Systems and methods for therapeutic nasal neuromodulation
The invention generally relates to systems and methods for therapeutically modulating nerves in or associated with a nasal region of a patient for the treatment of a rhinosinusitis condition.
1. A device for treating a condition within a nasal cavity of a patient, the device comprising:
a multi-segment end effector operably associated with a shaft and comprising a first segment that is spaced apart from a separate and distinct second segment along a longitudinal axis along which a distal most portion of the shaft lies, wherein the second segment is positioned closer to a distal-most end of the shaft and the first segment is positioned closer to a proximal-most end of the shaft, each of the first and second segments is transformable between a retracted configuration and an expanded deployed configuration and comprises a respective architecture in the expanded deployed configuration, the first segment comprises a first architecture and the second segment comprises a second architecture that is different than the first architecture of the first segment,
wherein the first segment comprises:
a first set of a plurality of flexible support elements that extend in a first outward direction relative to the longitudinal axis and are positioned within a first half of the first segment and cooperatively form an inwardly extending first concave shape when the first segment is in the expanded deployed configuration; and
a second set of a plurality of flexible support elements that extend in a second outward direction relative to the longitudinal axis and substantially opposite the first outward direction and are positioned within a second half of the first segment and cooperatively form an inwardly extending second concave shape substantially mirroring the first concave shape when the first segment is in the expanded deployed configuration, the first and second sets of plurality of flexible support elements cooperatively define the first architecture of the first segment when in the expanded deployed configuration, and
wherein the second segment comprises a third set of flexible support elements that cooperatively form the second segment and define the second architecture of the second segment when in the expanded deployed configuration, wherein each flexible support element of the first, second, and third sets comprises one or more electrodes provided thereon; and
a handle operably associated with the shaft, the handle having a first user-manipulatable mechanism for deployment of each of the first and second segments of the multi-segment end effector from the retracted configuration to the expanded deployed configuration and a second user-manipulatable mechanism, separate from the first user-manipulatable mechanism, for control of energy output by each of the first, second, and third segments of the multi-segment end effector.
2. The device of claim 1 , wherein the handle comprises an ergonomically-designed grip portion comprising a shape, size, and contour providing for ambidextrous use for both left and right handed use and conforming to hand anthropometrics to allow for at least one of an overhand grip style and an underhand grip style during use in a procedure.
3. The device of claim 2 , wherein user input for the first user-manipulatable mechanism is positioned on a top portion of the handle adjacent the grip portion and user input for the second user-manipulatable mechanism is positioned on side portions of the handle adjacent the grip portion.
4. The device of claim 3 , wherein the user inputs for the first and second user-manipulatable mechanisms are positioned a sufficient distance to one another to allow for simultaneous one-handed operation of both user inputs during a procedure.
5. The device of claim 1 , wherein the first user-manipulatable mechanism comprises a rack and pinion assembly providing movement of at least one of the first and second segments of the multi-segment end effector between the retracted and deployed configurations in response to input from a user-operated controller.
6. The device of claim 5 , wherein the rack and pinion assembly comprises a set of gears for receiving input from the user-operated controller and converting the input to linear motion of a rack member operably associated with at least one of the shaft and the multi-segment end effector.
7. The device of claim 6 , wherein the rack and pinion assembly comprises a gearing ratio sufficient to balance a stroke length and retraction and deployment forces.
8. The device of claim 5 , wherein the user-operated controller comprises a slider mechanism operably associated with the rack and pinion rail assembly, wherein movement of the slider mechanism in a rearward direction towards a proximal end of the handle results in transitioning of at least one of the first and second segments of the multi-segment end effector to the deployed configuration and movement of the slider mechanism in a forward direction towards a distal end of the handle results in transitioning of at least one of the first and second segments of the multi-segment end effector to the retracted configuration.
9. The device of claim 5 , wherein the user-operated controller comprises a scroll wheel mechanism operably associated with the rack and pinion rail assembly, wherein rotation of the wheel in a rearward direction towards a proximal end of the handle results in transitioning of at least one of the first and second segments of the multi-segment end effector to the deployed configuration and rotation of the wheel in a forward direction towards a distal end of the handle results in transitioning of at least one of the first and second segments of the multi-segment end effector to the retracted configuration.
10. The device of claim 1 , wherein the second user-manipulatable mechanism comprises a user-operated controller configured to be actuated between an active position and an inactive position to thereby control delivery of energy from the first and second segments of the multi-segment end effector.
