EP2861184A2

Breast implant with analyte sensors responsive to external power source

Abstract

This record has no abstract on file.

Term

6.7 yearsto projected expiry

Projected expiry 11 June 2033, counted from filing; an application has no term until it is granted.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

1 claim: 1 independent, 0 dependent

  1. 1
    Claims of equivalent WO 2013188430 A2 A breast implant comprising:a shell configured to be substantially filled with a viscous material;and a plurality of sensor modules attached to the shell and positioned at a distance from each other, each of the plurality of sensor modules oriented to detect one or more analytes in a fluid adjacent to the shell, wherein each of the plurality of sensor modules includes a unique identifier and is configured to utilize energy transmitted from an external source. The breast implant of claim 1, wherein the shell comprises: the viscous material substantially filling an interior region of the shell. The breast implant of claim 1, wherein the shell comprises: at least one silicone -based barrier layer substantially filled with silicone gel. The breast implant of claim 1, wherein the shell comprises: at least two barrier layers. The breast implant of claim 1, wherein the shell comprises: at least one barrier layer including at least one cavity, the at least one cavity with an outer surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. The breast implant of claim 1, wherein the shell comprises: at least one barrier layer including at least one aperture, the at least one aperture with a rim surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. The breast implant of claim 1 , wherein the plurality of sensor modules attached to the shell are attached in an approximately even distribution. The breast implant of claim 1 , wherein the plurality of sensor modules attached to the shell are attached to an external surface of the shell and wherein the plurality of sensor modules attached to the shell are separated by distances of approximately 5 to approximately 8 centimeters (cm). 9. The breast implant of claim 1 , wherein the plurality of sensor modules attached to the shell comprise: at least one of the plurality of sensor modules configured to detect at least two of the one or more analytes in the fluid adjacent to the shell, wherein the at least two analytes are of different types. 10. The breast implant of claim 1, wherein the plurality of sensor modules attached to the shell comprise: at least two sensor units in each of the plurality of sensor modules. 11. The breast implant of claim 1 , wherein each of the plurality of sensor modules attached to the shell comprise: an antenna. 12. The breast implant of claim 1 , wherein each of the plurality of sensor modules attached to the shell comprise: an energy harvesting unit. 13. The breast implant of claim 1 , wherein each of the plurality of sensor modules attached to the shell comprise: a radio frequency identification (RFID) unit. 14. The breast implant of claim 1 , wherein the plurality of sensor modules attached to the shell comprise at least one of: a hydrogel-based sensor, a CMOS sensor, or an optical-based sensor. 15. The breast implant of claim 1, wherein the plurality of sensor modules attached to the shell comprise: a plurality of reservoirs, each of the plurality of reservoirs including a removable cover. 16. The breast implant of claim 1, wherein the plurality of sensor modules attached to the shell comprise: a plurality of sensor units. The breast implant of claim 1 , wherein the plurality of sensor modules attached to the shell are configured to detect one or more biological analytes arising from biological tissue. The breast implant of claim 1 , wherein the plurality of sensor modules are entirely attached to an outer surface of the shell. The breast implant of claim 1 , wherein the plurality of sensor modules are positioned within a plurality of cavities in the shell. The breast implant of claim 1 , wherein the plurality of sensor modules are positioned within a plurality of apertures in the shell. The breast implant of claim 1 , wherein the plurality of sensor modules are configured to be replaceable. The breast implant of claim 1 , wherein the unique identifier for each of the plurality of sensor modules comprises: an alphanumeric code. The breast implant of claim 1 , wherein the unique identifier for each of the plurality of sensor modules comprises: a positional identifier. The breast implant of claim 1 , wherein each of the plurality of sensor modules is configured to utilize energy transmitted from an ex-vivo source. The breast implant of claim 1, comprising: a porous cover positioned over at least one of the plurality of sensor modules. The breast implant of claim 1, comprising: a processor. A breast implant comprising: a shell configured to be substantially filled with a viscous material;a plurality of sensor modules attached to the shell and positioned at a distance from each other, each of the plurality of sensor modules oriented to detect one or more analytes in a fluid adjacent to the shell, wherein each of the plurality of sensor modules includes a unique identifier;at least one antenna;an energy harvesting unit attached to the at least one antenna;and at least one connection between the energy harvesting unit and each of the plurality of sensor modules. The breast implant of claim 27, wherein the shell comprises: the viscous material substantially filling an interior region of the shell. The breast implant of claim 27, wherein the shell comprises: at least one silicone -based barrier layer substantially filled with silicone gel. The breast implant of claim 27, wherein the shell comprises: at least two barrier layers. The breast implant of claim 27, wherein the shell comprises: at least one barrier layer including at least one cavity, the at least one cavity with an outer surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. The breast implant of claim 27, wherein the shell comprises: at least one barrier layer including at least one aperture, the at least one aperture with a rim surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. The breast implant of claim 27, wherein the plurality of sensor modules attached to the shell are attached in an approximately even distribution. The breast implant of claim 27, wherein the plurality of sensor modules attached to the shell are attached to an external surface of the shell and wherein the plurality of sensor modules attached to the shell are separated by distances of approximately 5 to approximately 8 centimeters (cm). The breast implant of claim 27, wherein the plurality of sensor modules attached to the shell comprise: at least one of the plurality of sensor modules configured to detect at least two analytes in the fluid adjacent to the shell, wherein the at least two of the one or more analytes are of different types. The breast implant of claim 27, wherein the plurality of sensor modules attached to the shell comprise: at least two sensor units in each of the plurality of sensor modules. The breast implant of claim 27, wherein the plurality of sensor modules attached to the shell comprise at least one of: a hydrogel-based sensor, a CMOS sensor, or an optical-based sensor. The breast implant of claim 27, wherein the plurality of sensor modules