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本文引用的文献

1
Light-stimulated growth of proteorhodopsin-bearing sea-ice psychrophile Psychroflexus torquis is salinity dependent.光照刺激带蛋白紫膜的海冰嗜冷菌 Psychroflexus torquis 的生长依赖于盐度。
ISME J. 2013 Nov;7(11):2206-13. doi: 10.1038/ismej.2013.97. Epub 2013 Jun 20.
2
Regulation of proteorhodopsin gene expression by nutrient limitation in the marine bacterium Vibrio sp. AND4.海洋细菌 Vibrio sp. AND4 中营养限制对质体紫膜基因表达的调控。
Environ Microbiol. 2013 May;15(5):1400-15. doi: 10.1111/1462-2920.12085. Epub 2013 Feb 5.
3
Pattern and synchrony of gene expression among sympatric marine microbial populations.共生海洋微生物种群中的基因表达模式和同步性。
Proc Natl Acad Sci U S A. 2013 Feb 5;110(6):E488-97. doi: 10.1073/pnas.1222099110. Epub 2013 Jan 23.
4
Ecology of marine Bacteroidetes: a comparative genomics approach.海洋拟杆菌门的生态学:比较基因组学方法。
ISME J. 2013 May;7(5):1026-37. doi: 10.1038/ismej.2012.169. Epub 2013 Jan 10.
5
The SILVA ribosomal RNA gene database project: improved data processing and web-based tools. SILVA 核糖体 RNA 基因数据库项目:改进的数据处理和基于网络的工具。
Nucleic Acids Res. 2013 Jan;41(Database issue):D590-6. doi: 10.1093/nar/gks1219. Epub 2012 Nov 28.
6
Global abundance of microbial rhodopsins.微生物视紫红质的全球丰度。
ISME J. 2013 Feb;7(2):448-51. doi: 10.1038/ismej.2012.112. Epub 2012 Oct 11.
7
Function and regulation of Vibrio campbellii proteorhodopsin: acquired phototrophy in a classical organoheterotroph.坎氏弧菌视紫红质的功能与调控:经典有机异养菌中的后天光养作用
PLoS One. 2012;7(6):e38749. doi: 10.1371/journal.pone.0038749. Epub 2012 Jun 7.
8
Structuring of bacterioplankton communities by specific dissolved organic carbon compounds.细菌浮游生物群落受特定溶解有机碳化合物的结构影响。
Environ Microbiol. 2012 Sep;14(9):2361-78. doi: 10.1111/j.1462-2920.2012.02804.x. Epub 2012 Jun 15.
9
Genomics of the proteorhodopsin-containing marine flavobacterium Dokdonia sp. strain MED134.含蛋白紫质海洋黄杆菌 Dokdonia sp.株 MED134 的基因组学研究。
Appl Environ Microbiol. 2011 Dec;77(24):8676-86. doi: 10.1128/AEM.06152-11. Epub 2011 Oct 14.
10
Energy starved Candidatus Pelagibacter ubique substitutes light-mediated ATP production for endogenous carbon respiration.能源匮乏的海洋浮游杆菌属(Candidatus Pelagibacter ubique)用光照介导的 ATP 生产替代内源性碳呼吸。
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视紫质光养作用对生长的刺激涉及海洋浮游细菌中心代谢途径的调控。

Stimulation of growth by proteorhodopsin phototrophy involves regulation of central metabolic pathways in marine planktonic bacteria.

作者信息

Palovaara Joakim, Akram Neelam, Baltar Federico, Bunse Carina, Forsberg Jeremy, Pedrós-Alió Carlos, González José M, Pinhassi Jarone

机构信息

Centre for Ecology and Evolution in Microbial Model Systems, Linnaeus University, SE-39182 Kalmar, Sweden;

Department of Marine Biology and Oceanography, Institut de Ciències del Mar, Consejo Superior de Investigaciones Científicas, ES-08003 Barcelona, Spain; and.

出版信息

Proc Natl Acad Sci U S A. 2014 Sep 2;111(35):E3650-8. doi: 10.1073/pnas.1402617111. Epub 2014 Aug 18.

DOI:10.1073/pnas.1402617111
PMID:25136122
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4156726/
Abstract

Proteorhodopsin (PR) is present in half of surface ocean bacterioplankton, where its light-driven proton pumping provides energy to cells. Indeed, PR promotes growth or survival in different bacteria. However, the metabolic pathways mediating the light responses remain unknown. We analyzed growth of the PR-containing Dokdonia sp. MED134 (where light-stimulated growth had been found) in seawater with low concentrations of mixed [yeast extract and peptone (YEP)] or single (alanine, Ala) carbon compounds as models for rich and poor environments. We discovered changes in gene expression revealing a tightly regulated shift in central metabolic pathways between light and dark conditions. Bacteria showed relatively stronger light responses in Ala compared with YEP. Notably, carbon acquisition pathways shifted toward anaplerotic CO2 fixation in the light, contributing 31 ± 8% and 24 ± 6% of the carbon incorporated into biomass in Ala and YEP, respectively. Thus, MED134 was a facultative double mixotroph, i.e., photo- and chemotrophic for its energy source and using both bicarbonate and organic matter as carbon sources. Unexpectedly, relative expression of the glyoxylate shunt genes (isocitrate lyase and malate synthase) was >300-fold higher in the light--but only in Ala--contributing a more efficient use of carbon from organic compounds. We explored these findings in metagenomes and metatranscriptomes and observed similar prevalence of the glyoxylate shunt compared with PR genes and highest expression of the isocitrate lyase gene coinciding with highest solar irradiance. Thus, regulatory interactions between dissolved organic carbon quality and central metabolic pathways critically determine the fitness of surface ocean bacteria engaging in PR phototrophy.

摘要

视紫质(PR)存在于一半的海洋表层浮游细菌中,其光驱动的质子泵为细胞提供能量。事实上,PR可促进不同细菌的生长或存活。然而,介导光反应的代谢途径仍不清楚。我们以低浓度混合[酵母提取物和蛋白胨(YEP)]或单一(丙氨酸,Ala)碳化合物的海水作为富营养和贫营养环境的模型,分析了含PR的 Dokdonia sp. MED134(已发现其受光刺激生长)的生长情况。我们发现基因表达的变化揭示了明暗条件下中心代谢途径的严格调控转变。与YEP相比,细菌在Ala中表现出相对更强的光反应。值得注意的是,碳获取途径在光照下转向回补性二氧化碳固定,分别占Ala和YEP中并入生物量的碳的31±8%和24±6%。因此,MED134是一种兼性双混合营养型,即其能量来源为光养和化养,同时使用碳酸氢盐和有机物作为碳源。出乎意料的是,乙醛酸循环途径基因(异柠檬酸裂合酶和苹果酸合酶)的相对表达在光照下高出>300倍——但仅在Ala中——这有助于更有效地利用有机化合物中的碳。我们在宏基因组和宏转录组中探索了这些发现,观察到与PR基因相比,乙醛酸循环途径的普遍程度相似,并且异柠檬酸裂合酶基因的最高表达与最高太阳辐照度一致。因此,溶解有机碳质量与中心代谢途径之间的调控相互作用关键地决定了参与PR光养作用的海洋表层细菌的适应性。