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本文引用的文献

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Complete genome sequence of Anabaena variabilis ATCC 29413.多变鱼腥藻ATCC 29413的全基因组序列
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Bacterial cell wall. MurJ is the flippase of lipid-linked precursors for peptidoglycan biogenesis.细菌细胞壁。MurJ 是肽聚糖生物合成的脂质连接前体的翻转酶。
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Interplay of the serine/threonine-kinase StkP and the paralogs DivIVA and GpsB in pneumococcal cell elongation and division.肺炎链球菌细胞伸长与分裂过程中丝氨酸/苏氨酸激酶StkP与同源蛋白DivIVA和GpsB的相互作用
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Putative mechanisms and biological role of coccoid form formation in Campylobacter jejuni.空肠弯曲菌中球状体形成的潜在机制及生物学作用。
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Rod-like bacterial shape is maintained by feedback between cell curvature and cytoskeletal localization.杆状细菌的形状通过细胞曲率和细胞骨架定位之间的反馈来维持。
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A new metabolic cell-wall labelling method reveals peptidoglycan in Chlamydia trachomatis.一种新的代谢型细胞壁标记方法揭示了沙眼衣原体中的肽聚糖。
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The bacterial cell division proteins FtsA and FtsZ self-organize into dynamic cytoskeletal patterns.细菌细胞分裂蛋白 FtsA 和 FtsZ 自我组织成动态细胞骨架模式。
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Discovery of chlamydial peptidoglycan reveals bacteria with murein sacculi but without FtsZ.发现衣原体肽聚糖揭示了具有菌壁囊泡但没有 FtsZ 的细菌。
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A perspective on micro-evo-devo: progress and potential.微观进化发育视角:进展与潜力。
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细菌形态发生的机制:进化细胞生物学方法提供了新见解。

Mechanisms of bacterial morphogenesis: evolutionary cell biology approaches provide new insights.

作者信息

Jiang Chao, Caccamo Paul D, Brun Yves V

机构信息

Department of Biology, Indiana University, Bloomington, IN, USA.

出版信息

Bioessays. 2015 Apr;37(4):413-25. doi: 10.1002/bies.201400098. Epub 2015 Feb 9.

DOI:10.1002/bies.201400098
PMID:25664446
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4368449/
Abstract

How Darwin's "endless forms most beautiful" have evolved remains one of the most exciting questions in biology. The significant variety of bacterial shapes is most likely due to the specific advantages they confer with respect to the diverse environments they occupy. While our understanding of the mechanisms generating relatively simple shapes has improved tremendously in the last few years, the molecular mechanisms underlying the generation of complex shapes and the evolution of shape diversity are largely unknown. The emerging field of bacterial evolutionary cell biology provides a novel strategy to answer this question in a comparative phylogenetic framework. This relatively novel approach provides hypotheses and insights into cell biological mechanisms, such as morphogenesis, and their evolution that would have been difficult to obtain by studying only model organisms. We discuss the necessary steps, challenges, and impact of integrating "evolutionary thinking" into bacterial cell biology in the genomic era.

摘要

达尔文所说的“最为优美的无尽形态”是如何演化而来的,至今仍是生物学中最令人兴奋的问题之一。细菌形状的显著多样性很可能归因于它们在所处的各种环境中所具有的特定优势。尽管在过去几年里,我们对产生相对简单形状的机制的理解有了极大的提升,但产生复杂形状的分子机制以及形状多样性的演化在很大程度上仍不为人知。新兴的细菌进化细胞生物学领域提供了一种新策略,能在比较系统发育框架下回答这个问题。这种相对新颖的方法为细胞生物学机制(如形态发生)及其演化提供了假设和见解,而仅通过研究模式生物是很难获得这些的。我们讨论了在基因组时代将“进化思维”融入细菌细胞生物学的必要步骤、挑战及影响。