to the patient during treatment is increased. Specifically, neuromodulation systems configured in accordance with the present technology allow power to be safely increased until the maximum power level of the energy generator is reached, until the maximum irrigation flow rate / volume is reached, until the minimum irrigation fluid temperature is reached, and / or until the system otherwise prevents the controller from further increasing power (e.g., according to a preset safety threshold). In some embodiments, the maximum irrigation flow rate and / or volume can be determined by (i) the capabilities of the irrigation pump, (ii) the patient's hemodilution limits (ensuring an adequate blood supply to end organs), (iii) a safety factor determined from preclinical models, general human anatomical knowledge, the specific patient's anatomy, and / or ablation location, and / or (v) achieving a specific lesion depth. Additionally, because irrigation fluid is delivered in a controlled manner throughout the neuromodulation procedure (e.g., only as needed, with desired characteristics, and / or typically at a lower flow rate than conventional irrigation systems), diagnostic information reported to the controller regarding the progress of the neuromodulation procedure, the condition of the tissue at the treatment site, and / or the condition of the therapy device components remains meaningful and accurate. As a result, the neuromodulation system of the present technology can better avoid the tissue damage and adverse effects of neuromodulation therapy typically observed following the use of conventional neuromodulation systems.

[0039]

[0051] FIG. 6 is a diagram illustrating a method of treating a patient configured in accordance with an embodiment of the present technology. 6 is a flow diagram illustrating a routine 670 for performing a neuromodulation system. The routine 670 may be executed, for example, by various components of the neuromodulation system (e.g., the console, the controller, the control algorithm, the irrigation pump, and / or the therapy device) and / or by a clinician operating the neuromodulation system. The routine 670 may begin at block 671, which is the step of placing a therapy assembly of a therapy device within a blood vessel (e.g., within a renal artery) or another suitable body cavity (e.g., within a ureter) within a patient's body. The routine 670 may further include the step of deploying the therapy assembly at a treatment site within the patient's body (e.g., by withdrawing a guidewire).

[0040]

[0052] At block 672, the routine 670 may include delivering neuromodulation energy to tissue at the treatment site using a neuromodulation element of the therapy assembly (e.g., according to a control algorithm of the neuromodulation system). At block 673, the routine 670 may additionally or alternatively include delivering irrigation fluid having desired characteristics through an irrigation outlet of the therapy assembly. The delivery of the irrigation fluid may be controlled, for example, according to a control algorithm. For example, the routine 670 may (i) deliver neuromodulation energy at a first power level after and / or for a first time period, and / or (ii) deliver a first type of irrigation fluid having desired characteristics (e.g., a first volume, temperature, and / or flow rate) corresponding to a power ramp waveform. In some embodiments, the routine 670 may deliver irrigation fluid with specified characteristics to maintain the temperature of the neuromodulation element of the therapy assembly within a desired temperature range. In these and other embodiments, the routine 670 may stop delivery of irrigation fluid to the treatment site until the neuromodulation energy reaches a specified power level and / or until the neuromodulation element and / or tissue at the treatment site reaches a specified temperature.

[0041]

[0053] In some embodiments, the routine 670 may continue to increase the power of the neuromodulation energy and / or modify the characteristics of the irrigation fluid delivered to the treatment site according to the control algorithm. For example, the routine 670 may increase the power of the neuromodulation energy (e.g., after a second time period) to a second power level and apply the neuromodulation energy to tissue at the treatment site at the second power level (block 672). Further, the routine 670 may adjust and / or modify the characteristics of the irrigation fluid delivered to the treatment site in response to this increase in power. For example, the routine 670 may increase the volume and / or flow rate of the irrigation fluid delivered to the treatment site as the power of the neuromodulation energy increases (block 673). In these and other embodiments, the routine 670 may reduce the temperature at which the irrigation fluid is delivered to the treatment site and / or change the type of irrigation fluid delivered to the treatment site (block 673). In other embodiments, the routine 670 may (i) hold the characteristics of the irrigation fluid constant, (ii) stop delivery of irrigation fluid to the treatment site, and / or (iii) wait until a second power level is reached and / or the neuromodulation element reaches a specified temperature before adjusting and / or modifying the characteristics of the irrigation fluid delivered to the treatment site (block 673).

[0042]

[0054] In some embodiments, the routine 670 may continue to deliver neuromodulation energy and / or irrigation fluid according to the control algorithm until a maximum power value and / or other safety threshold of the neuromodulation system is reached (blocks 672 and 673). At this point, the routine 670 may stop increasing the power if a maximum irrigation fluid volume and / or flow rate is reached. Additionally or alternatively, the routine 670 may stop increasing the power if a minimum irrigation fluid temperature is reached and / or a maximum neuromodulation element temperature is reached.

[0043]

[0055] At any time before, during, and / or after the positioning and / or deployment of the therapy assembly, the routine 670 may measure (e.g., continuously and / or periodically) one or more parameters related to the patient and / or components of the neuromodulation system (e.g., neuromodulation elements and / or electrodes). simultaneously) can be monitored (block 674). For example, the routine 670 can use one or more sensors located on or near the neuromodulation element of the treatment device to measure parameters of temperature, impedance, duration, power, flow rate, volumetric flow, blood pressure, heart rate, return energy, and / or other parameters of the tissue at the treatment site, the patient, the irrigation fluid, and / or the neuromodulation element of the treatment device. The routine 670 can use this diagnostic information as feedback regarding the progress of the neuromodulation procedure (e.g., the size and / or depth of the lesion created during treatment), the condition of the tissue at the treatment site, and / or the status of the components of the neuromodulation system.

[0044]

[0056] In some embodiments, the routine 670 can determine whether to adjust and / or modify one or more characteristics of the neuromodulation energy applied to the treatment site and / or the irrigation fluid delivered to the treatment site, respectively, based at least in part on the diagnostic information. For example, the routine 670 can compare the diagnostic information to the ranges of a predetermined parameter profile to determine whether one or more parameters are outside the range of the predetermined parameter profile. If a particular parameter and / or a predetermined number of parameters fall within the range of the parameter profile, the routine 670 can continue to deliver the neuromodulation energy and / or irrigation fluid in accordance with the control algorithm (blocks 672 and / or 673).

[0045]

[0057] On the other hand, if one or more of the parameters are outside (e.g., above and / or below) the range of the predetermined parameter profile, the routine 670 can determine to adjust and / or modify one or more characteristics of the neuromodulation energy (block 675) and / or the irrigation fluid delivered to the treatment site (block 676). For example, if the routine 670 determines that the temperature of the tissue and / or neuromodulation element at the treatment site exceeds the range of the predetermined temperature profile (e.g., taking into account the current energy characteristics, the current stage of the neuromodulation procedure, the current irrigation fluid characteristics, and / or safety thresholds), the routine 670 can change and / or modify the control algorithm to change and / or modify the power level of the neuromodulation energy (block 675). In some embodiments, the routine 670 can decrease the power at which the neuromodulation energy is applied. In other embodiments, the routine 670 can hold the power level constant and / or increase the power level at a slower rate. Additionally or alternatively, the routine 670 can change and / or modify the control algorithm to change and / or modify the characteristics of the irrigation fluid (e.g., block 676). For example, the routine 670 can (i) increase the volume and / or flow rate of irrigation fluid delivered to the treatment site, (ii) decrease the temperature at which irrigation fluid is delivered to the treatment site, and / or (iii) change the type of irrigation fluid delivered to the treatment site. In some embodiments, the routine 670 can (i) increase the power of the neuromodulation energy and / or the temperature of the irrigation fluid delivered to the treatment site, and / or (ii) decrease the volume and / or flow rate of irrigation fluid only after one or more parameters return within the range of a predetermined parameter profile.

