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用于分泌表型的液滴中RNA适配体(RAPID)高通量筛选

RNA-aptamers-in-droplets (RAPID) high-throughput screening for secretory phenotypes.

作者信息

Abatemarco Joseph, Sarhan Maen F, Wagner James M, Lin Jyun-Liang, Liu Leqian, Hassouneh Wafa, Yuan Shuo-Fu, Alper Hal S, Abate Adam R

机构信息

Department of Chemical Engineering, The University of Texas at Austin, 200 E Dean Keeton St Stop C0400, Austin, Texas, 78712, USA.

Bioengineering and Therapeutic Sciences, University of California San Francisco, San Francisco, 94158, California, USA.

出版信息

Nat Commun. 2017 Aug 23;8(1):332. doi: 10.1038/s41467-017-00425-7.

Abstract

Synthetic biology and metabolic engineering seek to re-engineer microbes into "living foundries" for the production of high value chemicals. Through a "design-build-test" cycle paradigm, massive libraries of genetically engineered microbes can be constructed and tested for metabolite overproduction and secretion. However, library generation capacity outpaces the rate of high-throughput testing and screening. Well plate assays are flexible but with limited throughput, whereas droplet microfluidic techniques are ultrahigh-throughput but require a custom assay for each target. Here we present RNA-aptamers-in-droplets (RAPID), a method that greatly expands the generality of ultrahigh-throughput microfluidic screening. Using aptamers, we transduce extracellular product titer into fluorescence, allowing ultrahigh-throughput screening of millions of variants. We demonstrate the RAPID approach by enhancing production of tyrosine and secretion of a recombinant protein in Saccharomyces cerevisiae by up to 28- and 3-fold, respectively. Aptamers-in-droplets affords a general approach for evolving microbes to synthesize and secrete value-added chemicals.Screening libraries of genetically engineered microbes for secreted products is limited by the available assay throughput. Here the authors combine aptamer-based fluorescent detection with droplet microfluidics to achieve high throughput screening of yeast strains engineered for enhanced tyrosine or streptavidin production.

摘要

合成生物学和代谢工程旨在将微生物重新改造为生产高价值化学品的“活体工厂”。通过“设计-构建-测试”循环模式,可以构建大量基因工程微生物文库,并对其代谢物过量生产和分泌情况进行测试。然而,文库构建能力超过了高通量测试和筛选的速度。微孔板检测方法灵活但通量有限,而液滴微流控技术虽然通量超高,但每个靶点都需要定制检测方法。在此,我们介绍了液滴中的RNA适配体(RAPID)方法,该方法极大地扩展了超高通量微流控筛选的通用性。利用适配体,我们将细胞外产物滴度转化为荧光信号,从而能够对数百万个变体进行超高通量筛选。我们通过分别将酿酒酵母中酪氨酸的产量和重组蛋白的分泌量提高28倍和3倍,证明了RAPID方法的有效性。液滴中的适配体为改造微生物以合成和分泌增值化学品提供了一种通用方法。对基因工程微生物分泌产物文库的筛选受到现有检测通量的限制。本文作者将基于适配体的荧光检测与液滴微流控技术相结合,实现了对经改造以提高酪氨酸或链霉亲和素产量的酵母菌株的高通量筛选。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c73/5569033/5910e5d32c79/41467_2017_425_Fig2_HTML.jpg

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