High throughput microencapsulation of Bacillus subtilis in semi-permeable biodegradable polymersomes for selenium remediation
Encapsulating bacteria within constrained microenvironments can promote the manifestation of specialized behaviors. Using double-emulsion droplet-generating microfluidic synthesis, live Bacillus subtilis bacteria were encapsulated in a semi-permeable membrane composed of poly(ethylene glycol)- b -po...
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Veröffentlicht in: | Applied microbiology and biotechnology 2017, Vol.101 (1), p.455-464 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Encapsulating bacteria within constrained microenvironments can promote the manifestation of specialized behaviors. Using double-emulsion droplet-generating microfluidic synthesis, live
Bacillus subtilis
bacteria were encapsulated in a semi-permeable membrane composed of poly(ethylene glycol)-
b
-poly(
d
,
l
-lactic acid) (mPEG-PDLLA). This polymer membrane was sufficiently permeable to permit exponential bacterial growth, metabolite-induced gene expression, and rapid biofilm growth. The biodegradable microparticles retained structural integrity for several days and could be successfully degraded with time or sustained bacterial activity. Microencapsulated
B. subtilis
successfully captured and contained sodium selenite added outside the polymersomes, converting the selenite into elemental selenium nanoparticles that were selectively retained inside the polymer membrane. This remediation of selenium using polymersomes has high potential for reducing the toxicity of environmental selenium contamination, as well as allowing selenium to be harvested from areas not amenable to conventional waste or water treatment. |
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ISSN: | 0175-7598 1432-0614 |
DOI: | 10.1007/s00253-016-7896-7 |