高性能微生物発見を加速するAI搭載の「デジタルコロニーピッカー」開発(Researchers Develop AI-Powered “Digital Colony Picker” to Accelerate Discovery of High-Performing Microbes)

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2025-10-14 中国科学院(CAS)

中国科学院青島生物能源・生物過程研究所(QIBEBT)は、AI搭載の自動化微生物スクリーニング装置「デジタルコロニーピッカー(DCP)」を開発した。マイクロ流体チップ上の1.6万個の微小チャンバーで単一細胞を培養し、AIが成長と代謝をリアルタイム解析。標的コロニーをレーザーで非接触抽出する。実証実験では、Zymomonas mobilisの乳酸耐性株を高速発見し、生産量を約20%向上させた。高スループットで汚染を防ぐ設計を特徴とし、遺伝子改変株や進化研究など幅広い応用が可能。成果は『Nature Communications』誌に掲載。

高性能微生物発見を加速するAI搭載の「デジタルコロニーピッカー」開発(Researchers Develop AI-Powered “Digital Colony Picker” to Accelerate Discovery of High-Performing Microbes)
AI-driven multi-phenotype, high-throughput cell screening platform – DCP. (Image by QIBEBT)

<関連情報>

マルチモーダル表現型による微生物株の分類のための AI 搭載ハイスループット デジタルコロニーピッカー プラットフォーム AI-powered high-throughput digital colony picker platform for sorting microbial strains by multi-modal phenotypes

Zhidian Diao,Qiqun Peng,Sijun Luo,Lingyan Kan,Anle Ge,Wei Gao,Runxia Li,Weiwei Bao,Xixian Wang,Yuetong Ji,Jian Xu,Shihui Yang & Bo Ma
Nature Communications  Published:10 October 2025
DOI:https://doi.org/10.1038/s41467-025-63929-7

Abstract

Phenotype-based screening remains a major bottleneck in the development of microbial cell factories. Here, we present a Digital Colony Picker (DCP), an AI-powered platform for automated, high-throughput screening and export of microbial clones based on growth and metabolic phenotypes at single-cell resolution, without agar or physical contact. Using a microfluidic chip comprising 16,000 addressable picoliter-scale microchambers, individual cells are compartmentalized, dynamically monitored by AI-driven image analysis, and selectively exported via laser-induced bubble technique. Applied to Zymomonas mobilis, DCP enabled en masse screening and identified a mutant with 19.7% increased lactate production and 77.0% enhanced growth under 30 g/L lactate stress. This phenotype was linked to overexpression of ZMOp39x027, a canonical outer membrane autotransporter that promotes lactate transport and cell proliferation under stress. DCP provides a multi-modal phenotyping solution with spatiotemporal precision and scalable throughput, offering a generalizable strategy for accelerated strain engineering and functional gene discovery.

生物工学一般
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