EP1577670A2

Latent reactive polymers with biologically active moieties, method of preparing a biocompatible coating and bulk material, and use

Abstract

The present invention relates to a polybifunctional reagent having a polymeric backbone, one or more pendent photoreactive moieties, and two or more pendent bioactive groups. The reagent can be activated to form a bulk material or can be brought into contact with the surface of a previously formed biomaterial and activated to form a coating. The pendent bioactive groups function by promoting the attachment of specific molecules or cells to the bulk material or coated surface. Bioactive groups can include proteins, peptides, carbohydrates, nucleic acids and other molecules that are capable of binding noncovalently to specific and complimentary portions of molecules or cells.

Term

Term ended

Projected expiry passed 11 August 2018, 8.1 years ago.

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59 claims: 7 independent, 52 dependent

  1. 1
    A polybifunctional reagent comprising a plurality of molecules each comprising a polymeric backbone bearing (a) a plurality of pendent latent reactive moieties capable of being activated by exposure to a suitable energy source, and (b) two or more pendent bioactive groups capable of specific, noncovalent interactions with complementary groups, the reagent being capable, upon activation of the latent reactive moieties, of forming a crosslinked material or surface coating in order to promote the attraction of such complementary groups, wherein the polymeric backbone comprises a synthetic polymer or copolymer selected from the group consisting of acrylics, vinyls, nylons, polyurethanes, and polyethers, and biodegradable polymers selected from the group consisting of polylactic acid, polyglycolic acid, polydioxanones, polyanhydrides, and polyorthoesters, and wherein the pendent latent reactive moieties and pendent bioactive groups are each coupled to the backbone via covalent bonds resulting from thermochemical reactions, such that said latent reactive moieties and said bioactive groups are provided along the length of the polymeric backbone.
  2. 31
    A polybifunctional reagent comprising a synthetic polymeric backbone bearing (a) a plurality of pendent photoreactive moieties in the form of photoactivatable ketones capable of being activated by exposure to a suitable energy source, and (b) two or more pendent bioactive groups capable of specific, noncovalent interactions with complementary groups and selected from the group consisting of proteins, peptides, amino acids, carbohydrates, and nucleic acids, wherein the polymeric backbone comprises a synthetic polymer or copolymer selected from the group consisting of acrylics, vinyls, nylons, polyurethanes, and polyethers, and biodegradable polymers selected from the group consisting of polylactic acid, polyglycolic acid, polydioxanones, polyanhydrides, and polyorthoesters, and wherein the pendent photoreactive moieties and pendent bioactive groups are each coupled to the backbone via covalent bonds resulting from thermochemical reactions, such that said photoreactive moieties and said bioactive groups are provided along the length of the polymeric backbone.
  3. 33
    A coated biomaterial surface, comprising a surface coated with the bound residues that result from the activation of the polybifunctional reagent of any one of claims 1-32.
  4. 34
    A crosslinked material comprising the bound residues that result from the activation of the polybifunctional reagent of any one of claims 1-32.
  5. 35
    A method of coating a biomaterial surface, the method comprising the steps of providing on the surface the polybifunctional reagent of any one of claims 1-32 and activating the latent reactive moieties in order to crosslink molecules of the polybifunctional reagent to themselves and/or to the surface.
  6. 36
    A method of coating a biomaterial surface, the method comprising the steps of (a) providing a polybifunctional reagent comprising a polymeric backbone bearing (i) a plurality of pendent latent reactive moieties capable of being activated by exposure to a suitable energy source, and (ii) two or more pendent thermoreactive groups adapted to attach bioactive groups capable of specific, noncovalent interactions with complementary groups, (b) contacting the surface with the reagent, (c) activating the latent reactive moieties in order to crosslink molecules of the polybifunctional reagent to themselves and/or to the surface, and (d) contacting thermoreactive groups of the reagent with the bioactive groups in order to covalently attach the bioactive groups to the reagent, wherein the polymeric backbone comprises a synthetic polymer or copolymer selected from the group consisting of acrylics, vinyls, nylons, polyurethanes, and polyethers, and biodegradable polymers selected from the group consisting of polylactic acid, polyglycolic acid, polydioxanones, polyanhydrides, and polyorthoesters, and wherein the pendent latent reactive moieties and pendent thermoreactive groups are each coupled to the backbone via covalent bonds resulting from thermochemical reactions, such that said latent reactive moieties and said thermoreactive groups are provided along the length of the polymeric backbone.
  7. 59
    A method for forming a crosslinked biomaterial, the method comprising the steps of providing the polybifunctional reagent of any one of claims 1-32 and activating the latent reactive moieties to form intermolecular covalent bonds between adjacent molecules of the polybifunctional reagent in order to form a crosslinked biomaterial.