Methods and devices to treat nasal airways
Methods and devices for treating nasal airways are provided. Such devices and methods may improve airflow through an internal and/or external nasal valve, and comprise the use of mechanical re-shaping, energy application and other treatments to modify the shape, structure, and/or air flow characteristics of an internal nasal valve, an external nasal valve or other nasal airways.
1. A method for reshaping or remodeling a nasal valve area of a nasal airway, without leaving behind an implant or creating an incision, the method comprising:
advancing an expandable treatment element at a distal end of a shaft of a nasal tissue treatment device into the nasal airway, wherein the treatment element comprises;
multiple expandable segments made of a shape memory material; and
an energy delivery element;
allowing the multiple expandable segments of the expandable treatment element to expand within the nasal airway, to contact mucosal tissue lining the nasal airway and increase a diameter of the nasal airway in the nasal valve area;
delivering energy from the energy delivery element through the mucosal tissue to change a property of an underlying tissue at a selected tissue depth below the mucosal tissue; and
removing the expandable treatment element from the nasal airway,
wherein the diameter of the nasal airway in the nasal valve area remains at least partially increased after the expandable treatment element is removed and the underlying tissue heals.
2. The method of claim 1 , further comprising sensing a temperature of the mucosal tissue with at least one heat sensor coupled with at least one of the expandable segments.
3. The method of claim 2 , further comprising adjusting an amount of the radiofrequency energy delivered by the energy delivery element, based on the sensed temperature.
4. The method of claim 1 , wherein the energy delivery element further comprises multiple radiofrequency electrodes, and wherein delivering the energy comprises individually controlling delivery of radiofrequency energy by any one or more of the multiple radiofrequency electrodes.
5. The method of claim 1 , wherein the shape memory material of the expandable segments comprises a shape memory alloy, and wherein allowing the expandable segments to expand comprises exposing the expandable segments to a temperature above a transition temperature.
6. The method of claim 5 , wherein exposing the expandable segments to the temperature comprises activating the energy delivery element.
7. The method of claim 1 , wherein the shape memory material of the expandable segments is selected from the group consisting of nickel-cobalt, nickel-titanium, shape memory polymers, and biodegradable polymers.
8. The method of claim 1 , wherein the energy delivery element is non-penetrating.