School of Zoology, Faculty of Life Sciences, Tel-Aviv University, Tel Aviv, Israel.
Department of Electrical and Computer Engineering, University of California San Diego, San Diego, USA.
Commun Biol. 2022 Aug 24;5(1):861. doi: 10.1038/s42003-022-03829-4.
The morphological architecture of photosynthetic corals modulates the light capture and functioning of the coral-algal symbiosis on shallow-water corals. Since corals can thrive on mesophotic reefs under extreme light-limited conditions, we hypothesized that microskeletal coral features enhance light capture under low-light environments. Utilizing micro-computed tomography scanning, we conducted a novel comprehensive three-dimensional (3D) assessment of the small-scale skeleton morphology of the depth-generalist coral Stylophora pistillata collected from shallow (4-5 m) and mesophotic (45-50 m) depths. We detected a high phenotypic diversity between depths, resulting in two distinct morphotypes, with calyx diameter, theca height, and corallite marginal spacing contributing to most of the variation between depths. To determine whether such depth-specific morphotypes affect coral light capture and photosynthesis on the corallite scale, we developed 3D simulations of light propagation and photosynthesis. We found that microstructural features of corallites from mesophotic corals provide a greater ability to use solar energy under light-limited conditions; while corals associated with shallow morphotypes avoided excess light through self-shading skeletal architectures. The results from our study suggest that skeleton morphology plays a key role in coral photoadaptation to light-limited environments.
光合作用珊瑚的形态结构调节了浅水珊瑚中珊瑚-藻类共生体的光捕获和功能。由于珊瑚在极端光限制条件下可以在中光深度的珊瑚礁上繁衍生息,因此我们假设微骨骼珊瑚特征可以在低光照环境下增强光捕获。本研究利用微计算机断层扫描技术,对从浅水区(4-5 米)和中光区(45-50 米)采集的水深适应种珊瑚石珊瑚(Stylophora pistillata)的小尺度骨骼形态进行了新颖的综合三维(3D)评估。我们在不同水深之间检测到了高度的表型多样性,导致出现了两种截然不同的形态类型,其中萼直径、壳高和珊瑚虫边缘间距对水深之间的大部分变异起主要作用。为了确定这种特定于深度的形态类型是否会影响珊瑚虫在珊瑚虫尺度上的光捕获和光合作用,我们对光传播和光合作用进行了 3D 模拟。我们发现,来自中光深度珊瑚的珊瑚虫微结构特征在光限制条件下提供了更大的利用太阳能的能力;而与浅形态类型相关的珊瑚则通过自遮蔽骨骼结构来避免过多的光。本研究的结果表明,骨骼形态在珊瑚对光限制环境的光适应中起着关键作用。