Section Computational Science, Faculty of Science, University of Amsterdam, Science Park 107, 1098 XG Amsterdam, The Netherlands.
Proc Biol Sci. 2010 Dec 7;277(1700):3555-61. doi: 10.1098/rspb.2010.0957. Epub 2010 Jun 23.
In addition to experimental studies, computational models provide valuable information about colony development in scleractinian corals. Using our simulation model, we show how environmental factors such as nutrient distribution and light availability affect growth patterns of coral colonies. To compare the simulated coral growth forms with those of real coral colonies, we quantitatively compared our modelling results with coral colonies of the morphologically variable Caribbean coral genus Madracis. Madracis species encompass a relatively large morphological variation in colony morphology and hence represent a suitable genus to compare, for the first time, simulated and real coral growth forms in three dimensions using a quantitative approach. This quantitative analysis of three-dimensional growth forms is based on a number of morphometric parameters (such as branch thickness, branch spacing, etc.). Our results show that simulated coral morphologies share several morphological features with real coral colonies (M. mirabilis, M. decactis, M. formosa and M. carmabi). A significant correlation was found between branch thickness and branch spacing for both real and simulated growth forms. Our present model is able to partly capture the morphological variation in closely related and morphologically variable coral species of the genus Madracis.
除了实验研究外,计算模型还为硬珊瑚的群体发育提供了有价值的信息。我们使用模拟模型,展示了环境因素(如营养物质分布和光照可用性)如何影响珊瑚群体的生长模式。为了将模拟珊瑚的生长形态与实际珊瑚群体进行比较,我们定量比较了我们的建模结果与形态多样的加勒比珊瑚属 Madracis 的珊瑚群体。Madracis 物种在群体形态上存在相对较大的形态变异,因此代表了一个合适的属,可以首次使用定量方法比较模拟和实际珊瑚的三维生长形态。这种对三维生长形态的定量分析基于许多形态参数(如分支厚度、分支间距等)。我们的结果表明,模拟珊瑚形态与实际珊瑚群体(M. mirabilis、M. decactis、M. formosa 和 M. carmabi)共享几个形态特征。在真实和模拟的生长形态中,都发现了分支厚度和分支间距之间的显著相关性。我们目前的模型能够部分捕捉到形态上密切相关且形态多样的 Madracis 属珊瑚物种的形态变化。