Claims
- 1. A hydrophilic, photosensitive polymer network synthesized from hydrophilic branched macromeric precursors, the branched macromeric precursors being formed from covalently attached monomer units, each of the branches of the macromeric precursor comprising the monomer units, at least a portion of the macromeric precursors being functionalized with a cinnamylidene moiety at a terminus of at least three branches thereof, the double bonds of the cinnamylidene moieties undergoing intermolecular crosslinking via a 2+2 cycloaddition upon exposure thereof to light of a first known range of wavelengths to form the hydrophilic, photosensitive polymer network, the hydrophilic, photosensitive polymer network being suitable to undergo a reversible photoscission upon exposure thereof to light of a second known range of wavelength.
- 2. The hydrophilic, photosensitive polymer network of claim 1 wherein each of the branched macromeric precursors comprises no more than 5% cinnamylidene moiety.
- 3. The hydrophilic, photosensitive polymer network of claim 1 wherein the photosensitive polymer network is a hydrogel.
- 4. The hydrophilic, photosensitive polymer network of claim 1 wherein the cinnamylidene moiety is selected from the group consisting of cinnamylidene acetate, α-methylcinnamylidene acetate, α,γ-dimethylcinnamylidene acetate, α-phenylcinnamylidene acetate, α-phenoxycinnamylidene acetate, and cyanocinnamylidene acetate.
- 5. The hydrophilic, photosensitive polymer network of claim 1 wherein the branched macromeric precursors have a molecular weight of at least 400.
- 6. The hydrophilic, photosensitive polymer network of claim 1 wherein the branched macromeric precursors comprise biocompatible macromers and the hydrophilic, photosensitive polymer network is biocompatible.
- 7. A method of synthesizing a hydrophilic, photosensitive polymer network comprising the step of crosslinking hydrophilic branched macromeric precursors, the branched macromeric precursors being formed from covalently attached monomer units, each of the branches of the macromeric precursor comprising the monomer units, at least a portion of the macromeric precursors being functionalized with a cinnamylidene moiety at a terminus of at least three branches thereof, the double bonds of the cinnamylidene moieties undergoing intermolecular crosslinking via a 2+2 cycloaddition upon exposure thereof to light of a first known range of wavelengths to form the hydrophilic, photosensitive polymer network, the hydrophilic, photosensitive polymer network being suitable to undergo a reversible photoscission upon exposure thereof to light of a second known range of wavelength.
- 8. The method of claim 7 wherein each of the branched macromeric precursors comprises no more than 5% cinnamylidene moiety.
- 9. The method of claim 7 wherein the photosensitive polymer network is a hydrogel.
- 10. The method of claim 7 wherein the cinnamylidene moiety is selected from the group consisting of cinnamylidene acetate, α-methylcinnamylidene acetate, α,γ-dimethylcinnamylidene acetate, α-phenylcinnamylidene acetate, α-phenoxycinnamylidene acetate, and cyanocinnamylidene acetate.
- 11. The method of claim 7 wherein the branched macromeric precursors have a molecular weight of at least 400.
- 12. The method of claim 7 wherein the branched macromeric precursors comprise biocompatible macromers and the hydrophilic, photosensitive polymer network is biocompatible.
Parent Case Info
This application is a continuation of Ser. No. 08/571,250 filing date Dec. 12, 1995 U.S. Pat. No. 5,990,193.
GOVERNMENT INTERESTS
This invention was made with government support under grant BCS9057312 awarded by the National Science Foundation. The government has certain rights in this invention.
US Referenced Citations (5)
Continuations (1)
|
Number |
Date |
Country |
Parent |
08/571250 |
Dec 1995 |
US |
Child |
09/304417 |
|
US |