11. A method for treating a condition within a nasal cavity of a patient, the method comprising:
providing a treatment device comprising: a multi-segment end effector operably associated with a shaft and comprising a first segment that is spaced apart from a separate and distinct second segment along a longitudinal axis along which a distal most portion of the shaft lies, wherein the second segment is positioned closer to a distal-most end of the shaft and the first segment is positioned closer to a proximal-most end of the shaft, each of the first and second segments is transformable between a retracted configuration and an expanded deployed configuration and comprises a respective architecture in the expanded deployed configuration, the first segment comprises a first architecture and the second segment comprises a second architecture that is different than the first architecture of the first segment, wherein the first segment comprises a first set of a plurality of flexible support elements that extend in a first outward direction relative to the longitudinal axis and are positioned within a first half of the first segment and cooperatively form an inwardly extending first concave shape when the first segment is in the expanded deployed configuration and a second set of a plurality of flexible support elements that extend in a second outward direction relative to the longitudinal axis and substantially opposite the first outward direction and are positioned within a second half of the first segment and cooperatively form an inwardly extending second concave shape substantially mirroring the first concave shape when the first segment is in the expanded deployed configuration, the first and second sets of plurality of flexible support elements cooperatively define the first architecture of the first segment when in the expanded deployed configuration, wherein the second segment comprises a third set of flexible support elements that cooperatively form the second segment and define the second architecture of the second segment when in the expanded deployed configuration, and wherein each flexible support element of the first, second, and third sets comprises one or more electrodes provided thereon; and a handle operably associated with the shaft, the handle having a first user-manipulatable mechanism for deployment of each of the first and second segments of the multi-segment end effector from the retracted configuration to the expanded deployed configuration and a second user-manipulatable mechanism, separate from the first user-manipulatable mechanism, for control of energy output by each of the first and second segments of the multi-segment end effector;
advancing the multi-segment end effector to one or more target sites within the nasal cavity of the patient, the multi-segment end effector configured for delivering energy to one or more target sites within the nasal cavity;
deploying, via user input with the first user-manipulatable mechanism on the handle, at least one of the first and second segments of the multi-segment end effector at the one or more target sites; and
delivering energy from at least one of the first and second segments of the multi-segment end effector, via user input with the second user-manipulatable mechanism, to tissue at the one or more target sites.
12. The method of claim 11 , wherein the handle comprises an ergonomically-designed grip portion comprising a shape, size, and contour providing for ambidextrous use for both left and right handed use and conforming to hand anthropometrics to allow for at least one of an overhand grip style and an underhand grip style during use in a procedure.
13. The method of claim 12 , wherein user input for the first user-manipulatable mechanism is positioned on a top portion of the handle adjacent the grip portion and user input for the second user-manipulatable mechanism is positioned on side portions of the handle adjacent the grip portion.
14. The method of claim 13 , wherein the user inputs for the first and second user-manipulatable mechanisms are positioned a sufficient distance to one another to allow for simultaneous one-handed operation of both user inputs during a procedure.
15. The method of claim 1 , wherein the first user-manipulatable mechanism comprises a rack and pinion assembly providing movement of at least one of the first and second segments of the multi-segment end effector between the retracted and deployed configurations in response to input from a user-operated controller.
16. The method of claim 15 , wherein the rack and pinion assembly comprises a set of gears for receiving input from the user-operated controller and converting the input to linear motion of a rack member operably associated with at least one of the shaft and the multi-segment end effector.
17. The method of claim 16 , wherein the rack and pinion assembly comprises a gearing ratio sufficient to balance a stroke length and retraction and deployment forces.
18. The method of claim 15 , wherein the user-operated controller comprises a slider mechanism operably associated with the rack and pinion rail assembly, wherein movement of the slider mechanism in a rearward direction towards a proximal end of the handle results in transitioning of at least one of the first and second segments of the multi-segment end effector to the deployed configuration and movement of the slider mechanism in a forward direction towards a distal end of the handle results in transitioning of at least one of the first and second segments of the multi-segment end effector to the retracted configuration.
19. The method of claim 15 , wherein the user-operated controller comprises a scroll wheel mechanism operably associated with the rack and pinion rail assembly, wherein rotation of the wheel in a rearward direction towards a proximal end of the handle results in transitioning of at least one of the first and second segments of the multi-segment end effector to the deployed configuration and rotation of the wheel in a forward direction towards a distal end of the handle results in transitioning of at least one of the first and second segments of the multi-segment end effector to the retracted configuration.
20. The method of claim 11 , wherein the second user-manipulatable mechanism comprises a user-operated controller configured to be actuated between at least an active position and an inactive position to thereby control delivery of energy from the first and second segments of the multi-segment end effector.