High‐Throughput Dual Resonance and Non‐Resonance Mode Raman‐Activated Cell Sorting With Low‐Volume Harvesting

Raman-activated cell sorting (RACS) platforms are limited by inflexibility in tackling different Raman signals and inability to export the sorted cells in a sufficiently low volume for downstream processing. Here, we present a generally applicable RACS platform that tackles these challenges. For adaptive dual-mode operation that supports diverse spontaneous Raman signals, microfluidic optical tweezers are designed with switchable capture strategies, with a high-throughput in-stream mode (up to 834 events/min) for resonance Raman signals with short exposures (<0.1 s) for resonance-Raman-based screening, and a high-precision out-stream mode (up to 50 events/min) for non-resonance Raman detection with extended exposures (>0.1 s). Moreover, to achieve low-volume concentrated harvesting, an on-chip storage and centralized harvesting mechanism delivers target cells in uniform 10 µL suspensions with >97% purity. Using the in-stream mode for resonance Raman screening, we isolated a Yarrowia lipolytica mutant with 77% increased β-carotene production in just one sorting round directly from a mutant library. Employing the out-stream mode for non-resonance Raman detection, we enriched phosphate-solubilizing bacteria from wastewater with nearly 100% recovery in concentrated 10 µL volumes, enabling direct function-targeted mini-metagenomics. This high-throughput dual-mode RACS platform with low-volume cell harvesting greatly expands the application of label-free live-cell sorting via metabolic phenome.

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Publication Details

Journal
Small Methods
Published
2026-09-12
DOI
https://doi.org/10.1002/smtd.71037
Primary Topic
Microfluidic and Bio-sensing Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

High‐Throughput Dual Resonance and Non‐Resonance Mode Raman‐Activated Cell Sorting With Low‐Volume Harvesting

Teng Xu, 侯希宝, Jian Xu, Yilong Zhao et al.
Small Methods
Microfluidic and Bio-sensing Technologies
article

High‐Throughput Dual Resonance and Non‐Resonance Mode Raman‐Activated Cell Sorting With Low‐Volume Harvesting

Teng Xu, 侯希宝, Jian Xu, Yilong Zhao, Min He, Fangzhou Li, Dongfang Hao, Pengfei Zhu, Yukuan Wang, Jingyun Song, Huijie Liu, Bi Chen, Cuiyun Jia, Bo Ma, Yang Zhang, Xuewen Zhang
article en

Abstract

Raman-activated cell sorting (RACS) platforms are limited by inflexibility in tackling different Raman signals and inability to export the sorted cells in a sufficiently low volume for downstream processing. Here, we present a generally applicable RACS platform that tackles these challenges. For adaptive dual-mode operation that supports diverse spontaneous Raman signals, microfluidic optical tweezers are designed with switchable capture strategies, with a high-throughput in-stream mode (up to 834 events/min) for resonance Raman signals with short exposures (<0.1 s) for resonance-Raman-based screening, and a high-precision out-stream mode (up to 50 events/min) for non-resonance Raman detection with extended exposures (>0.1 s). Moreover, to achieve low-volume concentrated harvesting, an on-chip storage and centralized harvesting mechanism delivers target cells in uniform 10 µL suspensions with >97% purity. Using the in-stream mode for resonance Raman screening, we isolated a Yarrowia lipolytica mutant with 77% increased β-carotene production in just one sorting round directly from a mutant library. Employing the out-stream mode for non-resonance Raman detection, we enriched phosphate-solubilizing bacteria from wastewater with nearly 100% recovery in concentrated 10 µL volumes, enabling direct function-targeted mini-metagenomics. This high-throughput dual-mode RACS platform with low-volume cell harvesting greatly expands the application of label-free live-cell sorting via metabolic phenome.

Small Methods
Cell Biotech (South Korea) (KR), Guizhou Water Conservancy and Hydropower Survey and Design Institute (CN), Qinghai New Energy (China) (CN), Shandong Lianxing Energy Group (China) (CN), Hua Medicine (China) (CN), Qingdao Institute of Bioenergy and Bioprocess Technology (CN), University of Chinese Academy of Sciences (CN)
Chinese Academy of Sciences, National Key Research and Development Program of China
Clean water and sanitation
Openalex Percentile: Top 20%
Microfluidic and Bio-sensing Technologies
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