attached to the shell comprise: a plurality of reservoirs, each of the plurality of reservoirs including a removable cover. The breast implant of claim 27, wherein the plurality of sensor modules attached to the shell comprise: a plurality of sensor units. The breast implant of claim 27, wherein the plurality of sensor modules are configured to detect one or more biological analytes arising from biological tissue. The breast implant of claim 27, wherein the plurality of sensor modules are entirely attached to the shell outer surface. The breast implant of claim 27, wherein the plurality of sensor modules are positioned within a plurality of cavities in the shell. The breast implant of claim 27, wherein the plurality of sensor modules are positioned within a plurality of apertures in the shell. The breast implant of claim 27, wherein the plurality of sensor modules are configured to be replaceable. The breast implant of claim 27, wherein the unique identifier for each of the plurality of sensor modules comprises: an alphanumeric code. The breast implant of claim 27, wherein the unique identifier for each of the plurality of sensor modules comprises: a positional identifier. The breast implant of claim 27, wherein the at least one antenna comprises: a radio frequency (RF) antenna. The breast implant of claim 27, wherein the energy harvesting unit attached to the at least one antenna comprises: a radio frequency identification (RFID) unit. The breast implant of claim 27, wherein the energy harvesting unit attached to the at least one antenna comprises: an optical energy harvesting unit. The breast implant of claim 27, wherein the energy harvesting unit attached to the at least one antenna comprises: an inductive energy harvesting unit. The breast implant of claim 27, wherein the energy harvesting unit attached to the at least one antenna is configured to harvest energy originating ex-vivo when the breast implant is in use. The breast implant of claim 27, wherein the at least one connection between the energy harvesting unit and each of the plurality of sensor modules comprises: a wire connector. The breast implant of claim 27, comprising: a porous cover positioned over at least one of the plurality of sensor modules. The breast implant of claim 27, comprising: a processor operably attached to the at least one antenna. The breast implant of claim 27, comprising: a switch operably attached to the at least one antenna. A breast implant comprising: a shell configured to be substantially filled with a viscous material;a plurality of sensor modules attached to the shell, the plurality of sensor modules oriented to detect one or more analytes in a fluid adjacent to the shell and wherein each of the plurality of sensor modules includes a unique identifier;at least one optically powered transducer configured to harvest optical energy from a source external to the breast implant;and at least one connector operably connecting the at least one optically powered transducer and the plurality of sensor modules. The breast implant of claim 56, wherein the shell comprises: the viscous material substantially filling an interior region of the shell. The breast implant of claim 56, wherein the shell comprises: at least one silicone -based barrier layer substantially filled with silicone gel. The breast implant of claim 56, wherein the shell comprises: at least two barrier layers. The breast implant of claim 56, wherein the shell comprises: at least one barrier layer including at least one cavity, the at least one cavity with an outer surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. The breast implant of claim 56, wherein the shell comprises: at least one barrier layer including at least one aperture, the at least one aperture with a rim surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. The breast implant of claim 56, wherein the plurality of sensor modules attached to the shell are attached in an approximately even distribution. The breast implant of claim 56, wherein the plurality of sensor modules attached to the shell are attached to an external surface of the shell and wherein the plurality of sensor modules attached to the shell are separated by distances of approximately 5 to approximately 8 centimeters (cm). The breast implant of claim 56, wherein the plurality of sensor modules attached to the shell comprise: at least one of the plurality of sensor modules configured to detect at least two analytes in fluid adjacent to the shell, wherein the at least two analytes are of different types. The breast implant of claim 56, wherein the plurality of sensor modules attached to the shell comprise: at least two sensor units in each of the plurality of sensor modules. The breast implant of claim 56, wherein each of the plurality of sensor modules attached to the shell comprise: a hydrogel-based sensor, a CMOS sensor, or an optical-based sensor. The breast implant of claim 56, wherein the plurality of sensor modules attached to the shell comprise: a plurality of sensor units. The breast implant of claim 56, wherein the plurality of sensor modules are entirely attached to an outer surface of the shell. The breast implant of claim 56, wherein the plurality of sensor modules are positioned within a plurality of cavities in the shell. The breast implant of claim 56, wherein the plurality of sensor modules are positioned within a plurality of apertures in the shell. The breast implant of claim 56, wherein the unique identifier for each of the plurality of sensor modules comprises: an alphanumeric code. 72. The breast implant of claim 56, wherein the unique identifier for each of the plurality of sensor modules comprises: a positional identifier. 73. The breast implant of claim 56, wherein the at least one connector comprises: a wire connector. 74. The breast implant of claim 56, comprising: a porous cover positioned over at least one of the plurality of sensor modules. 75. A breast implant, comprising: a shell configured to be substantially filled with a viscous material;at least one energy-harvesting unit configured to receive non-electrical energy from an external source and convert the received energy into electrical energy;a plurality of sensor modules attached to the shell, the sensor modules configured to detect one or more biological analytes arising from biological tissue;a connector between the at least one energy-harvesting unit and the plurality of sensor modules, the connector configured to transmit electrical energy from the at least one energy-harvesting unit to the plurality of sensor modules;and at least one transmission unit attached to the plurality of sensor modules, the at least one transmission unit configured to initiate a signal in response to one or more of the plurality of sensor modules. 76. The breast implant of claim 75, wherein the plurality of sensor modules are positioned on the shell with a distance between the sensor modules. 77. The breast implant of claim 75, comprising: at least one switch attached to both the at least one transmission unit and the plurality of sensor modules, the at least one switch configured to activate the transmission unit in response to a signal from one or more of the sensor modules. 