[0046]

[0058] Although the steps of routine 670 are discussed and shown in a particular order, the method illustrated by routine 670 is not so limited. In other embodiments, the method may be performed in a different order. For example, one or more sensors in the neuromodulation system may monitor parameters of the neuromodulation system and / or the patient before energy and / or irrigation fluid is delivered to the treatment site. In other embodiments, irrigation fluid may be supplied to the treatment site before neuromodulation energy is applied and / or adjusted to the treatment site. In these and other embodiments, the neuromodulation system may require that an increase in power applied to the treatment site be preceded by, and / or simultaneously with, (i) increasing the volume and / or flow rate of irrigation fluid supplied to the treatment site and / or (ii) decreasing the temperature of the irrigation fluid. Furthermore, blocks 671-676 are shown for completeness. Those skilled in the art will appreciate that the illustrated method may be modified and still fall within the scope of these and other embodiments of the present technology. For example, in some embodiments, one or more steps of the method illustrated in Figure 6 may be omitted and / or repeated. C. Selected Examples of Neuromodulation Devices and Related Systems

[0059] FIG. 7 (with additional reference to FIG. 1 ) illustrates renal nerve modulation according to an embodiment of system 100 ( FIG. 1 ). The neuromodulation device 110 provides access to the renal plexus RP through an intravascular pathway P, such as a percutaneous access site in the femoral artery (shown), brachial artery, radial artery, or axillary artery, to a target treatment site within the respective renal artery RA. By manipulating the proximal portion 114 of the elongate shaft 112 from outside the intravascular pathway P, a clinician can navigate the elongate shaft 112 through the sometimes tortuous intravascular pathway P and remotely manipulate the distal portion 116 ( FIG. 1 ) of the elongate shaft 112. In the embodiment shown in FIG. 7 , the neuromodulation assembly 120 is delivered intravascularly to the treatment site using a guidewire 715 in an OTW technique. At the treatment site, the guidewire 715 may be at least partially withdrawn or removed, and the neuromodulation assembly 120 may be transformed or otherwise moved to a deployed configuration to record neural activity and / or deliver energy to the treatment site. In other embodiments, the neuromodulation assembly 120 may be delivered to the treatment site within a guide sheath (not shown), with or without the use of a guidewire 715. The guide sheath may be at least partially withdrawn or retracted when the neuromodulation assembly 120 is at the treatment site, and the neuromodulation assembly 120 may be transformed to the deployed configuration. In other embodiments, the elongate shaft 112 may itself be steerable, such that the neuromodulation assembly 120 may be delivered to the treatment site without the aid of a guidewire 715 and / or a guide sheath.

[0047]

[0060] Image guidance, e.g., computed tomography (CT), fluoroscopy, intravascular ultrasound (IVUS), ultrasound), optical coherence tomography (OCT), intracardiac echocardiography (ICE) Echocardiography, or another suitable guidance modality, or a combination thereof, may be used to assist the clinician in positioning and manipulating the neuromodulation assembly 120. For example, a fluoroscopy system (e.g., with a flat panel detector, X-ray, or C-arm) may be rotated to precisely visualize and identify the target treatment site. In other embodiments, the treatment site may be determined using IVUS, OCT, and / or other suitable image mapping modality that may correlate the target treatment site with identifiable anatomical structures (e.g., spinal features) and / or a radiopaque ruler (e.g., placed below or above the patient) prior to delivery of the neuromodulation assembly 120. Furthermore, in some embodiments, image guidance components (e.g., IVUS, OCT) may be integrated with and / or run in parallel with the neuromodulation device 110 to enable image guidance during positioning of the neuromodulation assembly 120. For example, an image-guided component (e.g., IVUS or OCT) may be coupled to the neuromodulation assembly 120 to provide a three-dimensional image of the vasculature proximate the treatment site and facilitate positioning or deployment of the multi-electrode assembly within the target renal vascular structure.

[0048]

[0061] Energy from the neuromodulation element 126 can then be applied to the target tissue to induce one or more desired neuromodulation effects in a localized region of the renal artery RA and adjacent regions of the renal plexus RP that lie closely within, adjacent to, or proximal to the adventitia of the renal artery RA. The deliberate application of energy can achieve neuromodulation along all or at least a portion of the renal plexus RP. The neuromodulation effect is generally, at least in part, a function of power, time, contact between the energy delivery element and the vessel wall, and blood flow through the vessel. The neuromodulation effect can include denervation, thermal ablation, and / or non-ablative thermal alteration or damage (e.g., by sustained heating and / or resistive heating). The desired heating effect can be: This may include raising the temperature of the targeted nerve fiber above a desired threshold to achieve a non-ablative thermal change, or higher to achieve an ablative thermal change. For example, the target temperature may be above body temperature (e.g., about 37°C) but below about 45°C for a non-ablative thermal change, or the target temperature may be above about 45°C for an ablative thermal change. The desired non-thermal neuromodulation effect may include altering the electrical signal transmitted to the nerve.

[0049]

[0062] The hypothermic effect may also enable neuromodulation. For example, cryotherapy applicators can be used to cool tissue at the treatment site and provide sublethal hypothermia with therapeutically effective direct cellular injury (e.g., necrosis), vascular injury (e.g., damaging supplying blood vessels, thereby depriving cells of nutrients), and subsequent apoptosis. Cryotherapeutic exposure to cooling can cause acute cell death (e.g., immediately after exposure) and / or delayed cell death (e.g., during tissue thawing and subsequent hyperperfusion). Embodiments of the present technology may include cooling structures on or near the inner surface of the renal artery wall so that nearby (e.g., adjacent) tissue is effectively cooled to a depth where sympathetic renal nerves reside. For example, the cooling structure is cooled to a degree that provides therapeutically effective cryogenic renal neuromodulation. Sufficient cooling of at least a portion of the sympathetic renal nerve is expected to slow or potentially block the conduction of nerve signals, resulting in a long-term or permanent reduction in renal sympathetic nerve activity. D. Renal neuroregulation

[0063] Renal neuromodulation is the partial or complete incapacitation or other effective destruction of renal nerves (e.g., nerves terminating within the kidney or structures closely associated with the kidney). Specifically, renal neuromodulation can involve inhibiting, reducing, and / or blocking nerve transmission along renal nerve fibers (e.g., efferent and / or afferent nerve fibers). Such incapacitation can be long-term (e.g., permanent or for months, years, or decades) or short-term (e.g., for minutes, hours, days, or weeks). Renal neuromodulation is expected to contribute to a systemic reduction in sympathetic tone or drive and / or to benefit at least some specific organs and / or other body structures innervated by sympathetic nerves. Thus, renal neuromodulation is expected to be useful in treating clinical conditions associated with systemic sympathetic overactivity or hyperactivity, particularly conditions associated with central sympathetic overstimulation. For example, renal neuromodulation is expected to effectively treat hypertension, heart failure, acute myocardial infarction, metabolic syndrome, insulin resistance, diabetes, left ventricular hypertrophy, chronic and end-stage renal disease, inappropriate fluid retention in heart failure, cardiorenal syndrome, polycystic kidney disease, polycystic ovary syndrome, osteoporosis, erectile dysfunction, and sudden death, among other conditions.

