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A printed nanolitre-scale bacterial sensor array

delete2011-01-01
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PRE
AI
S
Sahar Melamed
L
Laura Ceriotti
W
Wilfried Weigel
F
François Rossi
P
Pascal Colpo
S
Shimshon Belkin *
DOI:10.1039/c0lc00243gdelete
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摘要

摘要

En 中文
The last decade has witnessed a significant increase in interest in whole-cell biosensors for diverse applications, as well as a rapid and continuous expansion of array technologies. The combination of these two disciplines has yielded the notion of whole-cell array biosensors. We present a potential manifestation of this idea by describing the printing of a whole-cell bacterial bioreporters array. Exploiting natural bacterial tendency to adhere to positively charged abiotic surfaces, we describe immobilization and patterning of bacterial spots in the nanolitre volume range by a non-contact robotic printer. We show that the printed Escherichia coli-based sensor bacteria are immobilized on the surface, and retain their viability and biosensing activity for at least 2 months when kept at 4 degrees C. Immobilization efficiency was improved by manipulating the bacterial genetics (overproducing curli protein), the growth and the printing media (osmotic stress and osmoprotectants) and by a chemical modification of the inanimate surface (self-assembled layers of 3-aminopropyl-triethoxysilane). We suggest that the methodology presented herein may be applicable to the manufacturing of whole-cell sensor arrays for diverse high throughput applications.
Keyword:
CELL-SENSING SYSTEMS
ESCHERICHIA-COLI
BIOFILM FORMATION
DESICCATION TOLERANCE
SODIUM-AZIDE
CURLI
BIOSENSOR
GROWTH
DNA
RESTRICTION
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Lab on a Chip
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ec jrc ispra site
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European Commission Joint Research Centre
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Hebrew University of Jerusalem
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