78. A breast implant comprising: a shell configured to be substantially filled with a viscous material;- I l l - at least one fluid-permeable cover, the cover completely enveloping the shell;and a plurality of sensor modules attached to the shell and positioned at a distance from each other, each of the sensor modules oriented to detect one or more analytes in a fluid between the shell and the cover, wherein each of the plurality of sensor modules includes a unique identifier and is configured to utilize energy transmitted from an external source. The breast implant of claim 78, wherein the shell comprises: the viscous material substantially filling an interior region of the shell. The breast implant of claim 78, wherein the shell comprises: at least one silicone -based barrier layer substantially filled with silicone gel. The breast implant of claim 78, wherein the shell comprises: at least two barrier layers. The breast implant of claim 78, wherein the shell comprises: at least one barrier layer including at least one cavity, the at least one cavity with an outer surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. The breast implant of claim 78, wherein the shell comprises: at least one barrier layer including at least one aperture, the at least one aperture with a rim surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. The breast implant of claim 78, wherein the at least one fluid-permeable cover comprises: a mesh structure. The breast implant of claim 78, wherein the at least one fluid-permeable cover comprises: an analyte-permeable cover. The breast implant of claim 78, wherein the at least one fluid-permeable cover comprises: a porous structure. The breast implant of claim 78, wherein the at least one fluid-permeable cover is configured to completely envelop the shell with a uniform gap between the cover and the shell. The breast implant of claim 78, wherein the at least one fluid-permeable cover has an internal diameter that is larger than a largest exterior diameter of the shell. The breast implant of claim 78, wherein the at least one fluid-permeable cover is approximately a same shape as the shell. The breast implant of claim 78, wherein the plurality of sensor modules attached to the shell are attached in an approximately even distribution. The breast implant of claim 78, wherein the plurality of sensor modules attached to the shell are attached to an external surface of the shell and wherein the plurality of sensor modules attached to the shell are separated by distances of approximately 5 to approximately 8 centimeters (cm). The breast implant of claim 78, wherein the plurality of sensor modules attached to the shell comprise: at least one of the plurality of sensor modules configured to detect at least two of the one or more analytes in the fluid adjacent to the shell, wherein the at least two analytes are of different types. The breast implant of claim 78, wherein the plurality of sensor modules attached to the shell comprise: at least two sensor units in each of the plurality of sensor modules. The breast implant of claim 78, wherein each of the plurality of sensor modules attached to the shell comprise: an antenna. The breast implant of claim 78, wherein each of the plurality of sensor modules attached to the shell comprise: an energy harvesting unit. 96. The breast implant of claim 78, wherein each of the plurality of sensor modules attached to the shell comprise: a radio frequency identification (RFID) unit. 97. The breast implant of claim 78, wherein the plurality of sensor modules attached to the shell comprise at least one of: a hydrogel-based sensor, a CMOS sensor, or an optical-based sensor. 98. The breast implant of claim 78, wherein the plurality of sensor modules attached to the shell comprise: a plurality of reservoirs, each of the plurality of reservoirs including a removable, fluid-impermeable cover. 99. The breast implant of claim 78, wherein the plurality of sensor modules attached to the shell comprise: a plurality of sensor units. 100. The breast implant of claim 78, wherein the plurality of sensor modules attached to the shell are configured to detect one or more biological analytes arising from biological tissue. 101. The breast implant of claim 78, wherein the plurality of sensor modules are entirely attached to the shell outer surface. 102. The breast implant of claim 78, wherein the plurality of sensor modules are positioned within a plurality of cavities in the shell. 103. The breast implant of claim 78, wherein the plurality of sensor modules are positioned within a plurality of apertures in the shell. 104. The breast implant of claim 78, wherein the plurality of sensor modules are configured to be rechargeable. 105. The breast implant of claim 78, wherein the unique identifier for each of the plurality of sensor modules comprises: an alphanumeric code. 106. The breast implant of claim 78, wherein the unique identifier for each of the plurality of sensor modules comprises: a positional identifier. 107. The breast implant of claim 78, wherein each of the plurality of sensor modules is configured to utilize energy transmitted from an ex-vivo source. 108. The breast implant of claim 78, comprising: a processor. 109. The breast implant of claim 78, comprising: at least one tether connecting a surface of the at least one fluid-permeable cover and a surface of the shell. 110. A breast implant comprising: a shell configured to be substantially filled with a viscous material;at least one fluid-permeable cover, the cover completely enveloping the shell;a plurality of sensor modules attached to the shell and positioned at a distance from each other, each of the plurality of sensor modules oriented to detect one or more analytes in a fluid between the shell and the cover, wherein each of the plurality of sensor modules includes a unique identifier;at least one antenna;an energy harvesting unit attached to the at least one antenna;and at least one connection between the energy harvesting unit and each of the plurality of sensor modules. 111. The breast implant of claim 110, wherein the shell comprises: the viscous material substantially filling an interior region of the shell. 112. The breast implant of claim 110, wherein the shell comprises: at least one silicone -based barrier layer substantially filled with silicone gel. 113. The breast implant of claim 110, wherein the shell comprises: at least two barrier layers. 114. The breast implant of claim 110, wherein the shell comprises: at least one barrier layer including at least one cavity, the at least one cavity with an outer surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. 115 The breast implant of claim 110, wherein the shell comprises: at least one barrier layer including at least one aperture, the at least one aperture with a rim surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. 116. The breast implant of claim 110, wherein the at least one fluid-permeable cover comprises: a mesh structure. 117. The breast implant of claim 110, wherein the at least one fluid-permeable cover comprises: an analyte-permeable cover. 118. The breast implant of claim 110, wherein the at least one fluid-permeable cover comprises: a porous structure. 119. The breast implant of claim 110, wherein the cover is configured to completely envelop the shell with a uniform gap between the at least one fluid-permeable cover and the shell. 120. The breast implant of claim 110, wherein the at least one fluid-permeable cover has an internal diameter that is larger than an largest exterior diameter of the shell. 