[0050]

[0064] Renal neuromodulation can be induced electrically, thermally, chemically, or by another suitable technique or combination of techniques at one or more suitable treatment sites during a treatment procedure. The treatment site can be within or otherwise proximate to the lumen of the kidney (e.g., the renal artery, ureter, renal pelvis, major renal calyx, minor renal calyx, or another suitable structure). The tissue being treated can include tissue at least proximate to the wall of the renal lumen. For example, with respect to the renal artery, the treatment procedure can include modulating nerves within the renal plexus, which lie closely adjacent to or within the adventitia of the renal artery.

[0051]

[0065] Renal neuromodulation may include cryotherapy, alone or in combination with another therapy modality. Cryotherapy may involve cooling tissue at the treatment site in a manner that modulates nerve function. For example, sufficient cooling of at least a portion of the sympathetic renal nerves may slow or even block the conduction of nerve signals, resulting in a long-term or permanent reduction in renal sympathetic nerve activity. This effect may occur as a result of damage to the cryotreated tissue, which may include, for example, direct cellular injury (e.g., necrosis), vascular or luminal injury (e.g., damage to supplying blood vessels, causing cells to starve for nutrient deprivation), and / or sublethal hypothermia with subsequent apoptosis. The effects of cryotherapy cooling may include: Exposure may cause acute cell death (e.g., immediately after exposure) and / or delayed cell death (e.g., during thawing of the tissue and subsequent hyperperfusion). Neuromodulation using cryotherapy therapy according to embodiments of the present technology may include cooling structures adjacent to the interior surface of the wall of a body cavity such that tissue is effectively cooled to a depth where sympathetic renal nerves reside. For example, in some embodiments, the cooling assembly of a cryotherapy device may be cooled to a degree that provides therapeutically effective cryogenic renal neuromodulation. In other embodiments, a cryotherapy therapy modality may include cooling that is not configured to provide neuromodulation. For example, the cooling may be at or above cryogenic temperatures and may be used to control neuromodulation by another therapy modality (e.g., to protect tissue from neuromodulation energy).

[0052]

[0066] Renal neuromodulation may include electrode-based or transducer-based therapy modalities, alone or in combination with other therapy modalities. Electrode-based or transducer-based therapy may involve delivering electrical and / or other forms of energy to tissue at a treatment location to stimulate and / or heat the tissue in a manner that modulates neural function. For example, sufficient stimulation and / or heating of at least a portion of the sympathetic renal nerves may slow or even block conduction of nerve signals, resulting in a long-term or permanent decrease in renal sympathetic nerve activity. Various suitable types of energy may be used to stimulate and / or heat the tissue at the treatment location. For example, neuromodulation according to embodiments of the present technology may include delivering RF energy, pulsed energy, microwave energy, light energy, focused ultrasound energy (e.g., high-intensity focused ultrasound energy), or another suitable type of energy, alone or in combination. The electrodes or transducers used to deliver this energy may be used alone or with other electrodes or transducers in a multi-electrode or multi-transducer array. Additionally, energy can be applied internally (e.g., within the vasculature or other body cavity with a catheter-based approach) and / or externally (e.g., by an applicator placed externally). Additionally, energy can be used to reduce damage to non-target tissue when target tissue adjacent to the non-target tissue is subjected to cooling for neuromodulation.

[0053]

[0067] Neuromodulation using focused ultrasound energy (e.g., high-intensity focused ultrasound energy) may be beneficial compared to neuromodulation using other treatment modalities. Focused ultrasound is an example of a transducer-based treatment modality that can be delivered from outside the body. Focused ultrasound treatment can be performed in close conjunction with imaging (e.g., magnetic resonance, computed tomography, fluoroscopy, ultrasound (e.g., intravascular or intraluminal), optical coherence tomography, or another suitable imaging modality). For example, imaging can be used to identify the anatomical location of the treatment location (e.g., as a set of coordinates relative to a reference point). The coordinates can then be input into a focused ultrasound device configured to vary power, angle, phase, or other suitable parameters to generate an ultrasound focal zone at a location corresponding to the coordinates. The focal zone can be small enough to localize therapeutically effective heating at the treatment location while partially or completely avoiding potentially harmful destruction of nearby structures. To create the focal zone, the ultrasound device may be configured to pass ultrasound energy through a lens, and / or the ultrasound energy may be generated by a curved transducer or multiple transducers (curved or straight) in a phased array.

[0054]

[0068] The heating effect in electrode-based or transducer-based therapy can include ablation and / or non-ablative change or damage (e.g., by sustained heating and / or resistive heating). For example, a therapy procedure can include raising the temperature of a target nerve fiber to a target temperature above a first threshold to achieve non-ablative change, or above a second, higher threshold to achieve ablation. The target temperature can be above about body temperature (e.g., about 37°C) and below about 45°C for non-ablative change. The target temperature can be above about 45°C for ablation. Heating tissue to a temperature between about body temperature and about 45°C can, for example, increase the temperature of the target nerve fiber. Non-ablation changes can be induced by moderately heating nerve fibers or the blood vessels or luminal structures that perfuse the target nerve fibers. If vascular structures are affected, the target nerve fibers may be denied perfusion, which can result in necrosis of the nerve tissue. Heating tissue to a target temperature greater than about 45°C (e.g., greater than about 60°C), for example, can induce ablation by sufficiently heating the target nerve fibers or the blood vessels or luminal structures that perfuse the target fibers. In some patients, it may be desirable to heat the tissue to a temperature sufficient to ablate the target nerve fibers, blood vessels, or luminal structures, but less than about 90°C (e.g., less than about 85°C, less than about 80°C, or less than about 75°C).

