Stimulus-responsive, or "smart" protein-based hydrogels are of interest for many bioengineering applications, but have yet to include biological activity independent of structural functionality. We have genetically engineered bifunctional building blocks incorporating fluorescent proteins that self-assemble into robust and active hydrogels. Gelation occurs when protein building blocks are cross-linked through native protein-protein interactions and the aggregation of cc-helical hydrogel-forming appendages. Building blocks constructed from different fluorescent proteins can be mixed to enable tuning of fluorescence loading and hydrogel strength with a high degree of independence. FRET experiments-suggest a macro-homogeneous structure and that intragel and interprotein reactions can be engineered. This design approach will enable the facile construction of complex hydrogels with broad applicability.
机构:
Univ London Kings Coll, Div Life Sci, Biopolymers Grp, London W8 7AH, EnglandUniv London Kings Coll, Div Life Sci, Biopolymers Grp, London W8 7AH, England
Kavanagh, GM
;
Ross-Murphy, SB
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机构:
Univ London Kings Coll, Div Life Sci, Biopolymers Grp, London W8 7AH, EnglandUniv London Kings Coll, Div Life Sci, Biopolymers Grp, London W8 7AH, England
机构:
Univ London Kings Coll, Div Life Sci, Biopolymers Grp, London W8 7AH, EnglandUniv London Kings Coll, Div Life Sci, Biopolymers Grp, London W8 7AH, England
Kavanagh, GM
;
Ross-Murphy, SB
论文数: 0引用数: 0
h-index: 0
机构:
Univ London Kings Coll, Div Life Sci, Biopolymers Grp, London W8 7AH, EnglandUniv London Kings Coll, Div Life Sci, Biopolymers Grp, London W8 7AH, England