121. The breast implant of claim 110, wherein the at least one fluid-permeable cover is approximately a same shape as the shell. 122. The breast implant of claim 110, wherein the plurality of sensor modules attached to the shell are attached in an approximately even distribution. 123. The breast implant of claim 110, wherein the plurality of sensor modules attached to the shell are attached to an external surface of the shell and wherein the plurality of sensor modules attached to the shell are separated by distances of approximately 5 to approximately 8 centimeters (cm). 124. The breast implant of claim 110, wherein the plurality of sensor modules attached to the shell comprise: at least one of the plurality of sensor modules configured to detect at least two analytes in the fluid adjacent to the shell, wherein the at least two of the one or more analytes are of different types. 125. The breast implant of claim 110, wherein the plurality of sensor modules attached to the shell comprise: at least two sensor units in each of the plurality of sensor modules. 126. The breast implant of claim 110, wherein the plurality of sensor modules attached to the shell comprise at least one of: a hydrogel-based sensor, a CMOS sensor, or an optical-based sensor. 127. The breast implant of claim 110, wherein the plurality of sensor modules attached to the shell comprise: a plurality of reservoirs, each of the plurality of reservoirs including a removable, fluid-impermeable cover. 128. The breast implant of claim 110, wherein the plurality of sensor modules attached to the shell comprise: a plurality of sensor units. 129. The breast implant of claim 110, wherein the plurality of sensor modules are configured to detect one or more biological analytes arising from biological tissue. 130. The breast implant of claim 110, wherein the plurality of sensor modules are entirely attached to a shell outer surface. 131. The breast implant of claim 110, wherein the plurality of sensor modules are positioned within a plurality of cavities in the shell. 132. The breast implant of claim 110, wherein the plurality of sensor modules are positioned within a plurality of apertures in the shell. The breast implant of claim 110, wherein the plurality of sensor modules configured to be rechargeable. The breast implant of claim 110, wherein the unique identifier for each of the plurality of sensor modules comprises: an alphanumeric code. The breast implant of claim 110, wherein the unique identifier for each of the plurality of sensor modules comprises: a positional identifier. The breast implant of claim 110, wherein the at least one antenna comprises a radio frequency (RF) antenna. 137. The breast implant of claim 110, wherein the energy harvesting unit attached to the at least one antenna comprises: a radio frequency identification (RFID) unit. 138. The breast implant of claim 110, wherein the energy harvesting unit attached to the at least one antenna comprises: an optical energy harvesting unit. 139. The breast implant of claim 110, wherein the energy harvesting unit attached to the at least one antenna comprises: an inductive energy harvesting unit. 140. The breast implant of claim 110, wherein the energy harvesting unit attached to the at least one antenna is configured to harvest energy originating ex-vivo when the breast implant is in use. 141. The breast implant of claim 110, wherein the at least one connection between the energy harvesting unit and each of the plurality of sensor modules comprises: a wire connection. 142. The breast implant of claim 110, comprising: a processor operably attached to the at least one antenna. 143. The breast implant of claim 110, comprising: a switch operably attached to the at least one antenna. 144. The breast implant of claim 110, comprising: at least one tether connecting a surface of the cover and a surface of the shell. 145. A breast implant comprising: a shell configured to be substantially filled with a viscous material;at least one fluid-permeable cover, the cover completely enveloping the shell;a plurality of sensor modules attached to the shell, the plurality of sensor modules oriented to detect one or more analytes in a fluid between the shell and the cover, and wherein each of the plurality of sensor modules includes a unique identifier;at least one optically powered transducer configured to harvest optical energy from a source external to the breast implant;and at least one connector operably connecting the at least one optically powered transducer and the plurality of sensor modules. 146. The breast implant of claim 145, wherein the shell comprises: the viscous material substantially filling an interior region of the shell. 147. The breast implant of claim 145, wherein the shell comprises: at least one silicone -based barrier layer substantially filled with silicone gel. 148. The breast implant of claim 145, wherein the shell comprises: at least two barrier layers. 149. The breast implant of claim 145, wherein the shell comprises: at least one barrier layer including at least one cavity, the at least one cavity with an outer surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. 150. The breast implant of claim 145, wherein the shell comprises: at least one barrier layer including at least one aperture, the at least one aperture with a rim surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. 151. The breast implant of claim 145, wherein the at least one fluid-permeable cover comprises: a mesh structure. 152. The breast implant of claim 145, wherein the at least one fluid-permeable cover comprises: an analyte-permeable cover. 153. The breast implant of claim 145, wherein the at least one fluid-permeable cover comprises: a porous structure. 154. The breast implant of claim 145, wherein the at least one fluid-permeable cover is configured to completely envelop the shell with a uniform gap between the at least one fluid-permeable cover and the shell. 155. The breast implant of claim 145, wherein the at least one fluid-permeable cover has an internal diameter that is larger than a largest exterior diameter of the shell. 156. The breast implant of claim 145, wherein the plurality of sensor modules attached to the shell are attached in an approximately even distribution. 157. The breast implant of claim 145, wherein the plurality of sensor modules attached to the shell are attached to an external surface of the shell and wherein the plurality of sensor modules attached to the shell are separated by distances of approximately 5 to approximately 8 centimeters (cm). 158. The breast implant of claim 145, wherein the plurality of sensor modules attached to the shell comprise: at least one of the plurality of sensor modules configured to detect at least two analytes in the fluid adjacent to the shell, wherein the at least two analytes are of different types. 159. The breast implant of claim 145, wherein the plurality of sensor modules attached to the shell comprise: at least two sensor units in each of the plurality of sensor modules. 160. The breast implant of claim 145, wherein each of the plurality of sensor modules attached to the shell comprise: a hydrogel-based sensor, a CMOS sensor, or an optical-based sensor. 