[0055]

[0069] Renal neuromodulation may include chemical-based therapy modalities, alone or in combination with other therapy modalities. Neuromodulation using chemical-based therapy may involve delivering one or more chemicals (e.g., drugs or other agents) to tissues at the treatment location in a manner that modulates neural function. The chemicals may be selected, for example, to affect the treatment location globally or to selectively affect some structures at the treatment location over other structures. The chemicals may be, for example, guanethidine, ethanol, phenol, neurotoxins, or another suitable agent selected to alter, damage, or destroy nerves. Various suitable techniques may be used to deliver the chemicals to tissues at the treatment location. For example, the chemicals may be delivered through one or more needles originating outside the body or within the vasculature or other body cavity. In an intravascular example, a catheter may be used to intravascularly position a therapeutic element comprising multiple needles (e.g., microneedles) that may be retracted or otherwise blocked prior to deployment. In other embodiments, chemicals may be introduced into the tissue at the treatment location by simple diffusion through the cavity wall, electrophoresis, or another suitable mechanism. Similar techniques may be used to introduce chemicals that are not configured to effect neuromodulation, but rather to facilitate neuromodulation by another treatment modality. E. Relevant Anatomy and Physiology

[0070] As mentioned above, the sympathetic nervous system (SNS), along with the enteric and parasympathetic nervous systems, is a branch of the autonomic nervous system. The sympathetic nervous system is always active at a basal level (called sympathetic tone) and becomes more active during stress. Like other parts of the nervous system, the sympathetic nervous system operates through a series of interconnected nerve cells. Sympathetic neurons are often considered part of the peripheral nervous system (PNS), but many are located within the central nervous system (CNS). Sympathetic neurons in the spinal cord (which are part of the CNS) communicate with peripheral sympathetic neurons through a series of sympathetic ganglia. Within the ganglia, spinal sympathetic neurons connect to peripheral sympathetic neurons via synapses. Thus, spinal sympathetic neurons are called presynaptic (or preganglionic) neurons, while peripheral sympathetic neurons are called postsynaptic (or postganglionic) neurons.

[0056]

[0071] At synapses within the sympathetic ganglia, preganglionic sympathetic neurons release acetylcholine, a chemical messenger that binds to and activates the nicotinic acetylcholine receptors of postganglionic neurons. In response to this stimulation, postganglionic neurons release primarily noradrenaline (norepinephrine). Prolonged activation can trigger the release of adrenaline from the adrenal medulla.

[0057]

[0072] Upon release, norepinephrine and epinephrine bind to adrenergic receptors in peripheral tissues. Binding to adrenergic receptors triggers neuronal and hormonal responses. Physiological symptoms include dilated pupils, increased heart rate, occasional vomiting, and elevated blood pressure. Increased sweating is also seen due to binding to cholinergic receptors in sweat glands.

[0058]

[0073] The sympathetic nervous system is responsible for the up- and down-regulation of many homeostatic mechanisms in the organism. Fibers of the SNS innervate tissues in almost every organ system, providing at least some control over various physiological characteristics, such as pupil diameter, intestinal motility, and urine output. This response is also mediated by preganglionic sympathetic fibers (as well as all other sympathetic fibers) that terminate in the adrenal medulla. It secretes acetylcholine, activates the secretion of adrenaline (epinephrine), and less noradrenaline (norepinephrine), also known as the sympathoadrenal response of the body. This response, which therefore primarily affects the cardiovascular system, is mediated directly by impulses sent through the sympathetic nervous system and indirectly by catecholamines secreted by the adrenal medulla.

[0059]

[0074] Science typically views the SNS as an autoregulatory system, i.e., one that operates without the intervention of conscious thought. Some evolutionists suggest that the sympathetic nervous system acted to maintain survival in early organisms because it is responsible for priming the body for action. An example of this priming occurs in the moments before waking, when sympathetic outflow spontaneously increases in preparation for action. 1. Sympathetic Chain

[0075] As shown in Figure 8, the SNS provides a network of nerves that allows the brain to communicate with the body. Sympathetic nerves are thought to originate from the medial side of the spinal column and travel to the center of the spinal cord in the intermediate zone lateral cell column (or lateral horn), beginning at the first thoracic segment of the spinal cord and extending to the second or third lumbar segment. Because their cells originate in the thoracic and lumbar regions of the spinal cord, the SNS is said to have a thoracolumbar outflow. Axons of these nerves leave the spinal cord through the anterior root. Axons pass near spinal (sensory) ganglia, where they enter the anterior rami of the spinal nerve. However, unlike somatic innervation, axons quickly separate through the white rami connector, which connects to paravertebral (near the spinal column) or prespinal (near the aortic bifurcation) ganglia and runs alongside the spinal column.

[0060]

[0076] To reach target organs and glands, axons must travel long distances within the body, and to accomplish this, many axons relay messages to a second cell through synaptic transmission. The end of the axon connects to the dendrites of the second cell across a space, or synapse. The first cell (the presynaptic cell) sends neurotransmitters across the synaptic cleft, where they activate the second cell (the postsynaptic cell). The message is then transmitted to its final destination.

[0061]

[0077] In the SNS and other components of the peripheral nervous system, these synapses are made at sites called ganglia, discussed above. The cells that send fibers are called preganglionic cells, while the cells where the fibers leave the ganglia are called postganglionic cells. As mentioned above, the preganglionic cells of the SNS are located in the spinal cord between the first thoracic (T1) and third lumbar (L3) nodes. Postganglionic cells have their cell bodies in the ganglia and send their axons to target organs or glands.

[0062]

[0078] The ganglia include not only the sympathetic trunks, but also the cervical ganglia (superior, middle, and inferior) which send sympathetic fibers to the head and thoracic organs, and the celiac and mesenteric ganglia (which send sympathetic fibers to the gut). a. Innervation of the kidney

[0079] As shown in Figure 9, the kidney is innervated by the renal plexus (RP), which is closely connected to the renal artery. The renal plexus (RP) is an autonomic nerve plexus that surrounds the renal artery and is embedded within the adventitia of the renal artery. The renal plexus (RP) extends along the renal artery until it reaches the kidney itself. Fibers contributing to the renal plexus (RP) originate from the celiac ganglion, superior mesenteric ganglion, aortorenal ganglion, and aortic plexus. The renal plexus (RP), also called the renal nerve, is primarily composed of sympathetic nerve components. There is no (or at least minimal) parasympathetic innervation of the kidney.

[0063]

[0080] Preganglionic neuron cell bodies are located within the intermediolateral cell columns of the spinal cord. Preganglionic axons pass through the paravertebral ganglia (preganglionic axons do not synapse) to become the smaller splanchnic nerves, the smallest splanchnic nerves, the first lumbar splanchnic nerve, the second lumbar splanchnic nerve, and on to the celiac ganglion, superior mesenteric ganglion, and aortorenal ganglion. Postganglionic neuron cell bodies are located in the celiac ganglion, superior mesenteric ganglion, and aortorenal ganglion. From the aortorenal ganglion, they emerge into the renal plexus (RP) and are distributed to the renal vasculature. b. Renal sympathetic nerve activity

[0081] Messages travel through the SNS in a bidirectional flow. Efferent messages can trigger changes in various parts of the body simultaneously. For example, the sympathetic nervous system can accelerate the heart rate, dilate the bronchi, decrease colonic motility (movement), constrict blood vessels, increase esophageal peristalsis, cause pupil dilation, piloerection (goosebumps), and diaphoresis (sweating), and increase blood pressure. Afferent messages propagate signals from various organs and sensory receptors in the body to other organs, and especially the brain.

[0064]

[0082] Hypertension, heart failure, and chronic kidney disease are some of the many disease states that result from chronic activation of the SNS, particularly the renal sympathetic nervous system. Chronic activation of the SNS is a maladaptive response that promotes the progression of these disease states. Pharmacological manipulation of the renin-angiotensin-aldosterone system (RAAS) has been a long-standing, but somewhat ineffective, approach to reducing SNS hyperactivity.

