4.5 Article

Sulfur-metabolizing bacterial populations in microbial mats of the Nakabusa hot spring, Japan

期刊

SYSTEMATIC AND APPLIED MICROBIOLOGY
卷 34, 期 4, 页码 293-302

出版社

ELSEVIER GMBH, URBAN & FISCHER VERLAG
DOI: 10.1016/j.syapm.2010.12.002

关键词

Sulfur cycle; Anoxygenic photosynthetic bacteria; Sulfate-reducing bacteria; Sulfur-oxidizing bacteria; Alkaline hot spring; Microbial mat; Sulfurihydrogenibium; Aquificae

资金

  1. Ministry of Education, Culture, Sports, Science and Technology (MEXT) [20370013, 22370005]
  2. Max Planck Society and the German Academic Exchange Service (DAAD)
  3. Grants-in-Aid for Scientific Research [20370013] Funding Source: KAKEN

向作者/读者索取更多资源

At the Nakabusa hot spring, Japan, dense olive-green microbial mats develop in regions where the slightly alkaline, sulfidic effluent has cooled to 65 degrees C. The microbial community of such mats was analyzed by focusing on the diversity, as well as the in situ distribution and function of bacteria involved in sulfur cycling. Analyses of 16S rRNA and functional genes (aprA, pufM) suggested the importance of three thermophilic bacterial groups: aerobic chemolithotrophic sulfide-oxidizing species of the genus Sulfurihydrogenibium (Aquificae), anaerobic sulfate-reducing species of the genera Thermodesulfobacterium/Thermodesulfatator, and filamentous anoxygenic photosynthetic species of the genus Chloroflexus. A new oligonucleotide probe specific for Sulfurihydrogenibium was designed and optimized for catalyzed reporter deposition fluorescence in situ hybridization (CARD-FISH). In situ hybridizations of thin mat sections showed a heterogeneous vertical distribution of Sulfurihydrogenibium and Chloroflexus. Sulfurihydrogenibium dominated near the mat surface (50% of the total mat biovolume), while Chloroflexus dominated in deeper layers (up to 64% of the total mat biovolume). Physiological experiments monitoring in vitro changes of sulfide concentration indicated slight sulfide production by sulfate-reducing bacteria under anoxic-dark conditions, sulfide consumption by photosynthetic bacteria under anoxic-light conditions and strong sulfide oxidation by chemolithotrophic members of Aquificae under oxic-dark condition. We therefore propose that Sulfurihydrogenibium spp. act as highly efficient scavengers of oxygen from the spring water, thus creating a favorable, anoxic environment for Chloroflexus and Thermodesulfobacterium/Thermodesulfatator in deeper layers. (C) 2011 Elsevier GmbH. All rights reserved.

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