A61L27/48

COMPOSITE IMPLANT FOR TOTAL MENISCUS RECONSTRUCTION

Artificial meniscal scaffolds characterized by a composite of circumferential polymer fiber network and orthogonal polymer fiber network embedded in an arcuate bioresorbable matrix comprised of collagen and hyaluronic acid. The orthogonal polymer fiber network prevents separation of the circumferential polymer fiber networks. The polymer fiber networks convert axial compressive forces on the scaffolds to tensile loads on the circumferential polymer fibers. The composite scaffold can be anchored to bone by novel anchoring components that protect the polymer fibers and ensure immediate securement of the artificial meniscal scaffold to bone.

METHOD FOR FABRICATION OF ADDITIVELY MANUFACTURED, SELF-GELLING STRUCTURES AND THEIR USE
20220401630 · 2022-12-22 ·

Disclosed are Self-Gelling materials and structures or materials or structures having one or more self-gelling components that overcome existing gel limitations due to hydrogel localization for medical applications by providing, for example, 1) microstructurally, or physically, anchored characteristics to help localize the gel, and the overall printed, or otherwise formed structure, giving structural form to the gel that allows the gel to be localized within the body, and even sutured in place, and mitigates gel migration and extends its residence time; 2) to provide an underlying 3D printed structure to help contain and support the gel after implantation; and more. Self-Gelling 3D printed structures may be further processed via milling to yield deconstructed scaffold micro-granules, with the composition and nano-/micro- structure of the original larger structure. Deconstructed scaffold micro-granules may be hydrated to form a micro-granule embedded gel network that can be injected, giving form to injectable gels.

METHOD FOR FABRICATION OF ADDITIVELY MANUFACTURED, SELF-GELLING STRUCTURES AND THEIR USE
20220401630 · 2022-12-22 ·

Disclosed are Self-Gelling materials and structures or materials or structures having one or more self-gelling components that overcome existing gel limitations due to hydrogel localization for medical applications by providing, for example, 1) microstructurally, or physically, anchored characteristics to help localize the gel, and the overall printed, or otherwise formed structure, giving structural form to the gel that allows the gel to be localized within the body, and even sutured in place, and mitigates gel migration and extends its residence time; 2) to provide an underlying 3D printed structure to help contain and support the gel after implantation; and more. Self-Gelling 3D printed structures may be further processed via milling to yield deconstructed scaffold micro-granules, with the composition and nano-/micro- structure of the original larger structure. Deconstructed scaffold micro-granules may be hydrated to form a micro-granule embedded gel network that can be injected, giving form to injectable gels.

Artificial skin and a preparation method thereof

The present invention provides an artificial skin and a preparation method thereof. The present invention takes the xenogeneic acellular dermal matrix particles as main materials, and obtains the dermis layer by three-dimensional printing technologies, and then obtains the artificial skin by combining the epidermis layer with the dermis layer. The dermis layer of artificial skin in present invention has three-dimensional porous structure, which retains main components of natural dermal matrix in composition, and imitates distributed structure at fiber bundle diameter and pore size of natural dermal matrix in structure. This kind of novel biomimetic dermal scaffolds have obvious advantages in inducing migration and regeneration of skin cells, accelerating vascularization, promoting wound healing and improving healing quality. The dermis layer of artificial skin in present invention is obtained by three-dimensional printing technologies, which has precise and controllable structure, simple preparation method and high products qualification rate.

BIOMIMETIC POLYMERIC COMPOSITE FOR HEART VALVE REPAIR
20220395614 · 2022-12-15 ·

A biomimetic, polymeric composite biomaterial designed as a heart valve leaflet substitute that can be used for heart valve repair and/or to fabricate a new-generation of durable heart valve prosthesis.

BIOMIMETIC POLYMERIC COMPOSITE FOR HEART VALVE REPAIR
20220395614 · 2022-12-15 ·

A biomimetic, polymeric composite biomaterial designed as a heart valve leaflet substitute that can be used for heart valve repair and/or to fabricate a new-generation of durable heart valve prosthesis.

Nanofiber paste for growth factor delivery and bone regeneration

Provided herein are compositions comprising a composite of peptide amphiphiles and biocompatible particles and methods of use thereof for treatment of bone and/or tissue defects. In particular, compositions comprise a slurry paste of a peptide amphiphile nanofiber solution mixed with solid biocompatible particles, and find use in tissue/bone regeneration, growth factor delivery, and/or cell delivery.

Nanofiber paste for growth factor delivery and bone regeneration

Provided herein are compositions comprising a composite of peptide amphiphiles and biocompatible particles and methods of use thereof for treatment of bone and/or tissue defects. In particular, compositions comprise a slurry paste of a peptide amphiphile nanofiber solution mixed with solid biocompatible particles, and find use in tissue/bone regeneration, growth factor delivery, and/or cell delivery.

Nanofiber paste for growth factor delivery and bone regeneration

Provided herein are compositions comprising a composite of peptide amphiphiles and biocompatible particles and methods of use thereof for treatment of bone and/or tissue defects. In particular, compositions comprise a slurry paste of a peptide amphiphile nanofiber solution mixed with solid biocompatible particles, and find use in tissue/bone regeneration, growth factor delivery, and/or cell delivery.

DERMAL FILLER COMPOSITION

The invention relates to a dermal filler composition in the form of a gel, comprising a carrier fluid comprising water and/or a polyalcohol; cross-linked hyaluronic acid; and spherical microparticles of cross-linked hyaluronic acid having an average diameter in the range of 10-200 μm. The filler provides a volumizing effect as well as a biostimulating effect when injected into skin tissue.