[0065]

[0083] As described above, the renal sympathetic nervous system has been identified as a key contributor to the complex pathophysiology of hypertension, states of volume overload (e.g., heart failure), and progressive renal disease, both experimentally and in humans. Studies using radioactive tracer dilution techniques to measure norepinephrine overflow from the kidney to plasma have revealed increased renal norepinephrine (NE) leakage in patients with essential hypertension, particularly in young hypertensive subjects. This is consistent with the hemodynamic profile typically seen in early hypertension, characterized by increased heart rate, cardiac output, and renal vascular resistance, in response to increased cardiac NE leakage. Essential hypertension is now known to be generally neurogenic and often accompanied by significant sympathetic nervous system hyperactivity.

[0066]

[0084] Cardiorenal sympathetic nerve activation is even more pronounced in heart failure, as evidenced by excessively increased NE overflow from the heart and kidneys into plasma in this patient population. Consistent with this concept is the recent demonstration of a highly pessimistic predictive value of renal sympathetic nerve activation for all-cause mortality and heart transplantation in patients with congestive heart failure, independent of overall sympathetic nerve activity, glomerular filtration rate, and left ventricular ejection fraction. These findings support the concept that therapeutic strategies designed to reduce renal sympathetic nerve stimulation may improve survival in patients with heart failure.

[0067]

[0085] Both chronic kidney disease and end-stage renal disease are characterized by increased sympathetic activation. It has been demonstrated that plasma norepinephrine levels above the median can predict both all-cause and cardiovascular mortality in patients with end-stage renal disease. This also applies to patients with diabetes or contrast-induced nephropathy. Compelling evidence suggests that sensory afferent signals emanating from the diseased kidney are a major factor in initiating and sustaining elevated central sympathetic outflow in this patient population, predisposing them to the well-known deleterious consequences of chronic sympathetic overactivity, such as hypertension, left ventricular hypertrophy, ventricular arrhythmias, sudden cardiac death, insulin resistance, diabetes, and metabolic syndrome. i. Renal sympathetic efferent activity

[0086] Sympathetic nerves to the kidney terminate in the blood vessels, the juxtaglomerular apparatus, and the renal tubules. Stimulation of the renal sympathetic nerves results in increased renin release, increased sodium (Na + ) reabsorption and decreased renal blood flow. These components of the neural regulation of renal function are significantly stimulated in disease states characterized by increased sympathetic tone, apparently contributing to elevated blood pressure in hypertensive patients. Decreased renal blood flow and glomerular filtration rate as a result of renal sympathetic efferent stimulation usually manifests as a progressive complication of chronic heart failure, with a clinical course that varies depending on the patient's clinical condition and treatment. This likely underlies the loss of renal function in cardiorenal syndrome, a condition characterized by renal dysfunction. Pharmacological strategies to counteract the consequences of renal efferent sympathomimetic activity include centrally acting sympatholytic agents, beta-blockers (intended to reduce renin release), angiotensin-converting enzyme inhibitors and receptor blockers (intended to prevent the effects of angiotensin II and aldosterone activation resulting from renin release), and diuretics (intended to counteract renal sympathetically mediated sodium and water retention). However, current pharmacological strategies have significant limitations, including limited efficacy, compliance issues, and side effects. ii. Renal sensory afferent nerve activity

[0087] The kidneys communicate with integrating structures in the central nervous system via renal sensory afferent nerves. Several forms of "renal injury" can induce activation of sensory afferent signals. For example, renal ischemia, reduced stroke volume or renal blood flow, or excessive adenosine enzymes can trigger activation of afferent neurotransmission. As shown in Figures 10 and 11, this afferent transmission can be from the kidney to the brain or from one kidney to the other (via the central nervous system). These afferent signals can be centrally integrated and result in increased sympathetic outflow. This sympathetic drive is directed toward the kidney, thereby activating the RAAS, causing increased renin secretion, sodium retention, volume retention, and vasoconstriction. Central sympathetic overactivity also affects other organs and body structures innervated by sympathetic nerves, such as the heart and peripheral vasculature, resulting in the aforementioned deleterious effects of sympathetic activation, some aspects of which also contribute to elevated blood pressure.

[0068]

[0088] Thus, physiology suggests that (i) modulation of tissues containing efferent sympathetic nerves would reduce inappropriate renin release, salt retention, and reduced renal blood flow, and (ii) modulation of tissues containing afferent sensory nerves would reduce the systemic contribution to hypertension and other disease states associated with increased central sympathetic tone through direct effects on the contralateral kidney as well as the posterior hypothalamus. In addition to the central blood pressure-lowering effects of afferent renal denervation, a desirable reduction in central sympathetic outflow to various other sympathetically innervated organs, such as the heart and vasculature, is expected. 2. Additional clinical benefits of renal denervation

[0089] As suggested above, renal denervation is likely beneficial in treating several clinical conditions characterized by increased overall, and particularly renal, sympathetic activity, such as hypertension, metabolic syndrome, insulin resistance, diabetes, left ventricular hypertrophy, chronic end-stage renal disease, inappropriate fluid retention in heart failure, cardiorenal syndrome, and sudden death. Because reduced afferent nerve signals contribute to a systemic reduction in sympathetic tone / drive, renal denervation may also be useful in treating other conditions associated with systemic sympathetic hyperactivity. Thus, renal denervation may also benefit other organs and body structures innervated by sympathetic nerves, including those identified in FIG. 8. For example, as previously discussed, reduced central sympathetic drive may reduce insulin resistance, which afflicts people with metabolic syndrome and type 2 diabetes. Furthermore, patients with osteoporosis are also sympathetically activated and may benefit from the downregulation of sympathetic drive that accompanies renal denervation. 3. Achieving endovascular access to the renal artery

[0090] According to the present technique, neuromodulation of the left and / or right renal plexus (RP), which is closely associated with the left and / or right renal arteries, can be achieved through intravascular access. As shown in FIG. 12, blood displaced by cardiac contraction is carried from the left ventricle of the heart by the aorta. The aorta descends through the chest and branches into the left and right renal arteries. Below the renal arteries, the aorta bifurcates into the left and right iliac arteries. The left and right iliac arteries descend through the left and right legs, respectively, to connect with the left and right femoral arteries.

[0069]

[0091] As shown in Figure 13, blood collects in the veins, passes through the femoral veins, enters the iliac veins and inferior vena cava, and returns to the heart. The inferior vena cava branches into the right and left renal veins. Above the renal veins, the inferior vena cava ascends and carries blood to the right atrium of the heart. From the right atrium, blood passes through the right ventricle and is sent to the lungs. From the lungs, oxygenated blood is transported to the left atrium. From the left atrium, oxygenated blood is returned to the aorta by the left ventricle.

[0070]

[0092] As described in more detail below, the femoral artery may be accessed and cannulated at the base of the femoral triangle, slightly below the midpoint of the inguinal ligament. A catheter may be percutaneously inserted into the femoral artery through this access site, passed through the iliac arteries and aorta, and placed into either the left or right renal artery. This involves an intravascular route that provides minimally invasive access to each renal artery and / or other renal vessels.

