THERAPEUTIC TISSUE MODULATION DEVICES AND METHODS
According to various embodiments, systems, devices and methods for modulating targeted nerve fibers (e.g., hepatic neuromodulation) or other tissue are provided. Systems, devices and methods for cooling energy delivery members are also provided. The systems may be configured to access tortuous anatomy of or adjacent hepatic vasculature. The systems may be configured to target nerves surrounding (e.g., within adventitia of or within perivascular space of) an artery or other blood vessel, such as the common hepatic artery.
1 . A system comprising:
a catheter configured to be navigated across a turn to a target site within a blood vessel of a patient, the catheter comprising:
an elongate shaft;
a balloon at a distal portion of the elongate shaft;
one or more energy delivery elements on or within the balloon, the one or more energy delivery elements configured to deliver energy to one or more nerves of the patient proximate the blood vessel when the balloon is positioned at the target site in the blood vessel; and
a distal shaft extension extending distal of the balloon, the distal shaft extension configured to provide a transition in flexibility of the catheter as the catheter traverses the turn within the blood vessel,
wherein to provide the transition in flexibility, the distal shaft extension changes in flexibility in a distal to proximal direction.
2 . The system of claim 1 , wherein the catheter defines a guidewire lumen, the guidewire lumen extending through the elongated shaft and the distal shaft extension.
3 . The system of claim 1 , wherein the distal shaft extension extends at least 1 centimeter (cm) from a distal waist of the balloon.
4 . The system of claim 1 , wherein the one or more energy delivery elements includes an electrode or an ultrasound transducer.
5 . The system of claim 1 , wherein:
the elongate shaft is formed from a first material,
the distal shaft extension is formed from a second material, and
the second material is different from the first material.
6 . The system of claim 5 , wherein the second material is a shape-memory material.
7 . The system of claim 1 , wherein the distal shaft extension defines a pre-formed shape.
8 . The system of claim 7 , wherein the pre-formed shape is a curved shape corresponding to the turn within the blood vessel.
9 . The system of claim 7 , further comprising a guidewire, wherein upon repositioning of the guidewire relative to the distal shaft extension, the distal shaft extension is configured to transition from a first configuration in which the distal shaft extension defines a substantially straight shape to a second configuration in which the distal shaft extension defines the pre-formed shape.
10 . The system of claim 1 , wherein the catheter further comprises a radiopaque distal tip at a distal portion of the distal shaft extension.
11 . A method comprising:
introducing a catheter into a blood vessel of a patient, the catheter comprising:
an elongate shaft,
a balloon at a distal portion of the elongate shaft,
one or more energy delivery elements on or within the balloon, and
a distal shaft extension extending distal of the balloon;
navigating the catheter including the balloon across a turn within the blood vessel to position the one or more energy delivery elements at a target site in the blood vessel, wherein the distal shaft extension is configured to provide a transition in flexibility of the catheter as the catheter traverses the turn within the blood vessel, and wherein to provide the transition in flexibility, the distal shaft extension changes in flexibility in a distal to proximal direction; and
causing the one or more energy delivery elements to deliver energy to one or more nerves of the patient proximate the blood vessel when the balloon is positioned at the target site in the blood vessel.
12 . The method of claim 11 , wherein
the elongate shaft is formed from a first material,
the distal shaft extension is formed from a second material, and
the second material is different from the first material.
13 . The method of claim 12 , wherein the second material is a shape-memory material.
14 . The method of claim 11 , wherein the distal shaft extension defines a pre-formed shape.
15 . The method of claim 14 , wherein the pre-formed shape is a shape corresponding to the turn within the blood vessel.
16 . The method of claim 14 , further comprising:
repositioning a guidewire relative to the distal shaft extension to cause the distal shaft extension to transition from a first configuration in which the distal shaft extension defines a substantially straight shape to a second configuration in which the distal shaft extension defines the pre-formed shape.
17 . A system comprising:
a catheter configured to be navigated across a turn to a target site within a blood vessel of a patient, the catheter comprising:
an elongate shaft;
a balloon at a distal portion of the elongate shaft;
one or more energy delivery elements on or within the balloon, the one or more energy delivery elements configured to deliver energy to one or more nerves of the patient proximate the blood vessel when the balloon is positioned at the target site in the blood vessel; and
a distal shaft extension extending distal of the balloon, the distal shaft extension being configured to transition between a first configuration and a shaped configuration,
wherein in the shaped configuration, the distal shaft extension defines a shape corresponding to the turn within the blood vessel, and
wherein the elongate shaft and the distal shaft extension are configured such that a guidewire can be repositioned relative to the distal shaft extension to transition the distal shaft extension from the first configuration to the shaped configuration.
18 . The system of claim 17 , wherein:
the elongate shaft is formed from a first material,
the distal shaft extension is formed from a second material, and
the second material is different from the first material.
19 . The system of claim 18 , wherein the second material is a shape-memory material.
20 . The system of claim 17 , wherein in the first configuration, the distal shaft extension is substantially straight.