US2022039818A1PendingUtilityA1

Shallow surface cryotherapy applicators and related technology

Assignee: ZELTIQ AESTHETICS INCPriority: Apr 26, 2017Filed: Jun 17, 2021Published: Feb 10, 2022
Est. expiryApr 26, 2037(~10.7 yrs left)· nominal 20-yr term from priority
A61F 7/02A61B 2017/00561A61F 2007/0239A61F 2007/029A61F 2007/0075A61B 2017/308A61B 2018/00041A61B 17/30A61B 2018/00791A61F 2007/0093A61B 2018/0231A61B 18/0218A61B 2018/00047A61B 2018/00714
62
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Claims

Abstract

Systems for treating a subject's tissue can include a thermally conductive cup with vacuum features configured to facilitate removal of air located between the cup and the subject's skin. The vacuum features can extend along cup to provide airflow paths to a vacuum port. The applicator can cool and/or heat the retained tissue to affect targeted tissue. After the treat period, the vacuum can be reduced or stop and the applicator can be removed from the subject.

Claims

exact text as granted — not AI-modified
What is claimed is: 
     
         1 . An apparatus for treating a human subject, comprising:
 an applicator configured to cool the subject's skin and including
 a cup defining a tissue-receiving cavity and including a temperature-controlled surface, 
 at least one vacuum port, and 
 air-egress features extending along the temperature-controlled surface to provide airflow paths to the at least one vacuum port for removing air between the subject's skin and the cup while the at least one vacuum port provides a vacuum to draw the subject's tissue toward the temperature-controlled surface, and wherein the air-egress features include channels and/or ridges. 
   
     
     
         2 . The apparatus of  claim 1 , wherein the cup and vacuum port are configured such that when a vacuum is applied the subject's tissue substantially fills an entire volume of the tissue-receiving cavity except for small gaps created by the air-egress features formed on a surface of the cup. 
     
     
         3 . The apparatus of  claim 1 , further comprising:
 a pressurization device in fluid communication with the tissue-receiving cavity via the at least one vacuum port; and   a controller programmed to cause the pressurization device to operate to hold the subject's skin in thermal contact with the temperature-controlled surface while the cup conductively cools the tissue.   
     
     
         4 . The apparatus of  claim 3 , wherein regions of the temperature-controlled surface are located between adjacent air-egress features, and wherein the controller is programmed to cause the pressurization device to provide a sufficient vacuum to keep substantially all of each region in thermal contact with the subject's skin. 
     
     
         5 . The apparatus of  claim 1 , further comprising a pressurization device configured to draw a sufficient vacuum to eliminate air gaps between the subject's tissue and the temperature-controlled surface such that substantially no air gaps impair non-invasively cooling of the subject's subcutaneous lipid-rich cells to a temperature lower than about 0° C. 
     
     
         6 . The apparatus of  claim 1 , wherein the air-egress features are configured to maintain airflow paths to the at least one vacuum port when the subject's tissue is operably received within the tissue-receiving cavity and a 12 inches Hg vacuum is drawn. 
     
     
         7 . The apparatus of  claim 1 , wherein the cup is configured to non-invasively cool the subject's tissue, which is held in the tissue-receiving cavity, an amount sufficient to be biologically effective in damaging and/or reducing subcutaneous lipid-rich cells in the subject's tissue. 
     
     
         8 . The apparatus of  claim 1 , wherein most of the temperature-controlled surface is located directly between the air-egress features. 
     
     
         9 . The apparatus of  claim 1 , wherein a ratio of a sum of areas of regions of the temperature-controlled surface located directly between air-egress features to a total area of the temperature-controlled surface is greater than  0 . 5 . 
     
     
         10 . The apparatus of  claim 1 , wherein the air-egress features extend across most of a width and extend across most of a length of the tissue-receiving cavity. 
     
     
         11 . The apparatus of  claim 1 , wherein the air-egress features are a network of elongate ridges and/or channels. 
     
     
         12 . The apparatus of  claim 1 , wherein each of the air-egress features includes a first end spaced apart from a mouth of the cup, a second end positioned proximate the at least one vacuum port, and a main portion extending between the first and second ends and being dimensioned to allow thermal contact to be maintained between the subject's skin and an area of the temperature-controlled surface surrounding the first end and the main portion. 
     
     
         13 . The apparatus of  claim 1 , wherein the air-egress features spread outwardly from a central region of the cup. 
     
     
         14 . The apparatus of  claim 1 , wherein each of the air-egress features has a height of about 1 mm to 2 mm, a width about 1 mm to 2 mm, and a length of at least 10 mm. 
     
     
         15 . The apparatus of  claim 1 , wherein the at least one vacuum port includes a plurality of vacuum ports each located at an end of a respective one of the air-egress features. 
     
     
         16 . An apparatus for treating a human subject, comprising:
 an applicator configured to cool the subject's tissue and including
 a cup having an interior surface at least partially defining a tissue-receiving cavity, wherein at least a portion of the interior surface is temperature-controlled, and 
 a vacuum port extending through a central portion of the interior surface, 
 wherein a topography of the interior surface is configured to form airflow paths extending between the vacuum port and a peripheral portion of the interior surface when the subject's tissue is operably received within the cavity, the cup and vacuum port being configured such that when a vacuum is applied the subject's tissue substantially fills an entire volume of the cup except for small gaps created by air-egress features formed on a surface of the cup. 
   
     
     
         17 . The apparatus of  claim 16 , further comprising airflow elements positioned along the interior surface and extending between the vacuum port and the peripheral portion and having heights sufficient to maintain the airflow paths when the subject's skin is drawn against most of the interior surface. 
     
     
         18 . A method for treating a human subject, comprising:
 applying an applicator to the subject's skin;   drawing a vacuum in a tissue-receiving cavity of the applicator to draw the subject's tissue toward a conductive surface of a temperature-controlled cup of the applicator to substantially fill an entire volume of the cup while air-egress features facing the tissue-receiving cavity maintain egress airflow paths for removing air located between the subject's skin and the temperature-controlled cup; and   extracting heat from the subject's tissue via the conductive surface to cool the tissue an amount sufficient to be biologically effective in selectively damaging and/or reducing the subject's subcutaneous lipid-rich cells.   
     
     
         19 . The method of  claim 18 , further comprising maintaining a sufficient vacuum to hold the subject's skin in thermal contact with substantially all of the conductive surface facing the tissue-receiving cavity while extracting heat from the subject's tissue. 
     
     
         20 . The method of  claim 18 , further comprising drawing tissue into the tissue-receiving cavity such that substantially all of the subject's skin located within the tissue-receiving cavity is in thermal contact with the conductive surface.

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