[0071]

[0093] The wrist, upper arm, and shoulder regions provide other locations for catheterization into the arterial system. For example, catheterization of either the radial, brachial, or axillary arteries may be utilized in certain cases. Catheters introduced through these access points may be passed through the left subclavian artery (or via the right subclavian and brachiocephalic arteries), through the aortic arch, down the descending aorta, and into the renal arteries using standard angiography. 4. Nature and Characteristics of the Renal Vasculature

[0094] Because neuromodulation of the left and / or right renal plexus (RP) can be achieved in accordance with the present technology via intravascular access, the properties and characteristics of the renal vasculature can constrain and / or inform the design of devices, systems, and methods for achieving such renal neuromodulation. Some of these properties and characteristics may vary across patient populations and / or within a particular patient over time and depending on disease states such as hypertension, chronic kidney disease, vascular disease, end-stage renal disease, insulin resistance, diabetes, metabolic syndrome, etc. As described herein, these properties and characteristics may be relevant to the efficacy of treatment and the specific design of an intravascular device. Properties of interest may include, for example, material / mechanical, spatial, hydrodynamic / hemodynamic, and / or thermodynamic properties.

[0072]

[0095] As previously discussed, a catheter may be advanced percutaneously into either the left or right renal artery via a minimally invasive intravascular route. However, minimally invasive access to the renal artery can be challenging because, for example, the renal artery is often highly tortuous, may be relatively small in diameter, and / or may be relatively short in length compared to some other arteries commonly accessed using catheters. Furthermore, renal artery atherosclerosis is common in many patients, particularly those with cardiovascular disease. Renal artery anatomy can also vary significantly from patient to patient, further complicating minimally invasive access. For example, there can be considerable variability between patients in relative tortuosity, diameter, length, and / or atherosclerotic plaque burden, as well as the branching angle at which the renal artery branches off from the aorta. Devices, systems, and methods for achieving renal neuromodulation via intravascular access need to consider these and other aspects of renal artery anatomy, as well as variations in renal artery anatomy across patient populations, when accessing the renal artery minimally invasively.

[0073]

[0096] In addition to making renal artery access difficult, the specifics of renal anatomy also make it difficult to establish stable contact between the neuromodulation device and the luminal surface or wall of the renal artery. For example, navigation can be hindered by the narrow space within the renal artery as well as the tortuosity of the artery. Furthermore, establishing consistent contact is difficult due to patient movement, breathing, and / or the cardiac cycle, as these factors can cause significant movement of the renal artery relative to the aorta, and the cardiac cycle can temporarily dilate the renal artery (i.e., cause pulsation in the arterial wall).

[0074]

[0097] Even after accessing the renal artery and facilitating stable contact between the neuromodulation device and the luminal surface of the artery, nerves in and around the adventitia of the artery must be safely modulated by the neuromodulation device. This is important given the potential clinical complications associated with excessive heating. For example, the intima and media of the renal artery are highly vulnerable to thermal injury. As discussed in more detail below, the thickness of the intima-media separating the vessel lumen from the vessel adventitia means that the target renal nerve may be several millimeters from the arterial luminal surface. To modulate the target renal nerve, sufficient energy must be delivered to or removed from the target renal nerve without excessively cooling or heating the vessel wall to the extent that the wall freezes, dries, or is otherwise potentially undesirably affected. A potential clinical complication associated with excessive heating is thrombus formation due to coagulation of blood flowing through the artery. Given that this thrombus can cause renal infarction, thereby resulting in irreversible kidney damage, intrarenal artery thermal therapy must be applied with caution. Therefore, in applying energy from within the renal artery (e.g., thermal energy heating) and / or removing heat from tissue (e.g., thermal state cooling), the complex fluid dynamics and thermodynamic conditions present in the renal artery during treatment can be important, particularly conditions that may affect heat transfer dynamics at the treatment site.

[0075]

[0098] Because treatment location can also affect clinical efficacy, the neuromodulation device should also be configured to allow adjustable positioning and repositioning of the energy delivery element within the renal artery. For example, given that renal nerves may be spaced circumferentially around the renal artery, it may be attractive to administer circumferential therapy from within the renal artery. In some situations, circumferential lesions, possibly resulting from successive circumferential treatments, may be associated with renal artery stenosis. Therefore, creating more complex lesions along the longitudinal dimension of the renal artery and / or repositioning the neuromodulation device to multiple treatment locations may be desirable. However, it should be noted that the benefits of creating circumferential ablation may outweigh the potential for renal artery stenosis or may be diminished in certain embodiments or for certain patients, and creating circumferential ablation may be the goal. Furthermore, variable positioning and repositioning of the neuromodulation device may prove useful in situations where the renal artery is particularly tortuous or where there are proximal branch vessels distant from the main renal artery, making treatment at certain locations challenging. Manipulation of a device within the renal artery must also consider the mechanical injury inflicted by the device against the renal artery. For example, movement of the device within the artery due to insertion, manipulation, navigating bends, etc., can cause dissection, perforation, exposure of the intima, or disruption of the internal elastic lamina.

[0076]

[0099] Blood flow through the renal arteries can be temporarily occluded for short periods of time with minimal or no complications. However, significant periods of occlusion must be avoided to prevent harm to the kidney, such as ischemia. It may be beneficial to avoid all occlusion, or, if occlusion is beneficial for the embodiment, to limit the duration of the occlusion to, for example, 2 to 5 minutes.

[0077]

[0100] Based on the above-mentioned challenges of (1) renal artery interventional therapy, (2) consistent and stable placement of a therapy element against the vessel wall, (3) effective application of therapy through the vessel wall, (4) positioning and possibly repositioning of a therapy device to allow for multiple therapy locations, and (5) avoiding or limiting the duration of blood flow obstruction, various independent and dependent properties of the renal vasculature that may be targeted include, for example, (a) vessel diameter, vessel length, intima-media thickness, friction coefficient, and tortuosity; (b) vessel wall thickness; (c) peak systolic blood velocity, end-diastolic blood velocity as well as mean systolic-diastolic peak blood velocity and mean / maximum volumetric blood flow; (d) specific heat capacity of the blood and / or vessel wall, thermal conductivity of the blood and / or vessel wall, and / or heat transfer coefficient and / or radiative heat transfer of blood flow passing the vessel wall treatment site; (e) motion of the renal artery relative to the aorta induced by breathing, patient movement, and / or pulsatility of blood flow; and (f) bifurcation angle of the renal artery relative to the aorta. These properties will be discussed in more detail with respect to the renal artery. However, depending on the devices, systems, and methods utilized to achieve renal neuromodulation, the bifurcation angle of the renal artery may vary. The properties of the design may also guide and / or constrain the characteristics of the design.

