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An Integrated Microfluidic Processor for DNA-Encoded Combinatorial Library Functional Screening

[Image: see text] DNA-encoded synthesis is rekindling interest in combinatorial compound libraries for drug discovery and in technology for automated and quantitative library screening. Here, we disclose a microfluidic circuit that enables functional screens of DNA-encoded compound beads. The device...

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Autores principales: MacConnell, Andrew B., Price, Alexander K., Paegel, Brian M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2017
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5350604/
https://www.ncbi.nlm.nih.gov/pubmed/28199790
http://dx.doi.org/10.1021/acscombsci.6b00192
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author MacConnell, Andrew B.
Price, Alexander K.
Paegel, Brian M.
author_facet MacConnell, Andrew B.
Price, Alexander K.
Paegel, Brian M.
author_sort MacConnell, Andrew B.
collection PubMed
description [Image: see text] DNA-encoded synthesis is rekindling interest in combinatorial compound libraries for drug discovery and in technology for automated and quantitative library screening. Here, we disclose a microfluidic circuit that enables functional screens of DNA-encoded compound beads. The device carries out library bead distribution into picoliter-scale assay reagent droplets, photochemical cleavage of compound from the bead, assay incubation, laser-induced fluorescence-based assay detection, and fluorescence-activated droplet sorting to isolate hits. DNA-encoded compound beads (10-μm diameter) displaying a photocleavable positive control inhibitor pepstatin A were mixed (1920 beads, 729 encoding sequences) with negative control beads (58 000 beads, 1728 encoding sequences) and screened for cathepsin D inhibition using a biochemical enzyme activity assay. The circuit sorted 1518 hit droplets for collection following 18 min incubation over a 240 min analysis. Visual inspection of a subset of droplets (1188 droplets) yielded a 24% false discovery rate (1166 pepstatin A beads; 366 negative control beads). Using template barcoding strategies, it was possible to count hit collection beads (1863) using next-generation sequencing data. Bead-specific barcodes enabled replicate counting, and the false discovery rate was reduced to 2.6% by only considering hit-encoding sequences that were observed on >2 beads. This work represents a complete distributable small molecule discovery platform, from microfluidic miniaturized automation to ultrahigh-throughput hit deconvolution by sequencing.
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spelling pubmed-53506042017-03-16 An Integrated Microfluidic Processor for DNA-Encoded Combinatorial Library Functional Screening MacConnell, Andrew B. Price, Alexander K. Paegel, Brian M. ACS Comb Sci [Image: see text] DNA-encoded synthesis is rekindling interest in combinatorial compound libraries for drug discovery and in technology for automated and quantitative library screening. Here, we disclose a microfluidic circuit that enables functional screens of DNA-encoded compound beads. The device carries out library bead distribution into picoliter-scale assay reagent droplets, photochemical cleavage of compound from the bead, assay incubation, laser-induced fluorescence-based assay detection, and fluorescence-activated droplet sorting to isolate hits. DNA-encoded compound beads (10-μm diameter) displaying a photocleavable positive control inhibitor pepstatin A were mixed (1920 beads, 729 encoding sequences) with negative control beads (58 000 beads, 1728 encoding sequences) and screened for cathepsin D inhibition using a biochemical enzyme activity assay. The circuit sorted 1518 hit droplets for collection following 18 min incubation over a 240 min analysis. Visual inspection of a subset of droplets (1188 droplets) yielded a 24% false discovery rate (1166 pepstatin A beads; 366 negative control beads). Using template barcoding strategies, it was possible to count hit collection beads (1863) using next-generation sequencing data. Bead-specific barcodes enabled replicate counting, and the false discovery rate was reduced to 2.6% by only considering hit-encoding sequences that were observed on >2 beads. This work represents a complete distributable small molecule discovery platform, from microfluidic miniaturized automation to ultrahigh-throughput hit deconvolution by sequencing. American Chemical Society 2017-02-15 2017-03-13 /pmc/articles/PMC5350604/ /pubmed/28199790 http://dx.doi.org/10.1021/acscombsci.6b00192 Text en Copyright © 2017 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle MacConnell, Andrew B.
Price, Alexander K.
Paegel, Brian M.
An Integrated Microfluidic Processor for DNA-Encoded Combinatorial Library Functional Screening
title An Integrated Microfluidic Processor for DNA-Encoded Combinatorial Library Functional Screening
title_full An Integrated Microfluidic Processor for DNA-Encoded Combinatorial Library Functional Screening
title_fullStr An Integrated Microfluidic Processor for DNA-Encoded Combinatorial Library Functional Screening
title_full_unstemmed An Integrated Microfluidic Processor for DNA-Encoded Combinatorial Library Functional Screening
title_short An Integrated Microfluidic Processor for DNA-Encoded Combinatorial Library Functional Screening
title_sort integrated microfluidic processor for dna-encoded combinatorial library functional screening
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5350604/
https://www.ncbi.nlm.nih.gov/pubmed/28199790
http://dx.doi.org/10.1021/acscombsci.6b00192
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