土壤样本中细菌总数和代谢活性细菌的显微计数:它们之间的关系和数量的振荡动态

A. M. Semenov, A. A. Shatalov, E. V. Semenova
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引用次数: 0

摘要

摘要 介绍了在显微镜下对土壤样本制备物中的原核细胞进行 30 天不同特异性染料染色的每日计数的实验结果,以及已发表的使用不同方法对土壤中细菌进行每日计数的结果。FITC 染料可对整个细菌细胞进行染色,在所有实验中都显示出细胞数量的波浪式动态变化,并以峰值的形式出现不同数量的振荡。使用 SFDA 染料只检测新陈代谢活跃的活细胞,也能发现波状动态,但其振荡次数明显较少。振荡的可靠性和使用不同染料时细胞数量的差异通过谐波分析得到了统计证实。新陈代谢活跃的活细胞的波状动态是细菌细胞生长和死亡周期以及微生物群落中短期营养演替的结果。外部干扰影响不会影响活细胞群或细胞总数的波浪式动态表现。非活体细菌细胞的波浪式动态现象及其数量优势的解释是,细胞在失去活力后,不是立即死亡,而是在一定时间内延迟裂解和分解。这就导致在显微镜下计算土壤中的细菌总数时,死细胞池的积累和永久优势,并解释了不同计数方法之间细菌数量的差异。所提供的实验和发表的材料将为微生物学家和生物技术专家提供证据,证明有必要控制引入自然环境的微生物种群和群落的数量动态,同时也是成功管理自然微生物群落的知识来源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Microscopic Counting of the Total Number of Bacteria and Metabolically Active Bacteria in Soil Samples: Their Relationship and Oscillation Dynamics of Number

Abstract

Experimental results of daily counting under a microscope for 30 days of prokaryotic cells in preparations from soil samples when stained with different specific dyes and published results on daily counting of bacteria in soil using different methods are presented. The FITC dye, which stains the entire set of bacterial cells, revealed a wavelike dynamics of cell numbers with different numbers of oscillations in the form of peaks in all experiments. Using the SFDA dye, which detects only living, metabolically active cells, wavelike dynamics were also revealed, but their oscillating number was significantly less. The reliability of oscillations and differences in cell numbers when using different dyes were confirmed statistically by harmonic analysis. The wavelike dynamics of living, metabolically active cells is a consequence of the cycles of growth and death of bacterial cells and short-term trophic succession in the microbial community. External disturbing influences did not affect the manifestation of wavelike population dynamics, either in the population of living cells or in the total number of cells. The phenomenon of wavelike dynamics of nonliving bacterial cells and their numerical superiority is explained by the fact that cells, losing viability, lyse and disintegrate not immediately after dying, but with some delay in time. This leads to the accumulation and permanent superiority of the pool of dead cells when microscopically counting the total number of bacteria in the soil and explains the discrepancy in bacterial numbers between different counting methods. The presented experimental and published material will serve as a substantiation for microbiologists and biotechnologists of the need to control the dynamics of the numbers of introduced populations and communities of microorganisms into the natural environment, as well as a source of knowledge for the successful management of natural microbial communities.

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