バイオテクノロジー応用に向けた人工膜なしオルガネラの開発(Synthetic Membraneless Organelles Developed for Biotechnological Applications)

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2026-03-10 中国科学院(CAS)

中国学院合肥物質科学研究院教授研究チームは、分離(LLPS)によって形成れるない人工細胞器官(MLOs)と、そのバイオテクノロジー応用に関する総説発表した。研究では、足場分子種類、クライアント分子取り込み戦略、評価手法3観点から人工MLO設計原理構築方法体系整理した。これらのなし微小区画は、生体分子空間集約すること反応効率高める“細胞マイクロリアター”として機能し、代謝経路設計、酵素活性向上、遺伝子発現制御、タンパク質生産など応用できる。今後AIによるタンパク質設計分解能イメージング進展により、次世代細胞工場精密医療展開期待れる。

バイオテクノロジー応用に向けた人工膜なしオルガネラの開発(Synthetic Membraneless Organelles Developed for Biotechnological Applications)
Construction and applications of membraneless organelles (Image by SUN Manman)

<関連情報>

バイオテクノロジーにおける合成相分離膜レス細胞小器官の工学と応用の進歩 Advances in engineering and applications of synthetic phase-separated membraneless organelles in biotechnology

Manman Sun, Alex Xiong Gao, Bin Ye, Yimeng Zhao, Rodrigo Ledesma-Amaro, Jin Gao, Peng Wang
Synthetic and Systems Biotechnology  Available online: 22 January 2026
DOI:https://doi.org/10.1016/j.synbio.2026.01.007

Highlights

  • Reviews major scaffold types for constructing synthetic membraneless organelles via LLPS.
  • Details strategies for client protein recruitment and dynamic control within synthetic organelles.
  • Summarizes characterization methods revealing phase behavior and material properties of MLOs.
  • Categorizes diverse applications of synthetic MLOs in biotechnology.
  • Discusses challenges and future directions for the construction and application of MLOs.

Abstract

Membraneless organelles (MLOs) formed through liquid-liquid phase separation (LLPS) constitute crucial dynamic microenvironments within cells, capable of selectively concentrating specific molecules and regulating biochemical reactions. Based on the working mechanisms of natural MLOs, researchers have designed and constructed various synthetic MLOs. These MLOs have been applied in regulating enzyme activity, optimizing metabolic pathways, regulating gene expression, producing recombinant proteins, and developing functional biomaterials. Here, we systematically summarized the design strategies, characterization techniques, and client protein recruitment methods for synthetic MLOs, and categorically reviewed their application progress in the biotechnology field. We also discussed current challenges faced in the practical applications of synthetic MLOs and future research directions. This review aims to provide theoretical guidance and practical reference for the design and application of LLPS-driven synthetic MLOs, thereby promoting their innovative development in synthetic biology and biotechnology.

細胞遺伝子工学
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