尽管有CRISPR-Cas保护,但菌体引起生长延迟和SOS反应诱导
Benoit J Pons1, Urszula Łapińska2, Iolanda Lopes-Domingues1
1University of Exeter Environment and Sustainability Institute, Penryn TR10 9FE, UK.
概括
细菌对菌体的CRISPR免疫力导致生长缺陷, 这项研究揭示了菌体诱导的分裂滞后和细分,影响了细菌群.
科学领域:
- 细菌学
- 微生物生态学
- 遗传学
背景情况:
- 细菌通过表面突变或CRISPR-Cas免疫产生菌体耐药性.
- CRISPR免疫具有未知的诱导成本,可能是由于对菌体DNA注射的预防不完整.
- 之前的假设认为成本来自死亡率或增长率下降.
研究的目的:
- 调查CRISPR-Cas免疫成本背后的机制
- 将死亡率和生长缺陷作为CRISPR免疫成本的来源进行区分.
- 了解CRISPR免疫成本的生态后果.
主要方法:
- 使用基于微流体的单细胞方法.
- 使用流细胞测量来监测宿主存活和成长后的菌体暴露.
- 暴露于DMS3病毒的菌体.
主要成果:
- 克里斯普尔免疫力有效地防止菌体诱导的溶解.
- 在亚种群中,CRISPR免疫不防止菌体诱导的分裂滞后,丝状形成和SOS反应.
- 在菌体诱导的生长缺陷中观察到异质性.
结论:
- 在人口层面上,CRISPR免疫的成本源于异质的菌体诱导的生长缺陷.
- 克里斯普免疫的成本与细菌生长受损有关, 不仅仅是增加死亡率.
- 了解这些成本对于细菌免疫系统的进化至关重要.
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