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Updated: Jul 14, 2026

An Ultrahigh-throughput Microfluidic Platform for Single-cell Genome Sequencing
Published on: May 23, 2018
Development of a Microdroplet-Based Functional Genomic Screening Pipeline by Combination of DNA Nanoflowers and
Joan Castells-Ballester1, Abigail Taron1, Madison Smith1
1Research Department, New England Biolabs, 240 County Road, Ipswich, Massachusetts01938, United States.
Abstract:
We present a microfluidic workflow that couples reconstituted in vitro transcription-translation (IVTT) with ultrahigh-throughput droplet screening to directly link genotype and phenotype within complex, heterogeneous DNA pools. The approach employs DNA nanoflowers as clonal, high-copy templates, enabling robust protein expression from single DNA molecules encapsulated in picoliter droplets. When integrated with fluorescence-assisted microdroplet sorting (FADS) and a DNA recovery pipeline that reconstituted selected libraries for subsequent iterative rounds, the platform achieves approximately 400-600-fold enrichment per selection cycle and supports functional discovery and directed evolution entirely independent of host cell expression. As a proof of principle, we demonstrate recovery of the recombinase RecA from an E. coli genomic library screened for single-stranded DNA binders, highlighting the platform's capability to identify DNA-interacting and DNA-modifying enzymes. By eliminating host-derived background activity and toxicity constraints that often complicate lysate- or cell-based metagenomic screens, this method potentially expands access to enzyme classes that have historically been difficult to assay.