161. The breast implant of claim 145, wherein the plurality of sensor modules attached to the shell comprise: a plurality of sensor units. 162. The breast implant of claim 145, wherein the plurality of sensor modules are entirely attached to an outer surface of the shell. 163. The breast implant of claim 145, wherein the plurality of sensor modules are positioned within a plurality of cavities in the shell. 164. The breast implant of claim 145, wherein the plurality of sensor modules are positioned within a plurality of apertures in the shell. 165. The breast implant of claim 145, wherein the unique identifier for each of the plurality of sensor modules comprises: an alphanumeric code. 166. The breast implant of claim 145, wherein the unique identifier for each of the plurality of sensor modules comprises: a positional identifier. 167. The breast implant of claim 145, wherein the at least one connector comprises: a wire connection. 168. The breast implant of claim 145, wherein the at least one optically powered transducer is attached to the shell, and wherein the at least one fluid-permeable cover is translucent. 169. The breast implant of claim 145, wherein the at least one optically powered transducer is attached to the at least one fluid-permeable cover, and includes an optical receiver positioned on an exterior surface of the at least one fluid- permeable cover. The breast implant of claim 145, comprising: at least one tether connecting a surface of the at least one fluid-permeable cover and a surface of the shell. A breast implant, comprising: a shell configured to be substantially filled with a viscous material;at least one fluid-permeable cover, the cover completely enveloping the shell;at least one energy-harvesting unit configured to receive non-electrical energy from an external source and convert the received energy into electrical energy;a plurality of sensor modules attached to the shell, the sensor modules configured to detect one or more biological analytes arising from biological tissue;a connector between the at least one energy-harvesting unit and the plurality of sensor modules, the connector configured to transmit electrical energy from the at least one energy-harvesting unit to the plurality of sensor modules;and at least one transmission unit attached to the plurality of sensor modules, the at least one transmission unit configured to initiate a signal in response to one or more of the plurality of sensor modules. The breast implant of claim 171, wherein the plurality of sensor modules are positioned on the shell with a distance between the sensor modules. The breast implant of claim 171, comprising: at least one switch attached to both the at least one transmission unit and the plurality of sensor modules, the at least one switch configured to activate the transmission unit in response to a signal from one or more of the sensor modules. A breast implant comprising: a shell configured to be substantially filled with a viscous material;a plurality of projections extending from an external surface of the shell, the projections forming a plurality of compartments adjacent to the external surface of the shell;at least one fluid-permeable cover attached to the plurality of projections, the cover completely enveloping the shell and the plurality of projections;and a plurality of sensor modules attached to the shell, each of the sensor modules oriented to detect one or more analytes in a fluid within one of the plurality of compartments, wherein each of the plurality of sensor modules includes a unique identifier and is configured to utilize energy transmitted from an external source. 175. The breast implant of claim 174, wherein the shell comprises: the viscous material substantially filling an interior region of the shell. 176. The breast implant of claim 174, wherein the shell comprises: at least one silicone -based barrier layer substantially filled with silicone gel. 177. The breast implant of claim 174, wherein the shell comprises: at least two barrier layers. 178. The breast implant of claim 174, wherein the shell comprises: at least one barrier layer including at least one cavity, the at least one cavity with an outer surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. 179. The breast implant of claim 174, wherein the shell comprises: at least one barrier layer including at least one aperture, the at least one aperture with a rim surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. 180. The breast implant of claim 174, wherein the plurality of projections comprise: a plurality of membranes attached to the external surface of the shell. 181. The breast implant of claim 174, wherein the plurality of projections comprise: a first end surface sealed to the external surface of the shell;and a second end surface sealed to a surface of the at least one fluid-permeable cover. 182. The breast implant of claim 174, wherein the plurality of compartments comprise: a region of the cover forming a side of each of the compartments, the region including at least one set of influx microchannels configured to direct the fluid into the compartment, and including at least one set of efflux microchannels configured to direct the fluid out of the compartment. 183. The breast implant of claim 174, wherein the plurality of compartments are substantially sealed from each other. 184. The breast implant of claim 174, wherein the plurality of compartments are oriented with an approximate axis from a top of the breast implant to a bottom, with direction as expected during in vivo use. 185. The breast implant of claim 174, wherein the at least one fluid-permeable cover comprises: a mesh structure. 186. The breast implant of claim 174, wherein the at least one fluid-permeable cover comprises: an analyte-permeable cover. 187. The breast implant of claim 174, wherein the at least one fluid-permeable cover comprises: a porous structure. 188. The breast implant of claim 174, wherein the at least one fluid-permeable cover is configured to completely envelop the shell with a uniform gap between the cover and the shell. 189. The breast implant of claim 174, wherein the at least one fluid-permeable cover has an internal diameter that is larger than a largest exterior diameter of the shell. 190. The breast implant of claim 174, wherein the at least one fluid-permeable cover is approximately the same shape as the shell. 191. The breast implant of claim 174, wherein the plurality of sensor modules attached to the shell are attached in an approximately even distribution. 192. The breast implant of claim 174, wherein the plurality of sensor modules attached to the shell are attached to an external surface of the shell and wherein the plurality of sensor modules attached to the shell are separated by distances of approximately 5 to approximately 8 centimeters (cm). 193. The breast implant of claim 174, wherein the plurality of sensor modules attached to the shell comprise: at least one of the plurality of sensor modules configured to detect at least two of the one or more analytes in the fluid adjacent to the shell, wherein the at least two analytes are of different types. 194. The breast implant of claim 174, wherein the plurality of sensor modules attached to the shell comprise: at least two sensor units in each of the plurality of sensor modules. 195. The breast implant of claim 174, wherein each of the plurality of sensor modules attached to the shell comprise: an antenna. 