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对水螅体原位互移植后深度梯度上珊瑚适应的基因组、形态和生理的深入了解。

Genomic, morphological, and physiological insights into coral acclimation along the depth gradient following an in situ reciprocal transplantation of planulae.

机构信息

Department of Marine Biology, Leon H. Charney School of Marine Sciences, University of Haifa, Haifa, Israel; Interuniversity Institute of Marine Sciences, Eilat, Israel.

Department of Marine Biology, Leon H. Charney School of Marine Sciences, University of Haifa, Haifa, Israel; Interuniversity Institute of Marine Sciences, Eilat, Israel.

出版信息

Sci Total Environ. 2024 Jun 15;929:172090. doi: 10.1016/j.scitotenv.2024.172090. Epub 2024 Mar 29.

Abstract

Mesophotic coral reefs have been proposed as refugia for corals, providing shelter and larval propagules for shallow water reefs that are disproportionately challenged by global climate change and local anthropogenic stressors. For mesophotic reefs to be a viable refuge, firstly, deep origin larvae must survive on shallow reefs and, secondly, the two environments must be physically connected. This study tested the first condition. Planulae of the reef-building coral Stylophora pistillata from 5-8 and 40-44 m depth in the Gulf of Aqaba were tested in a long-term reciprocal transplantation experiment for their ability to settle and acclimate to depth in situ. We assessed survival rates, photochemical, physiological, and morphological characteristics in juveniles grown at either their parental origin or transplantation depth. Differences in gene expression patterns were compared between mesophotic and shallow corals at the adult, juvenile, and planula life stages. We found high mortality rates among all mesophotic-origin planulae, irrespective of translocation depth. Gene expression patterns suggested that deep planulae lacked settlement competency and experienced increased developmental stress upon release. For surviving shallow origin juveniles, symbiont photochemical acclimation to depth occurred within 8 days, with symbiont communities showing changes in photochemical traits without algal symbiont shuffling. However, coral host physiological and morphological acclimation towards the typical deep phenotype was incomplete within 60 days. Gene expression was influenced by both life stage and depth. A set of differentially expressed genes (DEGs) associated with initial stress responses following transplantation, latent stress response, and environmental effects of depth was identified. This study therefore refutes the Deep Reef Refugia Hypothesis, as the potential for mesophotic-origin S. pistillata planulae to recruit to the shallow reef is low. The potential remains for shallow planulae to survive at mesophotic depths.

摘要

中光层珊瑚礁被认为是珊瑚的避难所,为受全球气候变化和当地人为胁迫影响较大的浅海珊瑚礁提供庇护和幼虫传播体。中光层珊瑚礁要成为可行的避难所,首先,深起源的幼虫必须在浅礁上存活,其次,这两个环境必须在物理上连接。本研究检验了第一个条件。在亚喀巴湾,从 5-8 米和 40-44 米深处采集的造礁珊瑚石珊瑚(Stylophora pistillata)的浮游幼虫在长期的互惠移植实验中,测试了其在原位定居和适应深度的能力。我们评估了在其原始或移植深度生长的幼体的存活率、光化学、生理和形态特征。在成年、幼年和浮游幼虫阶段,比较了中光层和浅珊瑚之间的基因表达模式差异。我们发现,所有中光层起源的浮游幼虫死亡率都很高,而不论转移深度如何。基因表达模式表明,深起源的浮游幼虫缺乏定居能力,释放后会经历更多的发育压力。对于幸存的浅起源幼体,共生体的光化学对深度的适应在 8 天内发生,共生体群落表现出光化学特征的变化,而没有藻类共生体的转移。然而,珊瑚宿主的生理和形态对典型的深表型的适应在 60 天内尚未完成。基因表达受生命阶段和深度的影响。确定了一组与移植后初始应激反应、潜在应激反应以及深度环境影响相关的差异表达基因(DEGs)。因此,本研究否定了深礁避难所假说,因为中光层起源的石珊瑚浮游幼虫在浅礁上的定植潜力较低。浅起源的浮游幼虫仍有可能在中光层深处存活。

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