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真菌着丝粒H3蛋白的系统发育分析。

Phylogenetic analysis of fungal centromere H3 proteins.

作者信息

Baker Richard E, Rogers Kelly

机构信息

Department of Molecular Genetics and Microbiology, University of Massachusetts Medical School, Worcester, Massachusetts 01655, USA.

出版信息

Genetics. 2006 Nov;174(3):1481-92. doi: 10.1534/genetics.106.062794. Epub 2006 Oct 8.

DOI:10.1534/genetics.106.062794
PMID:17028330
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1667059/
Abstract

Centromere H3 proteins (CenH3's) are variants of histone H3 specialized for packaging centromere DNA. Unlike canonical H3, which is among the most conserved of eukaryotic proteins, CenH3's are rapidly evolving, raising questions about orthology and conservation of function across species. To gain insight on CenH3 evolution and function, a phylogenetic analysis was undertaken on CenH3 proteins drawn from a single, ancient lineage, the Fungi. Using maximum-likelihood methods, a credible phylogeny was derived for the conserved histone fold domain (HFD) of 25 fungal CenH3's. The collection consisted mostly of hemiascomycetous yeasts, but also included basidiomycetes, euascomycetes, and an archaeascomycete. The HFD phylogeny closely recapitulated known evolutionary relationships between the species, supporting CenH3 orthology. The fungal CenH3's lacked significant homology in their N termini except for those of the Saccharomyces/Kluyveromyces clade that all contained a region homologous to the essential N-terminal domain found in Saccharomyces cerevisiae Cse4. The ability of several heterologous CenH3's to function in S. cerevisiae was tested and found to correlate with evolutionary distance. Domain swapping between S. cerevisiae Cse4 and the noncomplementing Pichia angusta ortholog showed that species specificity could not be explained by the presence or absence of any recognized secondary structural element of the HFD.

摘要

着丝粒H3蛋白(CenH3)是专门用于包装着丝粒DNA的组蛋白H3变体。与真核生物中最保守的典型H3不同,CenH3正在快速进化,这引发了关于跨物种直系同源性和功能保守性的问题。为了深入了解CenH3的进化和功能,对来自单一古老谱系——真菌的CenH3蛋白进行了系统发育分析。使用最大似然法,得出了25种真菌CenH3保守组蛋白折叠结构域(HFD)的可靠系统发育树。该集合主要由半子囊菌酵母组成,但也包括担子菌、真子囊菌和古子囊菌。HFD系统发育树紧密概括了物种之间已知的进化关系,支持CenH3的直系同源性。除了酿酒酵母/克鲁维酵母进化枝中的那些CenH3蛋白外,真菌CenH3蛋白在其N端缺乏显著的同源性,酿酒酵母/克鲁维酵母进化枝中的所有CenH3蛋白都包含一个与酿酒酵母Cse4中必需的N端结构域同源的区域。测试了几种异源CenH3在酿酒酵母中发挥功能的能力,发现其与进化距离相关。酿酒酵母Cse4和非互补的奥古斯塔毕赤酵母直系同源物之间的结构域交换表明,物种特异性不能用HFD的任何公认二级结构元件的存在或不存在来解释。

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