196. The breast implant of claim 174, wherein each of the plurality of sensor modules attached to the shell comprise: an energy harvesting unit. 197. The breast implant of claim 174, wherein each of the plurality of sensor modules attached to the shell comprise: a radio frequency identification (RFID) unit. 198. The breast implant of claim 174, wherein the plurality of sensor modules attached to the shell comprise at least one of: a hydrogel-based sensor, a CMOS sensor, or an optical-based sensor. 199. The breast implant of claim 174, wherein the plurality of sensor modules attached to the shell comprise: a plurality of reservoirs, each of the plurality of reservoirs including a removable, fluid-impermeable cover. 200. The breast implant of claim 174, wherein the plurality of sensor modules attached to the shell comprise: a plurality of sensor units. 201. The breast implant of claim 174, wherein the plurality of sensor modules attached to the shell are configured to detect one or more biological analytes arising from biological tissue. 202. The breast implant of claim 174, wherein the plurality of sensor modules are entirely attached to an outer surface of the shell. 203. The breast implant of claim 174, wherein the plurality of sensor modules are positioned within a plurality of cavities in the shell. 204. The breast implant of claim 174, wherein the plurality of sensor modules are positioned within a plurality of apertures in the shell. 205. The breast implant of claim 174, wherein the plurality of sensor modules are configured to be rechargeable. 206. The breast implant of claim 174, wherein the unique identifier for each of the plurality of sensor modules comprises: an alphanumeric code. 207. The breast implant of claim 174, wherein the unique identifier for each of the plurality of sensor modules comprises: a positional identifier. 208. The breast implant of claim 174, wherein each of the plurality of sensor modules is configured to utilize energy transmitted from an ex-vivo source. 209. The breast implant of claim 174, comprising: a processor. 210. A breast implant comprising: a shell configured to be substantially filled with a viscous material;a plurality of projections extending from an external surface of the shell, the projections forming a plurality of compartments adjacent to the external surface of the shell;at least one fluid-permeable cover attached to the projections, the cover completely enveloping the shell and the plurality of projections;a plurality of sensor modules attached to the shell, each of the sensor modules oriented to detect one or more analytes in a fluid within one of the plurality of compartments, wherein each of the plurality of sensor modules includes a unique identifier;at least one antenna;an energy harvesting unit attached to the at least one antenna;and at least one connection between the energy harvesting unit and each of the plurality of sensor modules. The breast implant of claim 210, wherein the shell comprises: the viscous material substantially filling an interior region of the shell. 212. The breast implant of claim 210, wherein the shell comprises: at least one silicone -based barrier layer substantially filled with silicone gel. 213. The breast implant of claim 210, wherein the shell comprises : at least two barrier layers. 214. The breast implant of claim 210, wherein the shell comprises: at least one barrier layer including at least one cavity, the at least one cavity with an outer surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. 215. The breast implant of claim 210, wherein the shell comprises : at least one barrier layer including at least one aperture, the at least one aperture with a rim surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. 216. The breast implant of claim 210, wherein the plurality of projections comprise: a plurality of membranes attached to the external surface of the shell. 217. The breast implant of claim 210, wherein the plurality of projections comprise: a first end surface sealed to the external surface of the shell;and a second end surface sealed to a surface of the cover. 218. The breast implant of claim 210, wherein the plurality of compartments comprise: a region of the cover forming a side of each of the compartments, the region including at least one set of influx microchannels configured to direct the fluid into the compartment, and including at least one set of efflux microchannels configured to direct the fluid out of the compartment. 219. The breast implant of claim 210, wherein the plurality of compartments are substantially sealed from each other. 220. The breast implant of claim 210, wherein the plurality of compartments are oriented with an approximate axis from a top of the breast implant to a bottom, with direction as expected during in vivo use. 221. The breast implant of claim 210, wherein the at least one fluid-permeable cover comprises: a mesh structure. 222. The breast implant of claim 210, wherein the at least one fluid-permeable cover comprises: an analyte-permeable cover. 223. The breast implant of claim 210, wherein the at least one fluid-permeable cover comprises: a porous structure. 224. The breast implant of claim 210, wherein the at least one fluid-permeable cover is configured to completely envelop the shell with a uniform gap between the at least one fluid-permeable cover and the shell. 225. The breast implant of claim 210, wherein the at least one fluid-permeable cover has an internal diameter that is larger than a largest exterior diameter of the shell. 226. The breast implant of claim 210, wherein the at least one fluid-permeable cover is approximately a same shape as the shell. 227. The breast implant of claim 210, wherein the plurality of sensor modules attached to the shell are attached in an approximately even distribution. 228. The breast implant of claim 210, wherein the plurality of sensor modules attached to the shell are attached to an external surface of the shell and wherein the plurality of sensor modules attached to the shell are separated by distances of approximately 5 to approximately 8 centimeters (cm). 229. The breast implant of claim 210, wherein the plurality of sensor modules attached to the shell comprise: at least one sensor module configured to detect at least two analytes in the fluid adjacent to the shell, wherein the at least two analytes are of different types. 230. The breast implant of claim 210, wherein the plurality of sensor modules attached to the shell comprise: at least two sensor units in each of the plurality of sensor modules. 231. The breast implant of claim 210, wherein the plurality of sensor modules attached to the shell comprise at least one of: a hydrogel-based sensor, a CMOS sensor, or an optical-based sensor. 232. The breast implant of claim 210, wherein the plurality of sensor modules attached to the shell comprise: a plurality of reservoirs, each of the reservoirs including a removable cover. 233. The breast implant of claim 210, wherein the plurality of sensor modules attached to the shell comprise: a plurality of sensor units. 234. The breast implant of claim 210, wherein the plurality of sensor modules are configured to detect one or more biological analytes arising from biological tissue. 235. The breast implant of claim 210, wherein the plurality of sensor modules are entirely attached to the shell outer surface. 