[0078]

[0101] As mentioned above, devices positioned within the renal arteries must conform to the geometry of the arteries. Renal artery vessel diameter, D RA is usually in the range of approximately 2-10 mm, and most of the patient population RA The renal artery vessel length, L, between the renal artery ostium at the aorta / renal artery junction and the distal bifurcation of the renal artery, is approximately 4 mm to 8 mm, with an average of approximately 6 mm. RAThe depth of the treatment is usually within the range of approximately 5–70 mm, with a significant portion of the patient population being within the range of approximately 20–50 mm. Because the target renal nerve plexus is embedded within the adventitia of the renal artery, the combined intima-media thickness (IMT) (i.e., the radially outward distance from the luminal surface of the artery to the adventitia containing the target neural structure) is also noteworthy, typically within the range of approximately 0.5–2.5 mm, with an average of approximately 1.5 mm. While a certain depth of treatment is important to reach the target nerve fibers, treatment should not be too deep (e.g., >5 mm from the inner wall of the renal artery) to avoid non-target tissues and anatomical structures such as the renal vein.

[0079]

[0102] An additional property of the renal artery that may be of interest is the degree of kidney movement relative to the aorta, induced by respiration and / or pulsatile blood flow. A patient's kidneys, located distal to the renal arteries, can move as much as 4 inches with respiratory excursion, much like the skull. This can impart significant movement to the renal arteries connecting the aorta to the kidneys, thereby requiring a neuromodulation device with a unique balance of stiffness and flexibility to maintain contact between the energy delivery elements and the vessel wall during the respiratory cycle. Furthermore, the bifurcation angle between the renal artery and the aorta can vary significantly between patients and can also change dynamically within a single patient due to, for example, kidney movement. The bifurcation angle can generally be in the range of approximately 30° to 135°. F. Further Examples

[0103] Some aspects of the present technology are illustrated in the following examples. 1. an elongate shaft having a distal portion configured to be intravascularly positioned at a treatment site within a renal vasculature of a human patient; a plurality of electrodes spaced apart along a distal portion of the shaft, the electrodes configured to deliver neuromodulation energy to target nerves at or adjacent to the treatment site; and Irrigation outlets close to the electrodes a catheter comprising: a controller configured to be communicatively coupled to the neuromodulation element, the controller further configured to monitor parameters of at least one of the electrodes and tissue at or adjacent to the treatment site; A neuromodulation system comprising: The neuromodulation system, wherein the irrigation outlet is configured to direct irrigation fluid in a first direction based at least in part on instructions from the controller responsive to the monitored parameter. 2. The neuromodulation system of Example 1, wherein the first direction is parallel to the longitudinal axis of the renal blood vessels. 3. an energy generator external to the patient and electrically coupled to the plurality of electrodes and a controller; an irrigation pump operably coupled to the irrigation outlet and the controller; and the controller is further configured to cause the energy generator to deliver neuromodulation energy through the electrodes and the irrigation pump to deliver irrigation fluid through the irrigation outlet. 4. The controller further comparing the parameters to ranges in a predetermined parameter profile; If the parameter falls within the range, causing the energy generator to deliver neuromodulation energy at a power level according to the control algorithm; If the parameters fall within the range, causing the energy generator to deliver irrigation fluid at a temperature and flow rate according to the control algorithm; and If the parameter is out of range, modify the control algorithm to adjust the energy and / or irrigation fluid characteristics. The neuromodulation system of Example 3, configured as follows: 5. 5. The neuromodulation system of Example 4, wherein the parameter is a temperature of one of the electrodes and the characteristic is a power level at which energy is delivered, and the controller is configured to reduce the power level if the temperature of the electrode is outside of a range. 6. 7. The neuromodulation system of Example 4, wherein the parameter is a temperature of one of the electrodes and the characteristic is a power level at which energy is delivered, and the controller is configured to hold the power level constant or reduce the power level if the temperature of the electrode is outside of a range. The neuromodulation system of Example 4 or Example 6, wherein the parameter is a temperature of one of the electrodes and the characteristic is a flow rate or temperature at which irrigation fluid is delivered, and the controller is configured to increase the flow rate or decrease the temperature at which irrigation fluid is delivered if the temperature of the electrode is out of range. 8. an elongate shaft having a distal portion sized and shaped to be placed intravascularly at a treatment site within a blood vessel of a human patient; an electrode configured to deliver radio frequency (RF) energy to a target nerve at or adjacent to the treatment site, the electrode configured to deliver the RF energy according to a control algorithm; and a plurality of irrigation outlets arranged to release irrigation fluid according to a control algorithm; a neuromodulation catheter comprising: an irrigation pump coupled to the plurality of irrigation outlets, the irrigation pump configured to deliver irrigation fluid to the treatment site through the plurality of irrigation outlets; an energy generator external to the patient and coupled to the electrode and the irrigation pump, the energy generator configured to deliver RF energy through the electrode to the target nerve; a controller communicatively coupled to the electrodes, the energy generator, and the irrigation pump, the controller further configured to monitor parameters of at least one of the electrodes and tissue at or adjacent to the treatment site; A system comprising: 9. The system of Example 8, wherein a first subset of the plurality of irrigation outlets is positioned proximal to the electrode, and wherein each of the first subset of irrigation outlets is oriented to direct irrigation fluid in a first direction. 10. 10. The system of Example 9, wherein the electrodes are first electrodes, and the system further comprises a second electrode on the elongate shaft spaced apart from the first electrode, the second electrode being disposed between the first electrode and a distal end of the elongate shaft, and the first subset is configured to emit irrigation fluid such that the irrigation fluid cools the second electrode. 11. The system of Example 8, wherein a plurality of irrigation outlets are disposed on the elongate shaft between the electrodes and the proximal portion of the elongate shaft. 12. The system of Example 10, wherein each of the plurality of irrigation outlets is oriented to direct irrigation fluid radially outward from the elongate shaft. 13. The system of Example 8, wherein the neuromodulation catheter further comprises an irrigation ring, and wherein the plurality of irrigation outlets are disposed on the irrigation ring. 14. The system of Example 8, wherein the parameter is a temperature of the electrode, and wherein the controller is further configured to increase a power level at which the energy generator delivers neuromodulation energy while maintaining the temperature of the electrode within a predetermined temperature profile. 15. The system of Example 14, wherein while the controller increases the power level, the controller is further configured to (i) maintain or increase the flow rate and / or (ii) maintain or decrease the temperature at which the irrigation pump delivers irrigation fluid. 16. 16. The system of Example 15, wherein the controller is configured to increase the power level only if the flow rate of the irrigation fluid is increased and / or if the temperature of the irrigation fluid is decreased. 17. The system of Example 8, wherein the controller is configured to stop the energy generator from increasing the power level at which the energy generator delivers neuromodulation energy when the irrigation fluid delivered by the irrigation pump reaches a maximum flow rate and / or a minimum temperature. 18. placing a neuromodulation catheter at a treatment site within a renal vasculature of a human patient, the neuromodulation catheter comprising a treatment assembly including one or more electrodes and one or more irrigation outlets; deploying the treatment assembly so that the one or more electrodes contact the blood vessel at the treatment site; delivering neuromodulation energy through one or more electrodes in accordance with a control algorithm; monitoring the temperature of one or more electrodes and / or the temperature of tissue in the vessel at or adjacent to the treatment site; delivering irrigation fluid at least partially responsive to the neuromodulation energy and the monitored temperature through one or more irrigation outlets; A method comprising: 19. The method of Example 18, wherein delivering neuromodulation energy in accordance with the control algorithm comprises increasing a power level of the neuromodulation energy, and delivering irrigation fluid comprises delivering irrigation fluid with an increased flow rate and / or a decreased temperature corresponding to the increased power level. 20. 20. The method of Example 19, further comprising maintaining a temperature of the one or more electrodes constant and / or within an acceptable temperature range while the power level is increased. twenty one. The step of delivering neuromodulation energy according to a control algorithm further includes comparing a temperature of one or more electrodes and / or a temperature of the tissue with a range of a predetermined temperature profile, the step of: maintaining or decreasing the power level of the neuromodulation energy if the temperature of one or more electrodes and / or the temperature of the tissue is outside of range; and / or increasing the power level at a slower rate if the temperature of one or more electrodes and / or the temperature of the tissue is out of range. The method of Example 18, comprising: twenty two. 19. The method of Example 18, further comprising comparing the temperature of the one or more electrodes and / or the temperature of the tissue to a range of a predetermined temperature profile, and wherein delivering irrigation fluid comprises delivering irrigation fluid at an increased flow rate and / or at a reduced temperature if the temperature of the one or more electrodes and / or the temperature of the tissue is outside the range. twenty three. comparing the temperature of one or more electrodes and / or the temperature of the tissue to ranges in a predetermined temperature profile; delivering irrigation fluid to the treatment site through one or more irrigation outlets if the temperature of the one or more electrodes and / or the temperature of the tissue is out of range; increasing the power level at which the neuromodulation energy is delivered if the temperature of the one or more electrodes and / or the temperature of the tissue is within range; The method of Example 18, further comprising: Conclusion

