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无剪接体内含子的真核细胞:重新审视内含子和剪接体进化意义

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  • 中国科学院分子细胞科学卓越创新中心(上海生物化学与细胞生物学研究所),上海 200031

收稿日期: 2026-08-13

  修回日期: 2026-09-12

  网络出版日期: 2026-09-17

基金资助

国家自然科学基金项目(编号:32150004),国家重点研发计划(编号:2023YFA0913400),尚思计划资助,2025年度中国科学院特别研究助理资助项目和赛诺菲优秀青年人才奖励金资助[Supported by the National Natural Science Foundation of China (No. 32150004), the National Key Research and Development Program of China (No. 2023YFA0913400), the Shanghai Academy of Natural Sciences (SANS), the 2025 Chinese Academy of Sciences Special Research Assistant Program and the Sanofi Scholarship Program]

Spliceosomal intron-free eukaryotic cells: rethinking the evolutionary significance of introns and the spliceosome

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  • Center for Excellence in Molecular Cell Science, Shanghai Institute of Biochemistry and Cell Biology, Chinese Academy of Sciences, Shanghai 200031, China

Received date: 2026-08-13

  Revised date: 2026-09-12

  Online published: 2026-09-17

摘要

剪接体内含子是真核生物基因组的重要组成部分,广泛存在于编码基因中,并在RNA成熟过程中被剪接移除。剪接体内含子去除被认为是真核基因表达调控和生命活动的重要基础,也被认为是真核生物进化的重要驱动力之一。现存可独立生活的真核生物都有剪接体内含子。然而,内含子及剪接体是否为真核细胞生存所必需仍是一个重要的基础生物学问题。近年来,合成生物学与基因组工程的发展为探索真核生命的基本组成提供了新的研究策略。通过合成基因组设计和系统性基因组简化,研究发现酿酒酵母能够在缺失全部已知剪接体内含子的情况下维持生存,表明剪接体内含子并非维持酵母生命所必需的遗传元件,剪接体也并非维持酵母生命所必需的分子机器。这一发现挑战了对内含子功能及剪接体必需性的传统认识,为理解内含子的进化意义提供了新的视角,也为人工设计和合成真核基因组提供了指导原则。本文系统梳理内含子的类型与多层次功能,重点介绍无剪接体内含子酿酒酵母SYNE27α的构建、存活与生长代价,以及在该背景下剪接体非必需性的证据,并讨论其对内含子进化保留和最小真核基因组构建的启示。

本文引用格式

满鑫, 周金秋 . 无剪接体内含子的真核细胞:重新审视内含子和剪接体进化意义[J]. 遗传, 0 : 0 . DOI: 10.16288/j.yczz.26-199

Abstract

Spliceosomal introns are important components of eukaryotic genomes, occurring widely within protein-coding genes and being removed through splicing during RNA maturation. Spliceosomal intron removal has long been considered an important foundation of eukaryotic gene expression regulation and cellular function, and has also been proposed as a potential driver of eukaryotic evolution. All extant free-living eukaryotes are known to contain spliceosomal introns. However, whether introns and the spliceosome are essential for the survival of eukaryotic cells remains a fundamental question in biology. In recent years, advances in synthetic biology and genome engineering have provided new strategies for exploring the fundamental components of eukaryotic life. Through synthetic genome design and systematic genome minimization, recent studies have demonstrated that Saccharomyces cerevisiae can survive in the complete absence of all known spliceosomal introns, indicating that spliceosomal introns are not genetic elements essential for yeast viability, and that the spliceosome is likewise not a molecular machine required for yeast survival. This finding challenges the conventional understanding of spliceosomal intron function and spliceosome essentiality, provides a new perspective on the evolutionary significance of introns, and offers guiding principles for the rational design and construction of synthetic eukaryotic genomes. This review systematically summarizes the types and multifaceted functions of introns, with a focus on the construction, viability, and fitness cost of the spliceosomal intron-free Saccharomyces cerevisiae strain SYNE27α, as well as evidence that the spliceosome is dispensable in this context. It further discusses the implications for the evolutionary retention of introns and the construction of minimal eukaryotic genomes.

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