C08L5/10

Dendritic Macroporous Hydrogels Prepared By Crystal Templating
20210238379 · 2021-08-05 ·

The present invention includes a hydrogel and a method of making a porous hydrogel by preparing an aqueous mixture of an uncrosslinked polymer and a crystallizable molecule; casting the mixture into a vessel; allowing the cast mixture to dry to form an amorphous hydrogel film; seeding the cast mixture with a seed crystal of the crystallizable molecule; growing the crystallizable molecule into a crystal structure within the uncrosslinked polymer; crosslinking the polymer around the crystal structure under conditions in which the crystal structure within the crosslinked polymer is maintained; and dissolving the crystals within the crosslinked polymer to form the porous hydrogel.

Preparation and/or formulation of proteins cross-linked with polysaccharides

Therapeutic compositions and/or formulations are provided, comprising: at least one cross-linked protein matrix, wherein the at least one cross-linked protein matrix comprises at least one protein residue and at least one saccharide-containing residue, and methods of producing the same. The cross-linked protein matrix may be derived from cross-linking a full length or substantially full length protein, such as tropoelastin, elastin, albumin, collagen, collagen monomers, immunoglobulins, insulin, and/or derivatives or combinations thereof, with a saccharide containing cross-linking agent, such as a polysaccharide cross-linking agent derived from, for example, hyaluronic acid or a cellulose derivative. The therapeutic compositions may be administered topically or by injection. The present disclosure also provides methods, systems, and/or kits for the preparation and/or formulation of the compositions disclosed herein.

Preparation and/or formulation of proteins cross-linked with polysaccharides

Therapeutic compositions and/or formulations are provided, comprising: at least one cross-linked protein matrix, wherein the at least one cross-linked protein matrix comprises at least one protein residue and at least one saccharide-containing residue, and methods of producing the same. The cross-linked protein matrix may be derived from cross-linking a full length or substantially full length protein, such as tropoelastin, elastin, albumin, collagen, collagen monomers, immunoglobulins, insulin, and/or derivatives or combinations thereof, with a saccharide containing cross-linking agent, such as a polysaccharide cross-linking agent derived from, for example, hyaluronic acid or a cellulose derivative. The therapeutic compositions may be administered topically or by injection. The present disclosure also provides methods, systems, and/or kits for the preparation and/or formulation of the compositions disclosed herein.

Shear-thinning therapeutic composition, and related methods

A shear-thinning therapeutic composition is provided along with methods of making and using the therapeutic composition.

Shear-thinning therapeutic composition, and related methods

A shear-thinning therapeutic composition is provided along with methods of making and using the therapeutic composition.

CONJUGATES WITH INTERNAL AND TERMINAL-END HEPAROSAN LINKAGES
20210244822 · 2021-08-12 ·

Described herein are compositions such as antibody-drug conjugates that include a heparosan polymer. In some embodiments, a targeting moiety is bound to an end of the heparosan polymer or to an internal monomeric subunit of the heparosan polymer. In some embodiments, a payload molecule is bound to an end of the heparosan or to an internal monomeric subunit. Some embodiments relate to methods of making and using the compositions.

SULFUR-CONTAINING GLYCANS AND POLYSACCHARIDES AND METHODS OF CHEMOENZYMATIC SYNTHESIS THEREOF

Described herein are sulfur-containing glycosaminoglycans, and methods of making and using them. For example, heparosan and hyaluronan analogs are described which incorporate one or more sulfur-containing sugar units that include one or more free sulfhydryls and/or one or more thio-glycosidic linkages. In some embodiments, the glycosaminoglycans are included in pharmaceutical or bioadhesive compositions.

PROSTHETIC TISSUE VALVE AND METHOD OF TREATING THE SAME

A prosthetic tissue valve and a method of treating the prosthetic tissue valve are provided. The method includes: decreasing a temperature of a chamber carrying the prosthetic tissue valve from a first preset temperature to a second preset temperature in a first cooling rate; decreasing the temperature of the chamber carrying the prosthetic tissue valve from the second preset temperature to a third preset temperature in a second cooling rate; and performing a drying process to the prosthetic tissue valve. The second preset temperature is a critical crystallization temperature and is greater than a crystallization temperature of the prosthetic tissue valve. The third preset temperature is lower than the crystallization temperature of the prosthetic tissue valve, and the second cooling rate is greater than the first cooling rate.

PROSTHETIC TISSUE VALVE AND METHOD OF TREATING THE SAME

A prosthetic tissue valve and a method of treating the prosthetic tissue valve are provided. The method includes: decreasing a temperature of a chamber carrying the prosthetic tissue valve from a first preset temperature to a second preset temperature in a first cooling rate; decreasing the temperature of the chamber carrying the prosthetic tissue valve from the second preset temperature to a third preset temperature in a second cooling rate; and performing a drying process to the prosthetic tissue valve. The second preset temperature is a critical crystallization temperature and is greater than a crystallization temperature of the prosthetic tissue valve. The third preset temperature is lower than the crystallization temperature of the prosthetic tissue valve, and the second cooling rate is greater than the first cooling rate.

Dendritic macroporous hydrogels prepared by crystal templating

The present invention includes a hydrogel and a method of making a porous hydrogel by preparing an aqueous mixture of an uncrosslinked polymer and a crystallizable molecule; casting the mixture into a vessel; allowing the cast mixture to dry to form an amorphous hydrogel film; seeding the cast mixture with a seed crystal of the crystallizable molecule; growing the crystallizable molecule into a crystal structure within the uncrosslinked polymer; crosslinking the polymer around the crystal structure under conditions in which the crystal structure within the crosslinked polymer is maintained; and dissolving the crystals within the crosslinked polymer to form the porous hydrogel.