Li Yixin, Zhao Hongwei, Zhao Yunpeng, Liao Xin, Chen J-Y, Qin Yanping, Lu Zuhong, Zhang Yuehuan, He Chunpeng
State Key Laboratory of Coastal and Offshore Engineering, Dalian University of Technology, Dalian 116024, China.
State Key Laboratory of Bioelectronics, School of Biological Science and Medical Engineering, Southeast University, Nanjing 210096, China.
Research (Wash D C). 2025 Jun 11;8:0736. doi: 10.34133/research.0736. eCollection 2025.
Ocean acidification is becoming more prevalent and may contribute to coral reef degradation, yet our understanding of its role in global reef decline remains limited. Therefore, there is an urgent need to study the impact of reduced pH levels on the growth patterns of major reef-building corals. Here, we studied the skeleton-forming strategies of 4 widely distributed coral species in a simulated acidified habitat with a pH of 7.6 to 7.8. We reconstructed and visualized the skeleton-forming process, quantified elemental calcium loss, and determined gene expression changes. The results suggest that different reef-building corals have diverse growing strategies in lower pH conditions. A unique "cavity-like" forming process starts from the inside of the skeletons of , which sacrifices skeletal density to protect its polyp-canal system. The forming patterns in , , and were characterized by "osteoporosis", exhibiting disordered skeletal structures, insufficient synthesis of adhesion proteins, and low bone mass, correspondingly. In addition, we found that damage from acidification particularly affects pre-existing skeletal structures in the colony. These results enhance our understanding of skeleton-forming strategies in major coral species under lower pH conditions, providing a foundation for coral reef protection and restoration amidst increasing ocean acidification.
海洋酸化正变得越来越普遍,可能会导致珊瑚礁退化,但我们对其在全球珊瑚礁衰退中所起作用的理解仍然有限。因此,迫切需要研究pH值降低对主要造礁珊瑚生长模式的影响。在此,我们在pH值为7.6至7.8的模拟酸化栖息地中研究了4种广泛分布的珊瑚物种的骨骼形成策略。我们重建并可视化了骨骼形成过程,量化了元素钙损失,并确定了基因表达变化。结果表明,不同的造礁珊瑚在较低pH值条件下具有不同的生长策略。一种独特的“空洞状”形成过程从[具体珊瑚物种名称]骨骼内部开始,它牺牲骨骼密度以保护其息肉管道系统。[具体珊瑚物种名称]、[具体珊瑚物种名称]和[具体珊瑚物种名称]的形成模式以“骨质疏松”为特征,相应地表现出骨骼结构紊乱、粘附蛋白合成不足和骨量低。此外,我们发现酸化造成的损害特别影响群体中已有的骨骼结构。这些结果增进了我们对较低pH值条件下主要珊瑚物种骨骼形成策略的理解,为在海洋酸化加剧的情况下保护和恢复珊瑚礁提供了基础。