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草履虫的微操作:从非孟德尔遗传到多功能微机器的展望。

Micromanipulation in Paramecium: From non-mendelian inheritance to the outlook for versatile micromachines.

机构信息

Department of Biological Science, Faculty of Sciences and Technology, Senshu University of Ishinomaki, Ishinomaki, Japan.

出版信息

J Eukaryot Microbiol. 2022 Sep;69(5):e12909. doi: 10.1111/jeu.12909. Epub 2022 May 4.

Abstract

This review addresses nine areas of knowledge revealed by micromanipulations performed with Paramecium. Microinjection has shown that sexual maturation and senescence of Paramecium caudatum is a programmed process conducted by a specific gene and its product protein. In Paramecium tetraurelia, autogamy was revealed to depend on the number of DNA syntheses rather than the number of cell divisions in clonal aging. The cytoplasmic complementarity test established that microinjection of wild-type cytoplasm can correct genetic defects of mutants. The concept of complementarity together with protein chemistry revealed compounds that control membrane excitability. In non-Mendelian inheritance, noncoding small RNAs made from the parental micronucleus regulate the rearrangement of the progeny's macronuclear DNA. The macronucleus has the potential to be used as a factory for genetic engineering. The development and differentiation of progeny's nuclei in mating pairs are controlled by the parental macronucleus. The chemical reaction processes associated with exocytosis have been revealed by microinjection of various enzymes and antibodies. Using the fusion gene of histone H2B and yellow-fluorescence protein, it was revealed that the fusion gene-mRNA is transferred between cells during mating. Experiments with endosymbiotic bacteria and the host shed light on the conditions needed to establish sustainable symbiotic relationships.

摘要

这篇综述讨论了通过对草履虫进行微操作所揭示的九个知识领域。微注射表明,尾草履虫的性成熟和衰老过程是由特定基因及其产物蛋白质控制的程序性过程。在四膜虫中,自交被揭示依赖于 DNA 合成的次数,而不是克隆衰老过程中的细胞分裂次数。细胞质互补性试验证实,将野生型细胞质微注射入突变体可以纠正其遗传缺陷。互补性的概念与蛋白质化学一起揭示了控制膜兴奋性的化合物。在非孟德尔遗传中,来自亲代小核的非编码小 RNA 调节子代大核 DNA 的重排。大核具有作为遗传工程工厂的潜力。亲代大核控制有性生殖对生物配对中后代核的发育和分化。通过微注射各种酶和抗体揭示了与胞吐作用相关的化学反应过程。利用组蛋白 H2B 和黄色荧光蛋白的融合基因,揭示了在有性生殖过程中融合基因-mRNA 在细胞间转移。内共生细菌和宿主的实验揭示了建立可持续共生关系所需的条件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8177/9543784/1459255884c8/JEU-69-0-g002.jpg

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