| Literature DB >> 21747695 |
Parisutham Vinuselvi1, Seongyong Park, Minseok Kim, Jung Min Park, Taesung Kim, Sung Kuk Lee.
Abstract
Microfluidic technologies have shown powerful abilities for reducing cost, time, and labor, and at the same time, for increasing accuracy, throughput, and performance in the analysis of biological and biochemical samples compared with the conventional, macroscale instruments. Synthetic biology is an emerging field of biology and has drawn much attraction due to its potential to create novel, functional biological parts and systems for special purposes. Since it is believed that the development of synthetic biology can be accelerated through the use of microfluidic technology, in this review work we focus our discussion on the latest microfluidic technologies that can provide unprecedented means in synthetic biology for dynamic profiling of gene expression/regulation with high resolution, highly sensitive on-chip and off-chip detection of metabolites, and whole-cell analysis.Entities:
Keywords: gene expression and regulation; genetic circuits; metabolite detection; microfluidics; synthetic biology; whole-cell analysis
Mesh:
Year: 2011 PMID: 21747695 PMCID: PMC3131579 DOI: 10.3390/ijms12063576
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1(a) Compartment-based microfluidics for simultaneous determination of gene expression and enzyme activity. The image is reproduced with the permission of the Journal of American Chemical Society [23]; (b) High-throughput array-based microfluidic device that enables real-time characterization of gene expression. The image is reproduced with the permission of the Royal Society of Chemistry [24].
Figure 2(a) Enzyme-based on-chip, in situ metabolite monitoring device. Cell culture chip (top) and enzyme assay chip are linked and enable continuous monitoring. The image is reproduced with the permission of Analytical Chemistry [49]. (b) Multilayered, autonomous, enzyme-based microfluidic metabolite detection device. Sample preparation, reagent mixing, and data acquisition can be performed without operator intervention. The image is reproduced with the permission of Analytical Chemistry [50].
Microfluidics for advancing synthetic biology.
| Microfluidic Device | Potential Application in Synthetic Biology |
|---|---|
| Device with array of cells | Parallel reaction, gene expression analysis at the single-cell level |
| Device with switchable valves | The study of dynamics of gene regulation, automation |
| Chemical concentration gradient generators | Chemotaxis analysis, quorum sensing analysis, toxicity analysis |
| Microfluidic bioreactor | Evolutionary adaptation through long-term culture, multiplexing, bacterial growth, quantification of bacterial cells |
| Droplet-based microfluidics | Spatially separated parallel reaction, multiplexing, functionbased high-throughput screening of engineered enzymes |
| Parallel reaction, analysis of bacterial community structure, synthetic consortium analysis |