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Spatial Patterns and Associations Between Species Belonging to Four Genera of the Lauraceae Family

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Journal PLoS One
Date 2014 Nov 4
PMID 25365507
Citations 3
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Abstract

Spatial distribution pattern of biological related species present unique opportunities and challenges to explain species coexistence. In this study, we explored the spatial distributions and associations among congeneric species at both the species and genus levels to explain their coexistence through examining the similarities and differences at these two levels. We first used DNA and cluster analysis to confirmed the relative relationship of eight species within a 20 ha subtropical forest in southern China. We compared Diameter at breast height (DBH) classes, aggregation intensities and spatial patterns, associations, and distributions of four closely related species pairs to reveal similarities and differences at the species and genus levels. These comparisons provided insight into the mechanisms of coexistence of these congeners. O-ring statistics were used to measure spatial patterns of species. Ω0-10, the mean conspecific density within 10 m of a tree, was used as a measure of the intensity of aggregation of a species, and g-function was used to analyze spatial associations. Our results suggested that spatial aggregations were common, but the differences between spatial patterns were reduced at the genus level. Aggregation intensity clearly reduced at the genus level. Negative association frequencies decreased at the genus level, such that independent association was commonplace among all four genera. Relationships between more closely related species appeared to be more competitive at both the species and genus levels. The importance of competition on interactions is most likely influenced by similarity in lifestyle, and the habitat diversity within the species' distribution areas. Relatives with different lifestyles likely produce different distribution patterns through different interaction process. In order to fully understand the mechanisms generating spatial distributions of coexisting siblings, further research is required to determine the spatial patterns and associations at other classification levels.

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References
1.
Helmus M, Savage K, Diebel M, Maxted J, Ives A . Separating the determinants of phylogenetic community structure. Ecol Lett. 2007; 10(10):917-25. DOI: 10.1111/j.1461-0248.2007.01083.x. View

2.
Li L, Wei S, Huang Z, Ye W, Cao H . Spatial patterns and interspecific associations of three canopy species at different life stages in a subtropical forest, China. J Integr Plant Biol. 2008; 50(9):1140-50. DOI: 10.1111/j.1744-7909.2008.00690.x. View

3.
Condit R, Pitman N, Leigh Jr E, Chave J, Terborgh J, Foster R . Beta-diversity in tropical forest trees. Science. 2002; 295(5555):666-9. DOI: 10.1126/science.1066854. View

4.
Lin Y, Chang L, Yang K, Wang H, Sun I . Point patterns of tree distribution determined by habitat heterogeneity and dispersal limitation. Oecologia. 2010; 165(1):175-84. DOI: 10.1007/s00442-010-1718-x. View

5.
Pei N, Lian J, Erickson D, Swenson N, Kress W, Ye W . Exploring tree-habitat associations in a Chinese subtropical forest plot using a molecular phylogeny generated from DNA barcode loci. PLoS One. 2011; 6(6):e21273. PMC: 3119057. DOI: 10.1371/journal.pone.0021273. View