In search of general theories

work lays a foundation for synthesizing, patterning, and controlling functional composite materials with engineered cells

26.05.2014 14:49
NATURE MATERIALS | ARTICLE
 
Synthesis and patterning of tunable multiscale materials with engineered cells
 
Allen Y. Chen, Zhengtao Deng, Amanda N. Billings, Urartu O. S. Seker, Michelle Y. Lu, Robert J. Citorik, Bijan Zakeri & Timothy K. Lu
AffiliationsContributionsCorresponding author
Nature Materials 13, 515–523 (2014) doi:10.1038/nmat3912
Received 20 June 2013 Accepted 11 February 2014 Published online 23 March 2014
 
 
Many natural biological systems—such as biofilms, shells and skeletal tissues—are able to assemble multifunctional and environmentally responsive multiscale assemblies of living and non-living components. Here, by using inducible genetic circuits and cellular communication circuits to regulate Escherichia coli curli amyloid production, we show that E. coli cells can organize self-assembling amyloid fibrils across multiple length scales, producing amyloid-based materials that are either externally controllable or undergo autonomous patterning. We also interfaced curli fibrils with inorganic materials, such as gold nanoparticles (AuNPs) and quantum dots (QDs), and used these capabilities to create an environmentally responsive biofilm-based electrical switch, produce gold nanowires and nanorods, co-localize AuNPs with CdTe/CdS QDs to modulate QD fluorescence lifetimes, and nucleate the formation of fluorescent ZnS QDs. This work lays a foundation for synthesizing, patterning, and controlling functional composite materials with engineered cells.