W.M. Keck Science Department, The Claremont Colleges, Claremont, California.
Curr Protoc. 2021 Jun;1(6):e151. doi: 10.1002/cpz1.151.
The fission yeast Schizosaccharomyces pombe is a rod-shaped unicellular eukaryote, well known for its contributions as a model organism for our understanding of regulation and conservation of the eukaryotic cell cycle. As a yeast divergent from the budding yeast Saccharomyces cerevisiae, S. pombe shares more common features with humans including gene structures, chromatin dynamics, and the prevalence of introns, as well as the control of gene expression through pre-mRNA splicing, epigenetic gene silencing, and RNAi pathways. With the advent of new methodologies for research, S. pombe has become an increasingly used model to investigate various molecular and cellular processes over the last 50 years. Also, S. pombe serves as an excellent system for undergraduate students to obtain hands-on research experience. Versatile experimental approaches are amenable using the fission yeast system due to its relative ease of maintenance, its inherent cellular properties, its power in classic and molecular genetics, and its feasibility in genomics and proteomics analyses. This article provides an overview of S. pombe's rise as a valuable model organism and presents examples to highlight the significance of S. pombe as a unicellular "micromammal" in investigating biological questions. We especially focus on the advantages of and the advancements in using fission yeast for studying biological processes that are characteristic of metazoans to decipher the underlining molecular mechanisms fundamental to all eukaryotes. © 2021 Wiley Periodicals LLC.
裂殖酵母 Schizosaccharomyces pombe 是一种杆状单细胞真核生物,作为真核细胞周期调控和保守性研究的模式生物而广为人知。裂殖酵母与出芽酵母 Saccharomyces cerevisiae 不同,与人类具有更多的共同特征,包括基因结构、染色质动力学和内含子的普遍性,以及通过前体 mRNA 剪接、表观遗传基因沉默和 RNAi 途径控制基因表达。随着新的研究方法的出现,裂殖酵母在过去 50 年中已成为研究各种分子和细胞过程的越来越有用的模型。此外,裂殖酵母也是让本科生获得实践研究经验的绝佳系统。由于其相对容易维护、固有的细胞特性、在经典和分子遗传学中的强大功能以及在基因组学和蛋白质组学分析中的可行性,裂殖酵母系统可采用多种灵活的实验方法。本文概述了裂殖酵母作为一种有价值的模式生物的兴起,并通过实例强调了裂殖酵母作为一种单细胞“微哺乳动物”在研究生物问题中的重要性。我们特别关注利用裂殖酵母研究后生动物特征的生物学过程的优势和进展,以揭示所有真核生物基本的分子机制。© 2021 Wiley Periodicals LLC.