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首页> 外文期刊>The ISME journal emultidisciplinary journal of microbial ecology >Deciphering unusual uncultured magnetotactic multicellular prokaryotes through genomics
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Deciphering unusual uncultured magnetotactic multicellular prokaryotes through genomics

机译:通过基因组学破译异常的未培养趋磁多细胞原核生物

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摘要

Candidatus Magnetoglobus multicellularis (Ca. M. multicellularis) is a member of a group of uncultured magnetotactic prokaryotes that possesses a unique multicellular morphology. To better understand this organism's physiology, we used a genomic approach through pyrosequencing. Genomic data analysis corroborates previous structural studies and reveals the proteins that are likely involved in multicellular morphogenesis of this microorganism. Interestingly, some detected protein sequences that might be involved in cell adhesion are homologues to phylogenetically unrelated filamentous multicellular bacteria proteins, suggesting their contribution in the early development of multicellular organization in Bacteria. Genes related to the behavior of Ca. M. multicellularis (chemo-, photo- and magnetotaxis) and its metabolic capabilities were analyzed. On the basis of the genomic–physiologic information, enrichment media were tested. One medium supported chemoorganoheterotrophic growth of Ca. M. multicellularis and allowed the microorganisms to maintain their multicellular morphology and cell cycle, confirming for the first time that the entire life cycle of the MMP occurs in a multicellular form. Because Ca. M. multicellularis has a unique multicellular life style, its cultivation is an important achievement for further studies regarding the multicellular evolution in prokaryotes.
机译:多细胞念珠菌(Ca. M. multicellularis)是一组具有独特多细胞形态的未培养的趋磁原核生物的成员。为了更好地了解这种生物的生理,我们通过焦磷酸测序采用了基因组方法。基因组数据分析证实了先前的结构研究,并揭示了可能与该微生物的多细胞形态发生有关的蛋白质。有趣的是,一些可能与细胞粘附有关的蛋白序列是与系统发育无关的丝状多细胞细菌蛋白的同源物,表明它们在细菌中多细胞组织的早期发育中发挥了作用。与钙的行为有关的基因。分析了多细胞支原体(趋化性,光致和趋磁性)及其代谢能力。根据基因组生理信息,对富集培养基进行了测试。一种培养基支持Ca的化学异养营养生长。 M. multicellularis并允许微生物保持其多细胞形态和细胞周期,首次确认MMP的整个生命周期都以多细胞形式存在。因为钙多细胞分枝杆菌具有独特的多细胞生活方式,其培养对于原核生物中多细胞进化的进一步研究是重要的成就。

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