236. The breast implant of claim 210, wherein the plurality of sensor modules are positioned within a plurality of cavities in the shell. 237. The breast implant of claim 210, wherein the plurality of sensor modules are positioned within a plurality of apertures in the shell. 238. The breast implant of claim 210, wherein the plurality of sensor modules are configured to be rechargeable. 239. The breast implant of claim 210, wherein the unique identifier for each of the plurality of sensor modules comprises: an alphanumeric code. 240. The breast implant of claim 210, wherein the unique identifier for each of the plurality of sensor modules comprises: a positional identifier. 241. The breast implant of claim 210, wherein the at least one antenna comprises: a radio frequency (RF) antenna. 242. The breast implant of claim 210, wherein the energy harvesting unit attached to the at least one antenna comprises: a radio frequency identification (RFID) unit. 243. The breast implant of claim 210, wherein the energy harvesting unit attached to the at least one antenna comprises: an optical energy harvesting unit. 244. The breast implant of claim 210, wherein the energy harvesting unit attached to the at least one antenna comprises: an inductive energy harvesting unit. 245. The breast implant of claim 210, wherein the energy harvesting unit attached to the at least one antenna is configured to harvest energy originating ex-vivo when the breast implant is in use. 246. The breast implant of claim 210, wherein the at least one connection between the energy harvesting unit and each of the plurality of sensor modules comprises: a wire connection. 247. The breast implant of claim 210, comprising: a processor operably attached to the at least one antenna. 248. The breast implant of claim 210, comprising: a switch operably attached to the at least one antenna. 249. A breast implant comprising: a shell configured to be substantially filled with a viscous material;a plurality of projections extending from an external surface of the shell, the plurality of projections forming a plurality of compartments adjacent to the external surface of the shell;at least one fiuid-permeable cover attached to the plurality of projections, the at least one fluid-permeable cover completely enveloping the shell and the plurality of projections;a plurality of sensor modules attached to the shell, each of the plurality of sensor modules oriented to detect one or more analytes in a fluid within one of the plurality of compartments, wherein each of the plurality of sensor modules includes a unique identifier;at least one optically powered transducer configured to harvest optical energy from a source external to the breast implant;and at least one connector operably connecting the at least one optically powered transducer and the plurality of sensor modules. 250. The breast implant of claim 249, wherein the shell comprises: the viscous material substantially filling an interior region of the shell. 251. The breast implant of claim 249, wherein the shell comprises: at least one silicone -based barrier layer substantially filled with silicone gel. 252. The breast implant of claim 249, wherein the shell comprises: at least two barrier layers. 253. The breast implant of claim 249, wherein the shell comprises: at least one barrier layer including at least one cavity, the at least one cavity with an outer surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. 254. The breast implant of claim 249, wherein the shell comprises: at least one barrier layer including at least one aperture, the at least one aperture with a rim surface configured to reversibly mate with a surface of at least one of the plurality of sensor modules. 255. The breast implant of claim 249, wherein the plurality of projections comprise: a plurality of membranes attached to the external surface of the shell. 256. The breast implant of claim 249, wherein the plurality of projections comprise: a first end surface sealed to the external surface of the shell;and a second end surface sealed to a surface of the cover. 257. The breast implant of claim 249, wherein the plurality of compartments comprise: a region of the cover forming a side of each of the compartments, the region including at least one set of influx microchannels configured to direct the fluid into the compartment, and including at least one set of efflux microchannels configured to direct the fluid out of the compartment. 258. The breast implant of claim 249, wherein the plurality of compartments are substantially sealed from each other. 259. The breast implant of claim 249, wherein the plurality of compartments are oriented with an approximate axis from a top of the breast implant to a bottom, with direction as expected during in vivo use. 260. The breast implant of claim 249, wherein the at least one fluid-permeable cover comprises: a mesh structure. 261. The breast implant of claim 249, wherein the at least one fluid-permeable cover comprises: an analyte-permeable cover. 262. The breast implant of claim 249, wherein the at least one fluid-permeable cover comprises: a porous structure. 263. The breast implant of claim 249, wherein the at least one fluid-permeable cover is configured to completely envelop the shell with a uniform gap between the cover and the shell. 264. The breast implant of claim 249, wherein the at least one fluid-permeable cover has an internal diameter that is larger than a largest exterior diameter of the shell. 265. The breast implant of claim 249, wherein the plurality of sensor modules attached to the shell are attached in an approximately even distribution. 266. The breast implant of claim 249, wherein the plurality of sensor modules attached to the shell are attached to an external surface of the shell and wherein the plurality of sensor modules attached to the shell are separated by distances of approximately 5 to approximately 8 centimeters (cm). 267. The breast implant of claim 249, wherein the plurality of sensor modules attached to the shell comprise: at least one of the plurality of sensor modules configured to detect at least two analytes in fluid adjacent to the shell, wherein the at least two analytes are of different types. 268. The breast implant of claim 249, wherein the plurality of sensor modules attached to the shell comprise: at least two sensor units in each of the plurality of sensor modules. 269. The breast implant of claim 249, wherein each of the plurality of sensor modules attached to the shell comprise: a hydrogel-based sensor, a CMOS sensor, or an optical-based sensor. 270. The breast implant of claim 249, wherein the plurality of sensor modules attached to the shell comprise: a plurality of sensor units. 271. The breast implant of claim 249, wherein the plurality of sensor modules are entirely attached to an outer surface of the shell. 272. The breast implant of claim 249, wherein the plurality of sensor modules are positioned within a plurality of cavities in the shell. 273. The breast implant of claim 249, wherein the plurality of sensor modules are positioned within a plurality of apertures in the shell. 274. The breast implant of claim 249, wherein the unique identifier for each of the plurality of sensor modules comprises: an alphanumeric code. 275. The breast implant of claim 249, wherein the unique identifier for each of the plurality of sensor modules comprises: a positional identifier. 