Differentially Instructive Extracellular Protein Micro-nets
An ability to construct biological matter from the molecule up holds promise for applications ranging from smart materials to integrated biophysical models for synthetic biology. Biomolecular self-assembly is an efficient strategy for biomaterial construction which can be programmed to support desir...
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Veröffentlicht in: | Journal of the American Chemical Society 2014-06, Vol.136 (22), p.7889-7898 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | An ability to construct biological matter from the molecule up holds promise for applications ranging from smart materials to integrated biophysical models for synthetic biology. Biomolecular self-assembly is an efficient strategy for biomaterial construction which can be programmed to support desired function. A challenge remains in replicating the strategy synthetically, that is at will, and differentially, that is for a specific function at a given length scale. Here we introduce a self-assembly topology enabling a net-like architectural mimetic of native extracellular matrices capable of differential responses to cell adhesionenhanced mammalian cell attachment and proliferation, and enhanced resistance to bacterial colonizationat the native sub-millimeter length scales. The biological performance of such protein micro-nets directly correlates with their morphological and chemical properties, offering thus an application model for differential extracellular matrices. |
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ISSN: | 0002-7863 1520-5126 |
DOI: | 10.1021/ja411325c |