Patent classifications
A61B2018/00261
Systems, devices, and methods for focal ablation
Systems, devices, and methods for electroporation ablation therapy are disclosed, with the device including a set of splines coupled to a catheter for medical ablation therapy. Each spline of the set of splines may include a set of electrodes formed on that spline. The set of splines may be configured for translation to transition between a first configuration and a second configuration. The devices described herein may be used to form a lesion via focal ablation.
ENERGY DELIVERY DEVICE AND METHODS OF USE
An energy delivery system for delivering electrical energy to tissue, includes an elongate catheter member defining a longitudinal axis and dimensioned for passage within a body vessel and an expandable treatment member mounted to the catheter member. The treatment member includes an inflatable element adapted to transition between an initial condition and an at least partially expanded condition upon introduction of an anesthetic solution within the inflatable element, an electrode for delivering electrical energy to at least the nerve tissue associated with the body vessel to cause at least partial denervation thereof and at least one aperture dimensioned to permit passage of the anesthetic solution from the inflatable element to contact the body vessel whereby the solution at least enters the body vessel to at least partially anesthetize the nerve tissue therewithin. The electrode may be mounted to at least the inflatable element of the treatment member and may be generally helical.
SYSTEMS AND METHODS FOR IMPAIRING SMOOTH MUSCLE TISSUE FUNCTION
Systems and methods for impairing smooth muscle tissue function using energy and/or pressure are described herein. The systems and/or methods may be used in some embodiments to target smooth muscle tissue in the bronchial passages.
NEUROMODULATION CRYOTHERAPEUTIC DEVICES AND ASSOCIATED SYSTEMS AND METHODS
- Naomi Buckley ,
- Benjamin J. Clark ,
- Michael Cummins ,
- Danny Donovan ,
- Mark Gelfand ,
- Luke Hughes ,
- Brian Kelly ,
- Gary Kelly ,
- Grace Kelly ,
- John Kelly ,
- Mark S. Leung ,
- Gwenda Francis ,
- Barry Mullins ,
- Karun D. Naga ,
- Stephen Nash ,
- Eric RYBA ,
- Fiachra Sweeney ,
- Vincenzo Tilotta ,
- Roman Turovskiy ,
- Lana Woolley ,
- Denise ZARINS ,
- Michael Turovskiy
Neuromodulation cryotherapeutic devices and associated systems and methods are disclosed herein. A cryotherapeutic device configured in accordance with a particular embodiment of the present technology can include an elongated shaft having distal portion and a supply lumen along at least a portion of the shaft. The shaft can be configured to locate the distal portion intravascularly at a treatment site proximate a renal artery or renal ostium. The supply lumen can be configured to receive a liquid refrigerant. The cryotherapeutic device can further include a cooling assembly at the distal portion of the shaft. The cooling assembly can include an applicator in fluid communication with the supply lumen and configured to deliver cryotherapeutic cooling to nerves proximate the target site when the cooling assembly is in a deployed state.
CRYOABLATION CATHETER AND SYSTEM
The disclosure relates to a cryoablation catheter and a cryoablation system. The cryoablation catheter comprises a catheter body and a freezing unit. The catheter body comprises a cold-source fluid input lumen and a cold-source fluid output lumen, both extending in an axial direction of the catheter body, and the freezing unit is arranged at a distal portion of the catheter body, and comprises a first balloon in fluid communication with the cold-source fluid input lumen and the cold-source fluid output lumen, and a second balloon arranged external to the first balloon with the length of the first balloon being less than the length of the second balloon. When the first balloon and the second balloon are dilated, a cavity is formed between the first balloon and the second balloon, to prevent the energy transfer in a space of the freezing unit corresponding to the cavity.
CRYOABLATION CATHETER, CRYOABLATION OPERATING APPARATUS AND CRYOABLATION EQUIPMENT
A cryoablation catheter, including a first capsule body, a core tube and a heat insulation part, wherein the first capsule body is mounted at a front end of the core tube, and has a front end area adapted for fitting to myocardial tissue during a cryoablation process and a rear end area exposed to blood; the core tube has a first looping path provided therein which is adapted for a first fluid with low temperature to be filled into or flow out of the first capsule body; the heat insulation part is at least partially fitting to the rear end area, and is adapted for reducing heat exchange efficiency between the first fluid and the blood in an atrium. The cryoablation operating apparatus and the cryoablation equipment thereof can effectively reduce the heat exchange between the cryoablation catheter and the blood during a cryoablation process.
Methods and systems for preventing bleeding from the left atrial appendage
The disclosure presents methods and systems for applying a suction force to a surface of a left atrial appendage (LAA) with a tube attached to an exterior surface of an inflatable balloon. The disclosure also presents methods and systems for inflating a first inflatable balloon within a cavity of a left atrial appendage (LAA). A method may include applying a suction force with at least one tube coupled to the first inflatable balloon to attract the first inflatable balloon to an interior surface of the LAA or to a second inflatable balloon. A method may include puncturing, using a tissue-penetrating tip, a target surface of the LAA.
ESOPHAGEAL PROBES AND METHODS
The invention relates to devices and methods for affecting an internal body tube, such as the esophagus, particularly to affecting the internal body tube by inserting a device into the internal body tube and more particularly to affecting the internal body tube by at least partially sealing off a section and moving the walls of the internal body tube, and/or applying cooling to the internal body tube. This invention further relates to methods of using such devices to move portions of an internal body tube away from an area undergoing a treatment or therapy, such as to minimize damage to the internal body tube, and/or providing cooling/temperature monitoring.
Neuromodulation cryotherapeutic devices and associated systems and methods
- Naomi Buckley ,
- Benjamin J. Clark ,
- Michael Cummins ,
- Danny Donovan ,
- Mark Gelfand ,
- Luke Hughes ,
- Brian Kelly ,
- Gary Kelly ,
- Grace Kelly ,
- John Kelly ,
- Mark S. Leung ,
- Gwenda Francis ,
- Barry Mullins ,
- Karun D. Naga ,
- Stephen Nash ,
- Eric RYBA ,
- Fiachra Sweeney ,
- Vincenzo Tilotta ,
- Roman Turovskiy ,
- Lana Woolley ,
- Denise ZARINS ,
- Michael Turovskiy
Neuromodulation cryotherapeutic devices and associated systems and methods are disclosed herein. A cryotherapeutic device configured in accordance with a particular embodiment of the present technology can include an elongated shaft having distal portion and a supply lumen along at least a portion of the shaft. The shaft can be configured to locate the distal portion intravascularly at a treatment site proximate a renal artery or renal ostium. The supply lumen can be configured to receive a liquid refrigerant. The cryotherapeutic device can further include a cooling assembly at the distal portion of the shaft. The cooling assembly can include an applicator in fluid communication with the supply lumen and configured to deliver cryotherapeutic cooling to nerves proximate the target site when the cooling assembly is in a deployed state.
Systems and methods for impairing smooth muscle tissue function
Systems and methods for impairing smooth muscle tissue function using energy and/or pressure are described herein. The systems and/or methods may be used in some embodiments to target smooth muscle tissue in the bronchial passages.