Models of coral growth: spontaneous branching, compactification and the Laplacian growth assumption

被引:42
作者
Merks, R [1 ]
Hoekstra, A [1 ]
Kaandorp, J [1 ]
Sloot, P [1 ]
机构
[1] Univ Amsterdam, Fac Sci, Sect Computat Sci, NL-1098 SJ Amsterdam, Netherlands
关键词
morphogenesis; coral growth; morphologic plasticity; phenotypic plasticity;
D O I
10.1016/S0022-5193(03)00140-1
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
in stony corals it is often observed that specimens collected from a sheltered growth site have more open and more thinly branched growth forms than specimens of the same species from more exposed growth sites, where stronger water currents are found. This observation was explained using an abiotic computational model inspired by coral growth, in which the growth velocity depended locally oil the absorption of a resource dispersed by advection and diffusion (Kaandorp and Sloot, J. Theor. Biol 209 (2001) 257). In that model a morphological range was found; as the Peclet-number (indicating the relative importance of advective and diffusive nutrient transport) was increased, more compact and spherical growth forms were found. Two unsatisfactory items have remained in this model, which we address in the present paper. First, an explicit curvature rule was responsible for branching. In this work we show that the curvature rule is not needed: the model exhibits spontaneous branching. provided that the resource field is computed with enough precision. Second, previously no explanation was given for the morphological range found ill the simulations. Here we show that such an explanation is given by the conditions under which spontaneous branching Occurs in our model, in which the compactness of the growth forms depends oil the ratio of the rates of growth and nutrient transport. We did not find an effect of flow. This suggests that the computational evidence that hydrodynamics influences the compactness of corals ill laminar flows may not be conclusive. The applicability of the Laplacian growth paradigm to understand coral growth is discussed. (C) 2003 Elsevier Ltd. All rights reserved.
引用
收藏
页码:153 / 166
页数:14
相关论文
共 49 条
[1]  
[Anonymous], [No title captured]
[2]   Coral suspension feeding on fine particulate matter [J].
Anthony, KRN .
JOURNAL OF EXPERIMENTAL MARINE BIOLOGY AND ECOLOGY, 1999, 232 (01) :85-106
[3]   The Quickhull algorithm for convex hulls [J].
Barber, CB ;
Dobkin, DP ;
Huhdanpaa, H .
ACM TRANSACTIONS ON MATHEMATICAL SOFTWARE, 1996, 22 (04) :469-483
[4]  
Barnes D.J., 1990, P109
[5]   SYSTEMATIC VARIATIONS IN THE DEPTH OF SKELETON OCCUPIED BY CORAL TISSUE IN MASSIVE COLONIES OF PORITES FROM THE GREAT-BARRIER-REEF [J].
BARNES, DJ ;
LOUGH, JM .
JOURNAL OF EXPERIMENTAL MARINE BIOLOGY AND ECOLOGY, 1992, 159 (01) :113-128
[6]  
BARNES DJ, 1973, B MAR SCI, V23, P280
[7]   Morphology diagram of possible structures in diffusional growth [J].
Brener, E ;
Muller-Krumbhaar, H ;
Temkin, D ;
Abel, T .
PHYSICA A-STATISTICAL MECHANICS AND ITS APPLICATIONS, 1998, 249 (1-4) :73-81
[8]  
Buddemeier R.W., 1976, Oceanography and Marine Biology an Annual Review, V14, P183
[9]   GROWTH TRAJECTORIES OF CORALLITES AND AGES OF POLYPS IN MASSIVE COLONIES OF REEF-BUILDING CORALS OF THE GENUS PORITES [J].
DARKE, WM ;
BARNES, DJ .
MARINE BIOLOGY, 1993, 117 (02) :321-326
[10]   APPLICATION OF TREE ARCHITECTURAL MODELS TO REEF-CORAL GROWTH FORMS [J].
DAUGET, JM .
MARINE BIOLOGY, 1991, 111 (01) :157-165