Literature DB >> 15521179

[Ultrastructure of resting cells of some non-spore-forming bacteria].

N E Suzina, A L Muliukin, A N Kozlova, A P Shorokhova, V V Dmitriev, E S Barinova, O N Mokhova, G I El'-Registan, V I Duda.   

Abstract

Using electron microscopy (ultrathin sections and freeze-fractures), we investigated the ultrastructure of the resting cells formed in the cultures of Micrococcus luteus, Arthrobacter globiformis, and Pseudomonas aurantiaca under conditions of prolonged incubation (up to 9 months). These resting cells included cyst-like forms that were characterized by complex cell structure and the following ultrastructural properties: (i) a thickened or multiprofiled cell wall (CW), typically made up of a layer of the preexisting CW and one to three de novo synthesized murein layers; (ii) a thick, structurally differentiated capsule; (iii) presence of large intramembrane particles (d = 180-270 A), occurring both on the PF and EF sides of the membrane fractures of M. luteus and A. globiformis; (iv) a peculiar structure of the cytoplasm, which was either fine-grained or lumpy (coarse-grained) in different parts of the cell population; and (v) a condensed nucleoid. Intense formation of cyst-like cells occurred in aged (2- to 9-month-old) bacterial cultures grown on diluted complex media or on nitrogen-, carbon-, and phosphorus-limited synthetic media, as well as in suspensions of cells incubated in media with sodium silicate. The general morphological properties, ultrastructural organization, and physiological features of cyst-like cells formed during the developmental cycle suggest that constitutive dormancy is characteristic of non-spore-forming bacteria.

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Year:  2004        PMID: 15521179

Source DB:  PubMed          Journal:  Mikrobiologiia        ISSN: 0026-3656


  12 in total

1.  Drotaverine hydrochloride degradation using cyst-like dormant cells of Rhodococcus ruber.

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Journal:  Curr Microbiol       Date:  2014-11-02       Impact factor: 2.188

2.  Electromechanical and elastic probing of bacteria in a cell culture medium.

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Authors:  Vladimir Gorshkov; Amina Daminova; Marina Ageeva; Olga Petrova; Natalya Gogoleva; Nadezhda Tarasova; Yuri Gogolev
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4.  Cultivable bacteria from ancient algal mats from the McMurdo Dry Valleys, Antarctica.

Authors:  Doug E Antibus; Laura G Leff; Brenda L Hall; Jenny L Baeseman; Christopher B Blackwood
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Review 5.  Microbial seed banks: the ecological and evolutionary implications of dormancy.

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7.  Rainfall-induced carbon dioxide pulses result from sequential resuscitation of phylogenetically clustered microbial groups.

Authors:  Sarah A Placella; Eoin L Brodie; Mary K Firestone
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8.  Characterizing the Piezosphere: The Effects of Decompression on Microbial Growth Dynamics.

Authors:  Anaïs Cario; Gina C Oliver; Karyn L Rogers
Journal:  Front Microbiol       Date:  2022-05-17       Impact factor: 6.064

9.  Adaptive response to starvation in the fish pathogen Flavobacterium columnare: cell viability and ultrastructural changes.

Authors:  Covadonga R Arias; Stacey Lafrentz; Wenlong Cai; Oscar Olivares-Fuster
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10.  Temperature sensitivity of microbial respiration of fine root litter in a temperate broad-leaved forest.

Authors:  Naoki Makita; Ayumi Kawamura
Journal:  PLoS One       Date:  2015-02-06       Impact factor: 3.240

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