Systems and methods for tissue expansion
A tissue expander comprising: a port assembly including a drain port and a fill port, a magnet housing assembly fitted to the port assembly, the magnet housing assembly including a single magnet having a magnetic field that is detectable on an exterior surface of a biological tissue of a patient; a shell defining the interior cavity of the tissue expander; and a drain assembly in fluidic communication with the drain port via the drain tubing.
1 . A tissue expander comprising:
a port assembly including a first port and a second port;
a magnet housing assembly fitted to the port assembly, wherein the magnet housing assembly includes a magnet having a magnetic field that is detectable on an exterior surface of biological tissue of a patient, and the magnet housing assembly is at least partially made of a semi-flexible material and configured to allow the magnet to move or rotate during a magnetic interaction with an external magnetic field;
a shell defining an interior cavity of the tissue expander and having an exterior surface; and
a drain assembly in fluidic communication with the first port via a drain tubing, wherein the drain assembly includes a drain manifold integrated into the shell, and the drain manifold is coupled to a drain hole component attached to the drain tubing.
2 . The tissue expander of claim 1 , wherein:
the first port comprises a drain port coupled to the drain tubing such that the drain tubing channels fluid to and from the drain port; and
the second port comprises a fill port such that the fill port channels fluid into the interior cavity of the shell to cause the tissue expander to enlarge.
3 . The tissue expander of claim 1 , further comprising a plurality of suture tabs configured to secure the tissue expander in place, the plurality of suture tabs being positioned to have a lengthwise centerline that is perpendicular to a base perimeter tangent of the shell.
4 . The tissue expander of claim 1 , further comprising at least one of:
a hybrid magnet housing assembly,
a brace structure attached to the magnet housing assembly,
a housing that surrounds the first port and the second port,
one or more spring mechanisms attached to the magnet housing assembly,
a rotational or linear spring attached to the magnet housing assembly, or
a bridge structure within which is embedded the magnet housing assembly.
5 . The tissue expander of claim 1 , wherein the magnet housing assembly is between the first port and the second port.
6 . The tissue expander of claim 1 , wherein the magnet is a single magnet, and the single magnet is decoupled from the first port and the second port.
7 . The tissue expander of claim 1 , wherein the magnet is a single magnet, and the magnetic field of the single magnet projects over the first port and the second port for detection by a port locator.
8 . The tissue expander of claim 7 , wherein the port locator is a digital port locator or an analogue port locator.
9 . The tissue expander of claim 8 , wherein the digital port locator is configured to execute software that calibrates operation of the digital port locator based on at least one of:
a strength of the magnetic field,
a geometry of the single-magnet within the magnet housing assembly,
an orientation of the single-magnet within the magnet housing assembly, or
a polarity of the single-magnet within the magnet housing assembly.
10 . The tissue expander of claim 1 , further comprising a skirt assembly that resists expansion of an upper part of the shell of the tissue expander when the tissue expander is inflated or filled with fluid.
11 . The tissue expander of claim 10 , wherein the skirt assembly includes a molded septum that seals a puncture made by a fluid delivery apparatus.
12 . The tissue expander of claim 10 , wherein the magnet housing assembly has a web structure to handle stresses on one or more of the skirt assembly, the first port, and the second port when the magnet interacts with the external magnetic field.
13 . The tissue expander of claim 1 , wherein the magnet is a single magnet, and the single magnet retains substantially 99% of the magnetic field after exposure to a reverse magnetic field.
14 . The tissue expander of claim 1 , wherein the magnet is a single magnet, and the single magnet has a cylindrical shape.
15 . The tissue expander of claim 1 , wherein the exterior surface of the shell is surrounded by biological tissue of the patient when the tissue expander is inserted in the patient.
16 . The tissue expander of claim 15 , wherein the drain assembly provides the first port with fluid access to seroma fluid that includes dead skin of the patient around the exterior surface of the shell when the tissue expander is inserted in the patient.
17 . The tissue expander of claim 2 , wherein enlargement of the tissue expander causes the biological tissue of the patient surrounding the tissue expander to expand when the tissue expander is inserted in the patient.
18 . The tissue expander of claim 1 , wherein the magnet housing assembly comprises a movement arm configured to be translated from a center orientation.
19 . The tissue expander of claim 18 , wherein the movement arm is configured to allow a slight twisting of the magnet housing assembly during the magnetic interaction with the external magnet force.
20 . The tissue expander of claim 18 , wherein the magnet housing assembly comprises a center bridge, and the movement arm extends from the center bridge.
21 . The tissue expander of claim 20 , wherein the magnet housing assembly comprises a second movement arm extending from the center bridge.
22 . The tissue expander of claim 20 , wherein the center bridge extends between the first port and the second port.
23 . The tissue expander of claim 18 , wherein the movement arm extends at least partially around one of the first port and the second port.
24 . The tissue expander of claim 18 , wherein the magnet housing assembly is configured to return the magnet to an original orientation in an absence of the external magnetic field.
25 . The tissue expander of claim 1 , wherein the semi-flexible material comprises silicone.
26 . The tissue expander of claim 1 , wherein the magnet housing assembly is configured to spring back to an original position in an absence of the external magnetic field.
27 . The tissue expander of claim 26 , wherein the magnet housing assembly is attached to a rotational spring and/or a linear spring.
28 . A system comprising:
a tissue expander comprising:
a port assembly including a first port and a second port,
a magnet housing assembly fitted to the port assembly, wherein the magnet housing assembly includes a magnet having a magnetic field that is detectable on an exterior surface of biological tissue of a patient, and the magnet housing assembly is at least partially made of a semi-flexible material and configured to allow the magnet to move or rotate during a magnetic interaction with an external magnetic field,
a shell defining an interior cavity of the tissue expander and having an exterior surface, and
a drain assembly in fluidic communication with the first port via a drain tubing, wherein the drain assembly includes a drain manifold integrated into the shell, and the drain manifold is coupled to a drain hole component attached to the drain tubing; and
a port locator configured to interact with the magnet to locate the first port and the second port.