期刊文献+

海洋玫瑰杆菌类群研究进展 被引量:9

Research progresses of marine Roseobacter lineage
在线阅读 下载PDF
导出
摘要 海洋玫瑰杆菌类群(Roseobacter lineage)是属于α-变形菌纲中的一类系统发育相近,但生理代谢功能多样的细菌类群,包含40多个不同的细菌种属。它们在海洋中丰度较高,且分布极为广泛,尤其在近海与极地海洋中,其丰度约占整个浮游细菌群落的15%—25%。玫瑰杆菌类群通过其多样化的生理代谢功能(如好氧不产氧光合作用、一氧化碳氧化、硫化物降解等)在海洋碳、硫循环和全球气候调节中发挥着重要作用。此外,玫瑰杆菌类群还能产生多种具生物活性的次生代谢物质。简要综述了海洋玫瑰杆菌类群的生态分布特征、生存方式、生理代谢功能、基因组特征等的一些研究进展,并结合作者的工作对未来的研究进行了展望。 Marine Roseobacter clade is a phylogenetically coherent,but physiologically diverse group of α-Proteobacteria,with members sharing 89% identity of the 16 S rRNA gene. It contains more than 40 different genera. Roseobacter was found to be abundant in marine environment,especially in coastal and polar oceans,where Roseobacter clade comprises 15% —25% of the total bacterioplankton communities. Roseobacters also exist ubiquitously in the ocean. Based on culture collections,16 S rRNA clone libraries, and single-cell analyses, roseobacters have been identified in most marine environment sampled,such as sea ice,sea floor,hypersaline microbial mats,sponges,sea grasses,and coastal biofilms,etc. whereas,this bacterial group is noticeable absent in analogous freshwater and terrestrial soil environment. Quantitative 16 S rRNA gene analyses show that Roseobacter populations fall off with depth in the ocean,and are often most abundant in bacterial communities associated with marine algae. Roseobacter lineage is the only abundant marine group,whose cultivated representatives are closely related to the not-yet-cultivated environmental clone sequences. Diverse life styles have been found in Roseobacter clade, such as free living, particle associated, or in commensal relationships with marine phytoplankton,invertebrates,and vertebrates. Also,diverse physiological metabolic traits were found in this bacterial group. For example, some roseobacters can generate metabolic energy from light using the ancient purple bacterial mechanism of anaerobic photosynthesis without production of oxygen( anaerobic anoxygenic photosynthesis),while someroseobacters have the physiological metabolic traits of degradation of sulfur compounds or aromatics,oxidation of carbon monoxide,or reduction of trace metals,etc. Thus,it is considered that roseobacters may play important roles in marine carbon and sulfur cycles,as well as the global climate regulation. There are more than forty roseobacters whose whole genome sequences are available in the current public databases. Analysis of these genomes also reflected the metabolic versatility of the Roseobacter lineage. The cellular requirements of roseobacters for nitrogen are largely satisfied by regenerated ammonium and organic compounds( polyamines,allophanate,and urea),while the requirement for carbon sources are satisfied by amino acids,glyoxylate,and aromatic metabolites. Also,a large number of genes are predicted to encode proteins involved in the production,degradation,and efflux of toxins and metabolites,suggesting the potential for interacting with neighboring cells and impacting the routing of organic matter into the microbial loop. Laboratory experiments found that the various bioactive secondary metabolites of roseobacters include antagonist against fish larval bacterial pathogens,antibiotic against marine bacteria and algae,shellfish poison,and the bioactive LuxR- activating acylated homoserine lactones( AHLs),which are a class of signaling molecules involved in bacterial quorum sensing,etc. Recently,the interactions between roseobacters and their phages caused widespread attention. Several host-phage interaction systems of the roseobacters were set up in the laboratory. Laboratory experiments revealed that roseophages play important roles in mediating the physiology and promoting the evolution of roseobacters in marine environment. This review described the recent research progresses of Roseobacter lineage in terms of their ecological distribution,lifestyle,physiological functions,and genome features. Finally we suggested future research directions based on our understanding of the literature and our own work.
出处 《生态学报》 CAS CSCD 北大核心 2015年第5期1620-1629,共10页 Acta Ecologica Sinica
基金 国家重大科学研究计划(2013CB955700) 国家自然科学基金项目(41006087,31070054) 厦门市科技计划项目(3502Z20132014) 厦门大学近海海洋环境科学国家重点实验室访问学者基金(MELRS1206)
关键词 玫瑰杆菌 好氧不产氧光合作用 硫代谢 次生代谢物质 玫瑰杆菌噬菌体 Roseobacter lineage aerobic anoxygenic photosynthesis sulfur metabolism secondary metabolites roseophage
  • 相关文献

