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影响早期细菌分裂过程中子细胞排列的因素。

Factors affecting daughter cells' arrangement during the early bacterial divisions.

机构信息

Institute of Microbiology and Immunology, National Yang-Ming University, Taipei, Taiwan, Republic of China.

出版信息

PLoS One. 2010 Feb 10;5(2):e9147. doi: 10.1371/journal.pone.0009147.

Abstract

On agar plates, daughter cells of Escherichia coli mutually slide and align side-by-side in parallel during the first round of binary fission. This phenomenon has been previously attributed to an elastic material that restricts apparently separated bacteria from being in string. We hypothesize that the interaction between bacteria and the underneath substratum may affect the arrangement of the daughter bacteria. To test this hypothesis, bacterial division on hyaluronic acid (HA) gel, as an alternative substratum, was examined. Consistent with our proposition, the HA gel differs from agar by suppressing the typical side-by-side alignments to a rare population. Examination of bacterial surface molecules that may contribute to the daughter cells' arrangement yielded an observation that, with disrupted lpp, the E. coli daughter cells increasingly formed non-typical patterns, i.e. neither sliding side-by-side in parallel nor forming elongated strings. Therefore, our results suggest strongly that the early cell patterning is affected by multiple interaction factors. With oscillatory optical tweezers, we further demonstrated that the interaction force decreased in bacteria without Lpp, a result substantiating our notion that the side-by-side sliding phenomenon directly reflects the strength of in-situ interaction between bacteria and substratum.

摘要

在琼脂平板上,大肠杆菌的子细胞在第一轮二分分裂时相互滑动并并排对齐。这种现象以前归因于一种弹性物质,它限制了明显分离的细菌形成串状。我们假设细菌与底层之间的相互作用可能会影响子细菌的排列。为了验证这一假设,我们检查了在透明质酸(HA)凝胶上的细菌分裂情况,HA 凝胶是一种替代底层。与我们的假设一致,HA 凝胶通过抑制典型的并排对齐来抑制这种排列,使这种排列成为罕见的群体。对可能有助于子细胞排列的细菌表面分子的检查得出了一个观察结果,即破坏 lpp 后,大肠杆菌的子细胞越来越多地形成非典型模式,即既不平行并排滑动,也不形成细长的串。因此,我们的结果强烈表明,早期细胞模式受多种相互作用因素的影响。我们进一步用振荡光镊进行了演示,结果表明没有 Lpp 的细菌之间的相互作用力降低,这一结果证实了我们的观点,即并排滑动现象直接反映了细菌和底层之间的原位相互作用强度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4e63/2818839/6f2f7cae64fe/pone.0009147.g001.jpg

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