By Robert K. Poole

Advances in Microbial body structure: Advances in Bacterial Electron delivery structures and Their Regulation, the newest quantity within the Advances in Microbial Physiology sequence, maintains the lengthy culture of topical and significant studies in microbiology, with this newest quantity concentrating on the advances in bacterial electron shipping structures and their regulation.

  • Contains contributions from top gurus within the box of microbial body structure
  • Informs and updates on the entire most modern advancements within the field
  • Presents a first-rate concentration for this version at the advances made in bacterial electron delivery structures and their regulation

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Extra resources for Advances in Bacterial Electron Transport Systems and Their Regulation

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However, haloarchaea have adopted several strategies to sustain metabolism and life under such restricted conditions. Some of the main adaptations are summarised as follows: – Cells accumulate molar KCl concentrations to maintain osmotic balance instead of accumulating compatible solutes. Thus, cells are isotonic with their surroundings (salt-in strategy). Haloarchaea contain potent transport systems to expel sodium ions, which are predominant in the medium, from the interior of the cell (Madigan & Oren, 1999).

2000). Redundancy of aerobic respiratory chains in bacteria? Routes, reasons and regulation. Advances in Microbial Physiology, 43, 165–224. Prosser, J. I. (2007). The ecology of nitrifying bacteria. In H. Bothe, S. J. Ferguson, & W. E. , pp. 223–243). Amsterdam, The Netherlands: Elsevier. Quiro´s, L. , & Salas, J. A. (1986). Isolation and properties of Streptomyces spore membranes. Journal of Bacteriology, 165, 923–928. , & Donovick, R. (1946). Studies on the nutritional requirements of Streptomyces griseus for the formation of streptomycin.

Thus, species such as Hfx. mediterranei are able to grow even at low salt concentration (D’Souza, Altekar, & D’Souza, 1997). Looking cell structure in detail, it is interesting to highlight that most of the outer surfaces of the Haloferax species are covered with a hexagonally packed surface called S-layer (surface-layer), which is mainly constituted by glycoproteins forming a regularly structured array. These glycoprotein subunits join via both N- and O-glycosidic bonds and are held together by divalent cations (probably magnesium) (Mengele & Sumper, 1992; Sumper, Berg, Mengele, & Strobel, 1990).

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