参考文献54

  • 1Labrenz M, Collins M D, Lawson P A, Tindall B J, Braker G, Hirsch P. Antarctobacter heliothermus gen. nov., sp. nov., a budding bacterium from hypersaline and heliothermal Ekho Lake. International Journal of Systematic and Evolutionary Microbiology, 1998, 48 (4) :1363-1372.
  • 2Wagner-Dobler I, Biebl H. Environmental biology of the marine Roseobacter lineage. Annual Review of Microbiology, 2006, 60 ( 1 ) : 255-280.
  • 3Shiba T. Roseobacter litoralis gen. nov., sp. nov., and Roseobacter denitrificans sp. nov., aerobic pink-pigmented bacteria which contain bacteriochlorophyll a. Systematic and Applied Microbiology, 1991, 14(2) : 140-145.
  • 4Buchan A, Gonzalez J M, Moran M A. Overview of the marine Roseobacter lineage. Applied and Environmental Microbiology, 2005, 71 (10) : 5665- 5677.
  • 5Brinkhoff T, Giebel H A, Simon M. Diversity, ecology, and genomics of the Roseobacter clade : a short overview. Archives of Microbiology, 2008, 189(6) : 531-539.
  • 6Lenk S, Moraro C, Habnke S, Arnds J, Richter M, Kube M, Reinhardt R, Brinkhoff T, Harder J, Amann R, MuBmann M. Roseobacter clade bacteria are abundant in coastal sediments and encode a novel combination of sulfur oxidation genes. The ISME Journal, 2012, 6 (2) : 2178-2187.
  • 7Eilers H, Pernthaler J, Peplies J, Gloekner F O, Gerdts G, Amman R. Isolation of novel pelagie bacteria from the German bight and their seasonal contributions to surface picoplankton. Applied and Environmental Mierobiology, 2001, 67 ( 11 ) : 5134-5142.
  • 8DeLong E F, Karl D M. Genomie perspectives in microbial oceanography. Nature, 2005, 437 (7057) : 336-342.
  • 9Suzuki M T, Preston C M, Bjt O, de la Torre J R, Steward G F, DeLong E F. Phylogenetic screening of ribosomal RNA gene-eontaining elones in bacterial artificial chromosome (BAC) libraries from different depths in Monterey Bay. Mierobial Eeology, 2004, 48 (4) : 473-488.
  • 10Moran M A, Buchan A, Gonzalez J M, Heidelberg J F, Whitman W B, Kiene R P, Henriksen J R, King G M, Belas R, Fuqua C, Brinkac L Lewis M, Johri S, Weaver B, Pai G, Eisen J A, Rahe E, Sheldon W M, Ye W , Miller T R, Carlton J, Rasko D A, Paulsen I T, Ren Q H Daugherty S C, Deboy R T, Dodson R J, Durkin A S, Madupu R, Nelson W C, Sullivan S A, Rosovitz M J, Haft D H, Selengut J, Ward N C, enome quenee of Silicibacter pomeroyi reveals adaptations to the marine environment. Nature, 2004, 432 ( 7019 ) : 910- 913.

二级参考文献111

  • 1Barrangou R, Fremaux C, Deveau H, et al. CRISPR provides acquired resistance against viruses in prokaryotes. Science, 2007, 315:1709-1712.
  • 2Chibani-Chennoufi S, Bruttin A, Dillmann M L, et al. Phage-host interaction: An ecological perspective. Bacteriol, 2004, 186: 3677-3686.
  • 3Huang C X, Zhang Y Y, Jiao N Z. Phage Resistance of a Marine Bacterium, Roseobacter denitrificans OCh114, as Revealed by ComparativeProteomics. Curr Microbiol, 2010, 61: 141-147.
  • 4Hill C. Bacteriophage and bacteriophage resistance in lactic acid bacteria. FEMS Microbiol Rev, 1993, 12: 87-108.
  • 5Middelboe M, Holmfeldt K, Riemann L, et al. Bacteriophages drive strain diversification in a marine Flavobacterium: Implications for phageresistance and physiological properties. Environ Microbiol, 2009, 11: 1971-1982.
  • 6Moebus K, Nattkemper H. Bacteriophage sensitivity patterns among bacteria isolated from marine waters. Helgoland Mar Res, 1981, 34:375-385.
  • 7Echols H. Developmental pathways for the temperate phage: Lysis vs lysogeny. Ann Rev Genet, 1976, 6: 157-190.
  • 8Hewson I, O’Neil J M, Fuhrman J A, et al. Virus-like particle distribution and abundance in sediments and overlying waters along eutrophicationgradients in two subtropical estuaries. Limnol Oceanogr, 2001, 46: 1734-1746.
  • 9Lenski R E. Dynamics of interactions between bacteria and virulent bacteriophage. Adv Microb Ecol, 1988, 10: 1-44.
  • 10Weinbauer M G, Suttle C A. Lysogeny and prophage induction in coastal and offshore bacterial communities. Aquat Microb Ecol, 1999, 18:217-225.

共引文献23

同被引文献93

引证文献9

二级引证文献17

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部