Quantitative tests of primary homology

被引:104
作者
Agnarsson, Ingi [1 ,2 ]
Coddington, Jonathan A. [1 ]
机构
[1] Smithsonian Inst, NHB 105, Dept Entomol, Washington, DC 20013 USA
[2] Univ British Columbia, Dept Bot & Zool, Vancouver, BC V6T 1Z4, Canada
关键词
D O I
10.1111/j.1096-0031.2007.00168.x
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
In systematic biology homology hypotheses are typically based on points of similarity and tested using congruence, of which the two stages have come to be distinguished as "primary'' versus "secondary'' homology. Primary homology is often regarded as prior to logical test, being a kind of background assumption or prior knowledge. Similarity can, however, be tested by more detailed studies that corroborate or weaken previous homology hypotheses before the test of congruence is applied. Indeed testing similarity is the only way to test the homology of characters, as congruence only tests their states. Traditional homology criteria include topology, special similarity, function, ontogeny and step-counting (for example, transformation in one step versus two via loss and gain). Here we present a method to compare quantitatively the ability of such criteria, and competing homology schema, to explain morphological observations. We apply the method to a classic and difficult problem in the homology of male spider genital sclerites. For this test case topology performed better than special similarity or function. Primary homologies founded on topology resulted in hypotheses that were globally more parsimonious than those based on other criteria, and therefore yielded a more coherent and congruent nomenclature of palpal sclerites in theridiid spiders than prior attempts. Finally, we question whether primary homology should be insulated as "prior knowledge'' from the usual issues and demands that quantitative phylogenetic analyses pose, such as weighting and global versus local optima. (c) The Willi Hennig Society 2007.
引用
收藏
页码:51 / 61
页数:11
相关论文
共 64 条
[41]   ONTOGENY, PHYLOGENY, PALEONTOLOGY, AND BIOGENETIC LAW [J].
NELSON, G .
SYSTEMATIC ZOOLOGY, 1978, 27 (03) :324-345
[42]  
Owen R., 1843, Lectures on the comparative anatomy and physiology of vertebrate animals, delivered at the Royal College of Surgeons, in 1843
[43]  
Patterson C., 1982, Problems of Phylogenetic Reconstruction, P21
[44]   HETEROGENEOUS PROPERTIES OF SEGMENTALLY HOMOLOGOUS INTERNEURONS IN THE VENTRAL NERVE CORD OF LOCUSTS [J].
PEARSON, KG ;
BOYAN, GS ;
BASTIANI, M ;
GOODMAN, CS .
JOURNAL OF COMPARATIVE NEUROLOGY, 1985, 233 (01) :133-145
[45]   Homology assessment and molecular sequence alignment [J].
Phillips, AJ .
JOURNAL OF BIOMEDICAL INFORMATICS, 2006, 39 (01) :18-33
[46]   CHARACTER DEFINITIONS AND CHARACTER STATE DELINEATION - THE BETE-NOIRE OF PHYLOGENETIC INFERENCE [J].
POGUE, MG ;
MICKEVICH, MF .
CLADISTICS-THE INTERNATIONAL JOURNAL OF THE WILLI HENNIG SOCIETY, 1990, 6 (04) :319-361
[47]  
Ramírez MJ, 2007, CLADISTICS, V23, P588, DOI [10.1111/.1096-0031.2007.00162.x, 10.1111/j.1096-0031.2007.00162.x]
[48]  
REMANE A, 1952, GEEST PORTIG
[49]   Homologies in phylogenetic analyses - concept and tests [J].
Richter, S .
THEORY IN BIOSCIENCES, 2005, 124 (02) :105-120
[50]   Similarity [J].
Rieppel, O ;
Kearney, M .
BIOLOGICAL JOURNAL OF THE LINNEAN SOCIETY, 2002, 75 (01) :59-82