色を感知する酵母の工学的開発で画期的進展(NUS researchers achieve breakthrough in engineering colour-sensing yeast)

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2026-08-11 シンガポール国立大学(NUS)

シンガポール国立大学(NUS)の研究チームは、パン酵母に赤色光と青色光を識別・応答させる「多色オプトジェネティクス」技術を開発した。従来、酵母を光に応答させる研究は単一色が中心だったが、研究チームは赤色光応答タンパク質「y-iLight」を酵母向けに改変し、青色光による誤作動(クロストーク)を抑制するタンパク質工学を組み合わせることで、1種類の酵母内で赤・青2系統の遺伝子発現を独立制御することに成功した。さらに、異なる色の光を照射するタイミングや割合を変えることで、代謝経路や細胞凝集を制御できることを実証。ルテオリン生産では酵素発現を光で調整し、赤色光によって酵母を凝集・沈降させる操作も可能にした。また、光をマスク越しに照射して、異なる色の化合物を生成する「生きた画像」の作製にも成功した。本技術は、微生物による化学品・材料生産、代謝経路の最適化、空間的に制御された生体材料などへの応用が期待される。

2026 0811 colour-sensing yeast-3
While yeast has been previously engineered to respond to single colours of light, this is the first time that a single strain of yeast has been engineered to respond to more than one colour.

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酵母におけるデュアルチャネル光遺伝学による、細胞プロセスおよび経路の多重光制御 Dual-channel optogenetics in yeast for multiplexed light-based control of cellular processes and pathways

Linus Yu Han Tan,Zhangyuan Lin,Jing Wui Yeoh,Jingyun Zhang & Chueh Loo Poh
Nature Communications  Published:22 May 2026
DOI:https://doi.org/10.1038/s41467-026-73399-0

Abstract

Optogenetics which involves the use of light to control cell functions on a genetic level has found utility in studying cell physiology, biomaterials and metabolic engineering. S. cerevisiae is an industrially relevant model organism that is used in many applications, but due to the large number of genes required and issues relating to cross-activation between different colours, optogenetics for different wavelengths of light have not been multiplexed in S. cerevisiae. In this paper, we develop a compact red light responsive optogenetic system for S. cerevisiae that requires only a single gene and no exogenous cofactors. Through engineering modular protein domains, we reduce the cross-activation of our system by blue light. We integrate our red light optogenetic system with EL222 blue light optogenetics to establish dual channel optogenetics in S. cerevisiae and demonstrate its utility for engineering biology through the light-based control of flavonoid luteolin synthesis and flocculation for ease of product extraction. We also demonstrate our system’s potential for the development of living materials by producing dual-coloured optogenetic patterns using S. cerevisiae. This work expands optogenetic applications in S. cerevisiae from single-light to multi-light systems, introducing the potential to multiplex different colours of light for dynamic, orthogonal control of separate cell processes.

細胞遺伝子工学
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