[0104] The above detailed description of embodiments of the present technology is not intended to be exhaustive or to limit the present technology to the precise form disclosed above. While specific embodiments of, and examples of, the present technology have been described above for illustrative purposes, those skilled in the art will recognize that various equivalent modifications are possible within the scope of the present technology. For example, while steps are presented in a given order, alternative embodiments may perform steps in a different order. Furthermore, the various embodiments described herein may also be combined to provide further embodiments.

[0080]

[0105] It will be understood from the above that, although specific embodiments of the present technology have been described herein for illustrative purposes, well-known structures and functions have not been shown or described in detail to avoid unnecessarily obscuring the description of the embodiments of the present technology. Where the context allows, singular or plural terms may also include the plural or singular term, respectively. Furthermore, unless the word "or" is expressly limited in reference to a list of two or more items to mean only one item exclusive of the other items, the use of "or" in such a list should be interpreted as including (a) any single item in the list, (b) all items in the list, or (c) any combination of items in the list. Where the context allows, singular or plural terms may also include the plural or singular term, respectively. Furthermore, the terms "comprising," "including," "having," and "with" are used throughout to mean having at least the recited features, not to exclude any more of the same features and / or other features of a further type.

[0081]

[0106] From the above, it will also be understood that various modifications may be made without departing from the present technology. For example, various components of the present technology may be further divided into subcomponents, or various components and functions of the present technology may be combined and / or integrated. Furthermore, while advantages associated with particular embodiments of the present technology have been described in terms of those embodiments, other embodiments may also exhibit such advantages, and not all embodiments necessarily represent such advantages within the scope of the present technology. Thus, the present disclosure and related technology may encompass other embodiments not explicitly shown or described herein.

Claims

1. A neuromodulatory system comprising: an elongate shaft having a distal portion configured to be intravascularly positioned at a treatment site within a renal vasculature of a human patient; a plurality of electrodes spaced along the distal portion of the elongate shaft, the plurality of electrodes configured to deliver neuromodulation energy to target nerves at or adjacent the treatment site; and a catheter including an irrigation outlet adjacent to one of the plurality of electrodes and configured to output irrigation fluid; a controller configured to be communicatively coupled to the plurality of electrodes, monitoring a temperature of at least one of the plurality of electrodes, or a temperature of the treatment site or tissue adjacent to the treatment site, or a power level of at least one of the plurality of electrodes; outputting the irrigation fluid from the irrigation outlet by one or more of increasing the flow rate of the irrigation fluid delivered or decreasing the temperature of the irrigation fluid when the monitored temperature of the at least one electrode of the plurality of electrodes, or the treatment site or tissue adjacent to the treatment site, or the monitored power level of the at least one electrode of the plurality of electrodes increases; and preventing the flow rate of the irrigation fluid from increasing above a flow rate threshold and preventing the temperature of the irrigation fluid from decreasing below a temperature threshold to prevent the neuromodulation system from determining an inaccurate measurement of ablation progress; comparing the monitored temperature or the monitored power level to a range of a predetermined parameter profile; a controller configured to modify a control algorithm to adjust a characteristic of the neuromodulation energy if the monitored temperature or the monitored power level is outside the predetermined parameter profile; and A neuromodulation system comprising:

2. 10. The neuromodulation system of claim 1, The neuromodulation system, wherein the irrigation outlet is further configured to direct the irrigation fluid in a first direction parallel to a longitudinal axis of the renal vessel.

3. 10. The neuromodulation system of claim 1, an energy generator external to the human patient and electrically coupled to the plurality of electrodes and the controller; an irrigation pump operably coupled to the irrigation outlet and to the controller, the controller further configured to cause the energy generator to deliver the neuromodulation energy through the plurality of electrodes and to cause the irrigation pump to deliver the irrigation fluid through the irrigation outlet; a neuromodulatory system further comprising:

4. 4. The neuromodulation system of claim 3, wherein the controller further comprises: causing the energy generator to deliver neuromodulation energy at a power level according to a control algorithm if the monitored temperature or the monitored power level is within the predetermined parameter profile; a neuromodulation system configured to cause the energy generator to deliver the irrigation fluid at a temperature and flow rate in accordance with the control algorithm when the monitored temperature or the monitored power level is within the predetermined parameter profile.

5. 5. The neuromodulation system of claim 4, the monitored temperature is a temperature of one electrode of the plurality of electrodes, the characteristic is the power level at which the neuromodulation energy is delivered, and the controller is further configured to reduce the power level at which the neuromodulation energy is delivered if the temperature of the one electrode of the plurality of electrodes is outside the predetermined parameter profile.

6. 5. The neuromodulation system of claim 4, the monitored temperature is a temperature of one electrode of the plurality of electrodes, and the characteristic is the power level at which the neuromodulation energy is delivered, and the controller is further configured to: hold constant the power level at which the neuromodulation energy is delivered or reduce the power level at which the neuromodulation energy is delivered if the temperature of the one electrode of the plurality of electrodes is outside the predetermined parameter profile.

7. 5. The neuromodulation system of claim 4, the monitored temperature is the temperature of the one electrode of the plurality of electrodes, and the controller is further configured to increase the flow rate or decrease the temperature at which the irrigation fluid is delivered if the temperature of the one electrode of the plurality of electrodes is outside the predetermined parameter profile.

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