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本文引用的文献

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The role of pseudolysogeny in bacteriophage-host interactions in a natural freshwater environment.假溶源性在自然淡水环境中噬菌体-宿主相互作用中的作用。
Microbiology (Reading). 1997 Jun;143(6):2065-2070. doi: 10.1099/00221287-143-6-2065.
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Dynamic interactions ofPseudomonas aeruginosa and bacteriophages in lake water.铜绿假单胞菌和噬菌体在湖水中的动态相互作用。
Microb Ecol. 1990 Mar;19(2):171-85. doi: 10.1007/BF02012098.
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Immunofluorescence detection of the denitrifying strain Pseudomonas stutzeri (ATCC 14405) in seawater and intertidal sediment environments.海水中和潮间沉积物环境中反硝化菌株施氏假单胞菌(ATCC 14405)的免疫荧光检测。
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Calibrating estimates of phage-induced mortality in marine bacteria: Ultrastructural studies of marine bacteriophage development from one-step growth experiments.校准噬菌体诱导海洋细菌死亡率的估计值:一步生长实验中海洋噬菌体发育的超微结构研究。
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The significance of viruses to mortality in aquatic microbial communities.病毒对水生微生物群落死亡率的意义。
Microb Ecol. 1994 Sep;28(2):237-43. doi: 10.1007/BF00166813.
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Viruses and the microbial loop.病毒与微生物环。
Microb Ecol. 1994 Sep;28(2):209-21. doi: 10.1007/BF00166811.
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The state of the microbes: A summary of a symposium honoring Lawrence Pomeroy.微生物的状态:纪念劳伦斯·波默罗伊研讨会综述
Microb Ecol. 1994 Sep;28(2):113-6. doi: 10.1007/BF00166799.
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Diel, seasonal, and depth-related variability of viruses and dissolved DNA in the northern Adriatic Sea.北亚得里亚海病毒和溶解 DNA 的昼夜、季节和深度相关变异性。
Microb Ecol. 1995 Jul;30(1):25-41. doi: 10.1007/BF00184511.
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Are viruses important partners in pelagic fend webs?病毒是远洋鱼类食物网中的重要伙伴吗?
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浮游病毒:水生生态系统中的病毒

Virioplankton: viruses in aquatic ecosystems.

作者信息

Wommack K E, Colwell R R

机构信息

Center of Marine Biotechnology, Baltimore, Maryland 21202, USA.

出版信息

Microbiol Mol Biol Rev. 2000 Mar;64(1):69-114. doi: 10.1128/MMBR.64.1.69-114.2000.

DOI:10.1128/MMBR.64.1.69-114.2000
PMID:10704475
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC98987/
Abstract

The discovery that viruses may be the most abundant organisms in natural waters, surpassing the number of bacteria by an order of magnitude, has inspired a resurgence of interest in viruses in the aquatic environment. Surprisingly little was known of the interaction of viruses and their hosts in nature. In the decade since the reports of extraordinarily large virus populations were published, enumeration of viruses in aquatic environments has demonstrated that the virioplankton are dynamic components of the plankton, changing dramatically in number with geographical location and season. The evidence to date suggests that virioplankton communities are composed principally of bacteriophages and, to a lesser extent, eukaryotic algal viruses. The influence of viral infection and lysis on bacterial and phytoplankton host communities was measurable after new methods were developed and prior knowledge of bacteriophage biology was incorporated into concepts of parasite and host community interactions. The new methods have yielded data showing that viral infection can have a significant impact on bacteria and unicellular algae populations and supporting the hypothesis that viruses play a significant role in microbial food webs. Besides predation limiting bacteria and phytoplankton populations, the specific nature of virus-host interaction raises the intriguing possibility that viral infection influences the structure and diversity of aquatic microbial communities. Novel applications of molecular genetic techniques have provided good evidence that viral infection can significantly influence the composition and diversity of aquatic microbial communities.

摘要

病毒可能是天然水体中数量最为丰富的生物体,其数量比细菌多一个数量级,这一发现激发了人们对水生环境中病毒的兴趣再度兴起。令人惊讶的是,对于病毒及其宿主在自然界中的相互作用,人们所知甚少。自从关于数量极其庞大的病毒种群的报告发表以来的十年间,对水生环境中病毒的计数表明,浮游病毒是浮游生物的动态组成部分,其数量随地理位置和季节而发生显著变化。迄今为止的证据表明,浮游病毒群落主要由噬菌体组成,在较小程度上还包括真核藻类病毒。在开发出新方法并将噬菌体生物学的先验知识纳入寄生虫与宿主群落相互作用的概念之后,病毒感染和裂解对细菌和浮游植物宿主群落的影响变得可测。新方法得出的数据表明,病毒感染会对细菌和单细胞藻类种群产生重大影响,支持了病毒在微生物食物网中发挥重要作用这一假说。除了捕食作用限制细菌和浮游植物种群外,病毒与宿主相互作用的特殊性质还引发了一种有趣的可能性,即病毒感染会影响水生微生物群落的结构和多样性。分子遗传技术的新应用提供了充分证据,表明病毒感染会显著影响水生微生物群落的组成和多样性。