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Biocrystalline structures in the nucleoids of the stationary and dormant prokaryotic cells

机译:静止和休眠原核细胞的核细胞中的生物晶体结构

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Compaction and biocrystallization of the nucleoid are presently considered as a necessary and important stage in the transformation of the cell ultrastructure during change of microbial cultures strategies from growth to survival. Nucleoid biocrystallization in the stationary phase cells is achieved due to structural regularity of the DNA complexes with the histone-like Dps protein. Our experiments with Escherichia coli mutants, overproducers of the Dps protein, confirmed nucleoid biocrystallization in the late stationary phase cells. Since nucleoid biocrystallization was revealed in E. Noli cells without Dps overproduction at late stages of starvation, it is constitutive in the cycle of development of microbial populations. The present work concentrated on detection of the nucleoid biocrystalline structure in (1) long-starved (21 day in the chemostat mode) bacterial cells (genera Arthrobacter and Pseudomonas), (2) dormant ametabolic (anabiotic) cells of such prokaryotes as archaea and non-spore-forming bacteria, (3) endospores of bacilli, (4) streptomycete exospores, and (5) in the cells surviving in permafrost for (2aEuro'3 Ma). The topics discussed include nucleoid biocrystallization as a necessary stage of maturation of the dormant microbial cells providing for survival and preservation of the species, dynamics of nucleoid biocrystallization during maturation of the dormant cells, and its possible role for the preservation of genetic information in the case of autolysis of most of the cells in a developing culture.
机译:将核的压实和生物聚晶目前被认为是在微生物培养策略的变化中从生存期间的细胞超微结构转化的必要和重要阶段。由于DNA配合物的结构规律与组蛋白样DPS蛋白质的结构规律,实现了固定相细胞中的核生物晶体。我们对大肠杆菌突变体的实验,DPS蛋白的过度产量,确认了晚期固定相细胞中的核硼化。由于在E. Noli Biocrystallation中揭示了在饥饿后期没有DPS过量的NOLI细胞中,因此在微生物群的发育循环中是本构体的。本作的工作浓缩,浓缩于(1)长饥饿(化疗模式中21天)细菌细胞(属性杆菌和假单胞菌)的核生物晶体结构的检测,(2)休眠氨代谢(非赤核酸)细胞作为古核非孢子形成的细菌,(3)枯草芽孢杆菌,(4)中霉素Exospores,(5)在多年冻土(2Aeuro'3 ma)中存活的细胞中。所讨论的主题包括核生物晶体作为休眠微生物细胞的成熟阶段,其休眠微生物细胞的存活和保存物种,核心细胞成熟期间的核生物晶体的动力学,以及其在案例中保护遗传信息的作用大多数细胞的自水解在显影培养中。

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