Systems and methods for treatment of visceral fat
A system for laparoscopic thermal treatment of visceral fat includes an elongate cooling probe configured for placement through a trocar, the probe including an elongate shaft having a proximal end and a distal end and having a maximum transverse dimension, and an expandable endpiece having a proximal end and a distal end, and including a collapsed state configured for placement through a channel of the trocar and an expanded state, the expanded state having a maximum outer diameter, the maximum outer diameter at least about twice the maximum transverse dimension of the shaft, wherein the proximal end of the endpiece is sealingly coupled to the distal end of the shaft, and a heat exchanger coupled to the cooling probe and configured to remove heat from the endpiece such that adipose tissue placed in contact with the endpiece can be cooled to a temperature of between about 2° C. and about + 1° C.
1 . A system for laparoscopic thermal treatment of visceral fat, comprising:
an elongate cooling probe; a cooling fluid source; and a negative pressure source;
said probe comprising:
an elongate shaft having a proximal end and a distal end and having a maximum transverse dimension, the shaft having a suction lumen extending between its proximal end and distal end;
an expandable cup having a proximal end and a distal end, and comprising a collapsed state configured for placement through a channel of a trocar and an expanded state, the expanded state having a maximum outer diameter and a maximum inner diameter, the maximum inner diameter of the cup being larger than the maximum transverse dimension of the shaft, wherein
the distal end of the cup in its expanded state defines an opening, and the cup in its expanded state defines an open interior space and is characterized by an inner surface, wherein the proximal end of the cup is coupled to the distal end of the shaft such that the suction lumen of the shaft is in fluid communication with the open interior space of the cup, and wherein
the proximal end of the shaft is coupled to the negative pressure source, said negative pressure source operable to draw adipose tissue adjacent the opening of the cup into the interior of the cup; and
one or more cooling elements disposed on an interior surface of the cup and configured to cool the adipose tissue within the interior of the cup; and
wherein the probe further comprises a cooling fluid lumen within the elongate shaft, said cooling fluid lumen in fluid communication with the cooling fluid source; and
the one or more cooling elements comprise one or more cooling tubes in fluid communication with the cooling fluid lumen.
2 . The system of claim 1 , wherein the cup comprises an elastic membrane having an inner surface and an outer surface.
3 . The system of claim 2 , wherein the inner surface of the elastic membrane is secured to the one or more cooling elements.
4 . The system of claim 2 , wherein the outer surface of the elastic membrane is secured to the one or more cooling elements.
5 . The system of claim 2 , wherein the inner surface of the elastic membrane is secured to one or more ribs.
6 . The system of claim 2 , wherein the outer surface of the elastic membrane is secured to one or more ribs.
7 . The system of claim 1 , wherein:
the one or more cooling elements comprise one or more Peltier junctions.
8 . The system of claim 7 , wherein the cup comprises an elastic membrane having an inner surface and an outer surface.
9 . A system for laparoscopic thermal treatment of visceral fat, comprising:
an elongate cooling probe and a negative pressure source;
said probe comprising:
an elongate shaft having a proximal end and a distal end and having a maximum transverse dimension, the shaft having a suction lumen extending between its proximal end and distal end;
an expandable cup having a proximal end and a distal end, and comprising a collapsed state configured for placement through a channel of a trocar and an expanded state, the expanded state having a maximum outer diameter and a maximum inner diameter, the maximum inner diameter of the cup being larger than the maximum transverse dimension of the shaft, wherein
the distal end of the cup in its expanded state defines an opening, and the cup in its expanded state defines an open interior space and is characterized by an inner surface, wherein the proximal end of the cup is coupled to the distal end of the shaft such that the suction lumen of the shaft is in fluid communication with the open interior space of the cup, and wherein
the proximal end of the shaft is coupled to the negative pressure source, said negative pressure source operable to draw adipose tissue adjacent the opening of the cup into the interior of the cup; and
one or more cooling elements disposed on an interior surface of the cup and configured to cool the adipose tissue within the interior of the cup;
wherein the cup comprises an inflatable balloon; and wherein the balloon comprises an inner layer and an outer layer, the outer layer having an outer surface, and a circumferential fold between the inner layer and the outer layer, extending around the opening of the distal end of the cup.
10 . The system of claim 9 , wherein the inner layer of the balloon is secured at a plurality of locations such that inflation of the balloon does not cause the inner layer to significantly expand inwardly, thus preserving the patency of the interior of the cup when the balloon is expanded.
11 . The system of claim 10 , wherein an internal surface of the inner layer of the balloon is secured directly to an internal surface of the outer layer of the balloon at one or more of the plurality of locations.
12 . The system of claim 10 , wherein an internal surface of the inner layer of the balloon is secured to one or more of the one or more cooling elements at one or more of the plurality of locations.
13 . The system of claim 10 , wherein an internal surface of the inner layer of the balloon is secured to one or more ribs extending along a surface of the cup from the proximal end of the cup to the distal end of the cup at one or more of the plurality of locations.
14 . The system of claim 13 , wherein the balloon maintains a particular inflated shape defining the expanded state of the cup by the securement of the internal surface of the inner layer of the balloon to the one or more ribs at the plurality of locations.
15 . A system for laparoscopic thermal treatment of visceral fat, comprising:
an elongate cooling probe, a cooling fluid source, and a negative pressure source;
said probe comprising:
an elongate shaft having a proximal end and a distal end and having a maximum transverse dimension, the shaft having a suction lumen extending between its proximal end and distal end;
an expandable cup having a proximal end and a distal end, and comprising a collapsed state configured for placement through a channel of a trocar and an expanded state, the expanded state having a maximum outer diameter and a maximum inner diameter, the maximum inner diameter of the cup being larger than the maximum transverse dimension of the shaft, wherein
the distal end of the cup in its expanded state defines an opening, and the cup in its expanded state defines an open interior space and is characterized by an inner surface, wherein the proximal end of the cup is coupled to the distal end of the shaft such that the suction lumen of the shaft is in fluid communication with the open interior space of the cup, and wherein
the proximal end of the shaft is coupled to the negative pressure source, said negative pressure source operable to draw adipose tissue adjacent the opening of the cup into the interior of the cup; and
one or more cooling elements disposed on an interior surface of the cup and configured to cool the adipose tissue within the interior of the cup; and wherein
the probe further comprises a cooling fluid inlet lumen and a cooling fluid outlet lumen within the elongate shaft, said cooling fluid inlet lumen in fluid communication with the cooling fluid source; and
the cup comprises a cup-shaped cooling balloon attached to the shaft, with an inner balloon disposed within the cup-shaped balloon defining a flow space for cooling fluid between the inner balloon and the cooling balloon, from the cooling fluid inlet lumen and the cooling fluid outlet lumen.
16 . The system of claim 15 , wherein the cup comprises an elastic membrane having an inner surface and an outer surface.