276. The breast implant of claim 249, wherein the at least one connector comprises: a wire connection. 277. The breast implant of claim 249, wherein the at least one optically powered transducer is attached to the shell, and wherein the cover is translucent. 278. The breast implant of claim 249, wherein the at least one optically powered transducer is attached to the cover, and includes an optical receiver positioned on an exterior surface of the cover. 279. A breast implant comprising: a shell configured to be substantially filled with a viscous material;a plurality of projections extending from an external surface of the shell, the plurality of projections forming a plurality of compartments adjacent to the external surface of the shell;a plurality of sensor modules attached to the shell, each of the sensor modules configured to detect one or more biological analytes arising from biological tissue, the fluid within one of the plurality of compartments;at least one antenna;an energy harvesting unit attached to the at least one antenna;and at least one connection between the energy harvesting unit and each of the plurality of sensor modules. 280. The breast implant of claim 279, wherein the plurality of sensor modules are positioned on the shell with a distance between the sensor modules. The breast implant of claim 279, comprising: at least one switch attached to both the at least one transmission unit and the plurality of sensor modules, the at least one switch configured to activate the transmission unit in response to a signal from one or more of the sensor modules. 282. A method of monitoring information from a breast implant, comprising: receiving first information from a first sensor module attached to a shell of a breast implant within an individual, wherein the first information includes a first unique sensor module identifier and sensor data from the first sensor module;receiving second information from a second sensor module attached to the shell of the breast implant within the individual, wherein the second information includes a second unique sensor module identifier and sensor data from the second sensor module;forming an initial record from the first information and the second information;calculating deviation limits regarding the initial record;setting deviation parameters based on the deviation limits and a predetermined set of standards;saving the initial record and the deviation parameters in memory in a computing device;receiving third information from the first sensor module attached to the shell of the breast implant within the individual, wherein the third information includes the first unique sensor module identifier and the sensor data from the first sensor module;receiving fourth information from the second sensor module attached to the shell of the breast implant within the individual, wherein the fourth information includes the second unique sensor module identifier and the sensor data from the second sensor module;updating the initial record with the third information and the fourth information;saving an updated record in the memory in the computing device;comparing the updated record to the initial record and to the deviation parameters;and indicating if the updated record is within the deviation parameters of the initial record. 283. The method of claim 282, comprising: receiving fifth information from the first sensor module attached to the shell of the breast implant within the individual, wherein the fifth information includes the first unique sensor module identifier and the sensor data from the first sensor module;receiving sixth information from the second sensor module attached to the shell of the breast implant within the individual, wherein the sixth information includes the second unique sensor module identifier and the sensor data from the second sensor module;updating the initial record with the fifth information and the sixth information;saving the updated record in the memory in the computing device;comparing the updated record to the initial record and to the deviation parameters;indicating if the updated record is within the deviation parameters of the initial record. 284. A method of monitoring information from a breast implant, comprising: sending a signal from a transmission unit attached to one or more sensor modules attached to a breast implant in vivo, wherein the signal contains information regarding the detection of one or more biological analytes by the one or more sensor modules. 285. A method of monitoring information from a breast implant, comprising: directing, from an ex-vivo device, a non-electrical power source to a breast implant in-vivo;sending, from a remote device, a query signal to at least one transmission unit attached to the breast implant in vivo, the at least one transmission unit attached to one or more sensor modules configured to detect biological analytes in fluid from biological tissue;receiving, from a remote device, a response signal from the at least one transmission unit attached to the breast implant, the response signal including information from the one or more sensor modules;processing, in a computing device, the response signal to identify information from the one or more sensor modules;and identifying, for each of the one or more sensor modules, a detection result and a unique identifier. 286. The method of claim 285, wherein the detection result for each of the one or more sensor modules includes a positive result, a negative result, or a null result. 287. The method of claim 285, comprising: initiating a display of the detection result and the unique identifier for at least one of the sensor modules. 288. The method of claim 285, comprising: initiating a graphic display of the breast implant, the graphic display including a position for each of the sensor modules and the detection result for at least one of the sensor modules. 289. A method of monitoring information from a breast implant, comprising: directing, from an ex-vivo device, a non-electrical power source to a breast implant in vivo;sending a signal from at least one transmission unit attached to the breast implant in vivo, the signal including information regarding one or more sensor modules configured to detect biological analytes in fluid from biological tissue, the at least one transmission unit attached to the one or more sensor modules;receiving, at a remote device, the signal from the at least one transmission unit attached to the breast implant;processing, in a computing device, the signal to identify information from the one or more sensor modules;and identifying, for each of the one or more sensor modules, a detection result and a unique identifier. 290. The method of claim 289, wherein the detection result for each of the one or more sensor modules includes a positive result, a negative result, or a null result. 291. The method of claim 289, comprising: initiating a display of the detection result and the unique identifier for at least one of the sensor modules. 292. The method of claim 289, comprising: initiating a graphic display of the breast implant, the graphic display including a position for each of the sensor modules and the detection result for at least one of the sensor modules.