Hamilton Eileen P, Kapusta Aurélie, Huvos Piroska E, Bidwell Shelby L, Zafar Nikhat, Tang Haibao, Hadjithomas Michalis, Krishnakumar Vivek, Badger Jonathan H, Caler Elisabet V, Russ Carsten, Zeng Qiandong, Fan Lin, Levin Joshua Z, Shea Terrance, Young Sarah K, Hegarty Ryan, Daza Riza, Gujja Sharvari, Wortman Jennifer R, Birren Bruce W, Nusbaum Chad, Thomas Jainy, Carey Clayton M, Pritham Ellen J, Feschotte Cédric, Noto Tomoko, Mochizuki Kazufumi, Papazyan Romeo, Taverna Sean D, Dear Paul H, Cassidy-Hanley Donna M, Xiong Jie, Miao Wei, Orias Eduardo, Coyne Robert S
Department of Molecular, Cellular, and Developmental Biology, University of California, Santa Barbara, Santa Barbara, United States.
Department of Human Genetics, University of Utah School of Medicine, Salt Lake City, United States.
Elife. 2016 Nov 28;5:e19090. doi: 10.7554/eLife.19090.
The germline genome of the binucleated ciliate undergoes programmed chromosome breakage and massive DNA elimination to generate the somatic genome. Here, we present a complete sequence assembly of the germline genome and analyze multiple features of its structure and its relationship to the somatic genome, shedding light on the mechanisms of genome rearrangement as well as the evolutionary history of this remarkable germline/soma differentiation. Our results strengthen the notion that a complex, dynamic, and ongoing interplay between mobile DNA elements and the host genome have shaped chromosome structure, locally and globally. Non-standard outcomes of rearrangement events, including the generation of short-lived somatic chromosomes and excision of DNA interrupting protein-coding regions, may represent novel forms of developmental gene regulation. We also compare 's germline/soma differentiation to that of other characterized ciliates, illustrating the wide diversity of adaptations that have occurred within this phylum.
双核纤毛虫的种系基因组经历程序性染色体断裂和大量DNA消除,以产生体细胞基因组。在此,我们展示了种系基因组的完整序列组装,并分析了其结构的多个特征及其与体细胞基因组的关系,从而揭示了基因组重排机制以及这种显著的种系/体细胞分化的进化历史。我们的结果强化了这样一种观念,即移动DNA元件与宿主基因组之间复杂、动态且持续的相互作用在局部和全局上塑造了染色体结构。重排事件的非标准结果,包括短命体细胞染色体的产生和中断蛋白质编码区域的DNA切除,可能代表了发育基因调控的新形式。我们还将[该纤毛虫名称]的种系/体细胞分化与其他已表征的纤毛虫进行了比较,阐明了该门内发生的广泛适应性多样性。