热带海洋学报

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蜈支洲岛浊度差异背景下毗邻沙珊瑚的转录组表达分化特征

史菁怡1, 杜学斌1, 2

  

  1. 1. 中国地质大学(武汉), 湖北 武汉 430074;

    2. 中国地质大学(武汉)海洋地质资源湖北省重点实验室, 湖北 武汉 430074


  • 收稿日期:2026-06-05 修回日期:2026-07-09 接受日期:2026-07-13
  • 通讯作者: 杜学斌
  • 基金资助:
    南海北部深水区台缘结构与生物礁生长模型(41202086)

Transcriptomic differentiation of Psammocora contigua associated with turbidity differences around Wuzhizhou Island

SHI Jingyi1, DU Xuebin1, 2    

  1. 1. China University of Geosciences(Wuhan), Wuhan 430074, China;

    2. Hubei Key Laboratory of Marine Geological Resources, China University of Geosciences(Wuhan), Wuhan 430074, China


  • Received:2026-06-05 Revised:2026-07-09 Accepted:2026-07-13

摘要: 毗邻沙珊瑚(Psammocora contigua)是蜈支洲岛周围海域的代表性造礁珊瑚之一, 但目前针对该类非优势种在较高浊度海域背景下的分子响应研究仍相对缺乏。为揭示其转录组表达分化特征, 并探讨其与生物矿化相关基础过程的潜在联系, 本研究选取海南三亚蜈支洲岛南、北两侧8m水深处的毗邻沙珊瑚为样本, 结合现场海水环境监测与转录组测序, 分析珊瑚及其共生藻在不同海域环境条件下的表达特征。结果表明, 蜈支洲岛南、北两侧海水温度、盐度、浊度和溶解氧等环境因子存在显著差异, 其中北侧浊度显著高于南侧; 与之对应, 北侧珊瑚样本间转录组相似性较高, 南侧珊瑚样本则表现出更高的转录组异质性和特有表达转录本比例。珊瑚差异表达基因主要涉及胁迫响应、跨膜运输、细胞骨架调控、ATP(adenosine triphosphate)代谢及离子转运等功能。相比之下, 共生藻转录组未表现出明显的表达分化趋势, 其差异表达基因数量较少, 整体响应幅度低于珊瑚, 但在基础代谢、膜转运、蛋白稳态和细胞内物质运输等功能类别上仍有一定变化。研究表明, 在蜈支洲岛以浊度差异为突出特征的环境异质性背景下, 毗邻沙珊瑚表现出较明显的转录组表达分化特征, 而共生藻表现出相对保守的表达状态; 同时, 离子转运、能量代谢和细胞结构调控等表达变化提示环境响应过程可能与珊瑚生物矿化相关基础过程存在联系。本研究虽受样本量限制, 但丰富了蜈支洲岛非优势造礁珊瑚的转录组资料, 可为热带珊瑚礁保育、修复与生态评估提供分子参考, 并为后续开展环境响应与生物矿化关系验证提供数据基础。

关键词: 毗邻沙珊瑚, 转录组, 浊度, 环境响应, 生物矿化

Abstract: Psammocora contigua is one of the representative reef-building corals in the waters around Wuzhizhou Island. However, molecular responses of such non-dominant coral species under relatively high-turbidity marine conditions remain poorly understood. To reveal its transcriptomic differentiation and explore the potential association with biomineralization-related basic processes, P. contigua samples were collected at a depth of 8m from the southern and northern sides of Wuzhizhou Island, Sanya, Hainan. Combined with in situ seawater environmental monitoring and transcriptome sequencing, the expression characteristics of the coral and its symbiotic algae under different marine environmental conditions were analyzed. The results showed significant differences in seawater temperature, salinity, turbidity, and dissolved oxygen between the southern and northern sides of Wuzhizhou Island, with turbidity significantly higher on the northern side than on the southern side. Correspondingly, coral samples from the northern side showed higher transcriptomic similarity, whereas those from the southern side exhibited greater transcriptomic heterogeneity and a higher proportion of specifically expressed transcripts. Differentially expressed genes in corals were mainly associated with stress response, transmembrane transport, cytoskeleton regulation, ATP(adenosine triphosphate) metabolism, and ion transport. In contrast, the symbiotic algal transcriptome showed no obvious expression differentiation trend, with fewer differentially expressed genes and a lower overall response amplitude than corals, although changes were still observed in functional categories such as basic metabolism, membrane transport, protein homeostasis, and intracellular transport. These results indicate that, under the environmental heterogeneity characterized by turbidity differences around Wuzhizhou Island, P. contigua exhibited relatively clear transcriptomic differentiation, whereas its symbiotic algae maintained a relatively conserved expression state. Meanwhile, expression changes related to ion transport, energy metabolism, and cytoskeleton regulation suggest a potential link between environmental responses and biomineralization-related basic processes in corals. Although limited by sample size, this study enriches transcriptomic data for non-dominant reef-building corals around Wuzhizhou Island, provides molecular references for tropical coral reef conservation, restoration, and ecological assessment, and lays a data foundation for further verification of the relationship between environmental responses and biomineralization.

Key words: Psammocora contigua, transcriptome, turbidity, environmental response, biomineralization