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本文引用的文献

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Comparative population structure of two deep-sea hydrothermal-vent-associated decapods (Chorocaris sp. 2 and Munidopsis lauensis) from southwestern Pacific back-arc basins.来自西南太平洋弧后盆地的两种与深海热液喷口相关的十足目动物(Chorocaris sp. 2和Munidopsis lauensis)的比较种群结构。
PLoS One. 2014 Jul 1;9(7):e101345. doi: 10.1371/journal.pone.0101345. eCollection 2014.
2
Larvae from deep-sea methane seeps disperse in surface waters.来自深海甲烷渗漏区的幼虫在表层水域中扩散。
Proc Biol Sci. 2014 Jul 7;281(1786). doi: 10.1098/rspb.2013.3276.
3
The spatial scale of genetic subdivision in populations of Ifremeria nautilei, a hydrothermal-vent gastropod from the southwest Pacific.太平洋西南海域喷口热液蛤 Ifremeria nautilei 种群的遗传细分的空间尺度。
BMC Evol Biol. 2011 Dec 22;11:372. doi: 10.1186/1471-2148-11-372.
4
Surface-generated mesoscale eddies transport deep-sea products from hydrothermal vents.表面生成的中尺度涡流将深海热液喷口的产物输送出去。
Science. 2011 Apr 29;332(6029):580-3. doi: 10.1126/science.1201066.
5
Larvae from afar colonize deep-sea hydrothermal vents after a catastrophic eruption.远在千里之外的幼虫在灾难性喷发后殖民深海热液喷口。
Proc Natl Acad Sci U S A. 2010 Apr 27;107(17):7829-34. doi: 10.1073/pnas.0913187107. Epub 2010 Apr 12.
6
The stochastic nature of larval connectivity among nearshore marine populations.近岸海洋种群中幼体连通性的随机性本质。
Proc Natl Acad Sci U S A. 2008 Jul 1;105(26):8974-9. doi: 10.1073/pnas.0802544105. Epub 2008 Jun 24.
7
Directional dispersal between mid-ocean ridges: deep-ocean circulation and gene flow in Ridgeia piscesae.大洋中脊之间的定向扩散:深海环流与鳞腕海鞘的基因流动
Mol Ecol. 2008 Apr;17(7):1718-31. doi: 10.1111/j.1365-294X.2008.03609.x.
8
Temperature control of larval dispersal and the implications for marine ecology, evolution, and conservation.幼体扩散的温度控制及其对海洋生态、进化和保护的影响。
Proc Natl Acad Sci U S A. 2007 Jan 23;104(4):1266-71. doi: 10.1073/pnas.0603422104. Epub 2007 Jan 9.
9
Migration, isolation, and speciation of hydrothermal vent limpets (Gastropoda; Lepetodrilidae) across the Blanco Transform Fault.热液喷口帽贝(腹足纲;鳞笠贝科)跨越布兰科转换断层的迁移、隔离与物种形成
Biol Bull. 2006 Apr;210(2):140-57. doi: 10.2307/4134603.
10
Distinct patterns of genetic differentiation among annelids of eastern Pacific hydrothermal vents.东太平洋热液喷口环节动物之间独特的遗传分化模式。
Mol Ecol. 2004 Sep;13(9):2603-15. doi: 10.1111/j.1365-294X.2004.02287.x.

量化西太平洋热液喷口区域的扩散情况。

Quantifying dispersal from hydrothermal vent fields in the western Pacific Ocean.

作者信息

Mitarai Satoshi, Watanabe Hiromi, Nakajima Yuichi, Shchepetkin Alexander F, McWilliams James C

机构信息

Marine Biophysics Unit, Okinawa Institute of Science and Technology Graduate University, Onna, Okinawa, 904-0495, Japan;

Department of Marine Biodiversity Research and Research and Development Center for Submarine Resources, Japan Agency for Marine-Earth Science and Technology, Yokosuka, Kanagawa, 237-0061, Japan;

出版信息

Proc Natl Acad Sci U S A. 2016 Mar 15;113(11):2976-81. doi: 10.1073/pnas.1518395113. Epub 2016 Feb 29.

DOI:10.1073/pnas.1518395113
PMID:26929376
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4801315/
Abstract

Hydrothermal vent fields in the western Pacific Ocean are mostly distributed along spreading centers in submarine basins behind convergent plate boundaries. Larval dispersal resulting from deep-ocean circulations is one of the major factors influencing gene flow, diversity, and distributions of vent animals. By combining a biophysical model and deep-profiling float experiments, we quantify potential larval dispersal of vent species via ocean circulation in the western Pacific Ocean. We demonstrate that vent fields within back-arc basins could be well connected without particular directionality, whereas basin-to-basin dispersal is expected to occur infrequently, once in tens to hundreds of thousands of years, with clear dispersal barriers and directionality associated with ocean currents. The southwest Pacific vent complex, spanning more than 4,000 km, may be connected by the South Equatorial Current for species with a longer-than-average larval development time. Depending on larval dispersal depth, a strong western boundary current, the Kuroshio Current, could bridge vent fields from the Okinawa Trough to the Izu-Bonin Arc, which are 1,200 km apart. Outcomes of this study should help marine ecologists estimate gene flow among vent populations and design optimal marine conservation plans to protect one of the most unusual ecosystems on Earth.

摘要

西太平洋的热液喷口区域大多分布在汇聚板块边界后方海底盆地的扩张中心沿线。深海环流导致的幼体扩散是影响喷口动物基因流动、多样性和分布的主要因素之一。通过结合生物物理模型和深度剖面浮标实验,我们量化了西太平洋热液喷口物种通过海洋环流的潜在幼体扩散情况。我们证明,弧后盆地内的热液喷口区域可能没有特定方向性地良好连通,而盆地间的扩散预计很少发生,每隔数万年才会出现一次,且存在与洋流相关的明显扩散障碍和方向性。跨越4000多公里的西南太平洋热液喷口复合体,对于幼体发育时间长于平均水平的物种而言,可能由南赤道流连通。根据幼体扩散深度,强大的西边界流——黑潮,可能连接相距1200公里的冲绳海槽和伊豆-小笠原群岛弧的热液喷口区域。本研究结果应有助于海洋生态学家估计热液喷口种群间的基因流动,并设计出最佳的海洋保护计划,以保护地球上最独特的生态系统之一。