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Determination of Active Marine Bacterioplankton: a Comparison of Universal 16S rRNA Probes, Autoradiography, and Nucleoid Staining.海洋活性细菌的测定:通用 16S rRNA 探针、放射自显影和核染色的比较。
Appl Environ Microbiol. 1997 Apr;63(4):1208-13. doi: 10.1128/aem.63.4.1208-1213.1997.
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Relationship between the Intracellular Integrity and the Morphology of the Capsular Envelope in Attached and Free-Living Marine Bacteria.附着和自由生活海洋细菌的胞内完整性与荚膜包膜形态之间的关系。
Appl Environ Microbiol. 1996 Dec;62(12):4521-8. doi: 10.1128/aem.62.12.4521-4528.1996.
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Genotyping of heterotrophic bacteria from the central baltic sea by use of low-molecular-weight RNA profiles.采用低分子量 RNA 图谱对波罗的海中部异养细菌进行基因分型。
Appl Environ Microbiol. 1996 Apr;62(4):1383-90. doi: 10.1128/aem.62.4.1383-1390.1996.
4
Responses to Stress and Nutrient Availability by the Marine Ultramicrobacterium Sphingomonas sp. Strain RB2256.海洋超微型菌 Sphingomonas sp. 菌株 RB2256 对压力和营养可用性的响应。
Appl Environ Microbiol. 1996 Apr;62(4):1287-94. doi: 10.1128/aem.62.4.1287-1294.1996.
5
Seasonal variations of virus abundance and viral control of the bacterial production in a backwater system of the danube river.多瑙河支流系统中病毒丰度的季节性变化及其对细菌生产力的病毒控制。
Appl Environ Microbiol. 1995 Oct;61(10):3734-40. doi: 10.1128/aem.61.10.3734-3740.1995.
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Total counts of marine bacteria include a large fraction of non-nucleoid-containing bacteria (ghosts).海洋细菌的总数包括很大一部分不含核区的细菌(幽灵细菌)。
Appl Environ Microbiol. 1995 Jun;61(6):2180-5. doi: 10.1128/aem.61.6.2180-2185.1995.
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Quantitative reverse sample genome probing of microbial communities and its application to oil field production waters.定量反向样品基因组探测微生物群落及其在油田生产水中的应用。
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Isolation of Typical Marine Bacteria by Dilution Culture: Growth, Maintenance, and Characteristics of Isolates under Laboratory Conditions.稀释培养法分离典型海洋细菌:实验室条件下的生长、维持和分离物特性。
Appl Environ Microbiol. 1993 Jul;59(7):2150-60. doi: 10.1128/aem.59.7.2150-2160.1993.
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Release of bacterial DNA by marine nanoflagellates, an intermediate step in phosphorus regeneration.海洋纳米鞭毛虫释放细菌 DNA,这是磷再生的中间步骤。
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Distribution of cultivated and uncultivated cyanobacteria and Chloroflexus-like bacteria in hot spring microbial mats.温泉微生物垫中培养和未培养蓝细菌及类绿弯菌属细菌的分布
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在可形成菌落的细菌中发现的主要海洋浮游细菌物种。

Dominant marine bacterioplankton species found among colony-forming bacteria.

作者信息

Pinhassi J, Zweifel U L, Hagström A

机构信息

Department of Microbiology, Umeå University, Sweden.

出版信息

Appl Environ Microbiol. 1997 Sep;63(9):3359-66. doi: 10.1128/aem.63.9.3359-3366.1997.

DOI:10.1128/aem.63.9.3359-3366.1997
PMID:9292985
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC168641/
Abstract

The density of specific aquatic bacteria was determined by use of whole-genome DNA hybridization towards community DNA. From a coastal marine environment (northern Baltic Sea), 48 specific bacteria were isolated on solid media over a 1-year period. Based on the presented hybridization protocol, the total density of the isolates ranged between 7 and 69% of the bacteria determined by acridine orange direct counts. When compared to the number of nucleoid-containing cells, the range increased to 29 to 111%. Thus, our results showed that bacteria able to form colonies on solid media accounted for a large fraction of the bacterioplankton. There were significant changes in the density of the different bacteria over the year, suggesting that bacterioplankton exhibit a seasonal succession analogous to phytoplankton. The bacteria studied were of diverse phylogenetic origin, being distributed among the alpha, beta, and gamma subdivisions of the class Proteobacteria and the cytophaga-flexibacter group. Partial 16S rRNA gene sequence analysis of 29 Baltic Sea isolates as well as of 30 Southern California Bight isolates showed that a majority of the isolates had low similarity (0.85 to 0.95) to reported sequence data. This indicated that the diversity of marine bacteria able to grow on solid media is largely unexplored.

摘要

通过对群落DNA进行全基因组DNA杂交来测定特定水生细菌的密度。在一年时间里,从波罗的海北部沿海海洋环境中,在固体培养基上分离出48种特定细菌。根据所提出的杂交方案,分离菌株的总密度占吖啶橙直接计数法测定细菌数量的7%至69%。与含拟核细胞的数量相比,该范围增至29%至111%。因此,我们的结果表明,能够在固体培养基上形成菌落的细菌在浮游细菌中占很大比例。一年中不同细菌的密度有显著变化,这表明浮游细菌呈现出类似于浮游植物的季节性演替。所研究的细菌具有不同的系统发育起源,分布在变形菌纲的α、β和γ亚群以及噬纤维菌-屈挠杆菌菌群中。对29株波罗的海分离菌株以及30株南加利福尼亚湾分离菌株的16S rRNA基因部分序列分析表明,大多数分离菌株与已报道的序列数据相似度较低(0.85至0.95)。这表明能够在固体培养基上生长的海洋细菌的多样性在很大程度上尚未被探索。