Literature DB >> 23572125

Mapping shape quantitative trait loci using a radius-centroid-contour model.

G Fu1, W Bo, X Pang, Z Wang, L Chen, Y Song, Z Zhang, J Li, R Wu.   

Abstract

As the consequence of complex interactions between different parts of an organ, shape can be used as a predictor of structural-functional relationships implicated in changing environments. Despite such importance, however, it is no surprise that little is known about the genetic detail involved in shape variation, because no approach is currently available for mapping quantitative trait loci (QTLs) that control shape. Here, we address this problem by developing a statistical model that integrates the principle of shape analysis into a mixture-model-based likelihood formulated for QTL mapping. One state-of-the-art approach for shape analysis is to identify and analyze the polar coordinates of anatomical landmarks on a shape measured in terms of radii from the centroid to the contour at regular intervals. A procrustes analysis is used to align shapes to filter out position, scale and rotation effects on shape variation. To the end, the accurate and quantitative representation of a shape is produced with aligned radius-centroid-contour (RCC) curves, that is, a function of radial angle at the centroid. The high dimensionality of the RCC data, crucial for a comprehensive description of the geometric feature of a shape, is reduced by principal component (PC) analysis, and the resulting PC axes are treated as phenotypic traits, allowing specific QTLs for global and local shape variability to be mapped, respectively. The usefulness and utilization of the new model for shape mapping in practice are validated by analyzing a mapping data collected from a natural population of poplar, Populus szechuanica var tibetica, and identifying several QTLs for leaf shape in this species. The model provides a powerful tool to compute which genes determine biological shape in plants, animals and humans.

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Year:  2013        PMID: 23572125      PMCID: PMC3656636          DOI: 10.1038/hdy.2012.97

Source DB:  PubMed          Journal:  Heredity (Edinb)        ISSN: 0018-067X            Impact factor:   3.821


  32 in total

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4.  Phylogeny of Populus (Salicaceae) based on nucleotide sequences of chloroplast TRNT-TRNF region and nuclear rDNA.

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Journal:  Am J Bot       Date:  2004-09       Impact factor: 3.844

5.  Mapping mendelian factors underlying quantitative traits using RFLP linkage maps.

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7.  The dimensionality of genetic variation for wing shape in Drosophila melanogaster.

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Journal:  Evolution       Date:  2005-05       Impact factor: 3.694

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9.  Extremely elongated tomato fruit controlled by four quantitative trait loci with epistatic interactions.

Authors:  E. Van Der Knaap; Z. B. Lippman; S. D. Tanksley
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Review 10.  Evolution and development of shape: integrating quantitative approaches.

Authors:  Christian Peter Klingenberg
Journal:  Nat Rev Genet       Date:  2010-08-10       Impact factor: 53.242

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  9 in total

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6.  Genetic Architecture of Heterophylly: Single and Multi-Leaf Genome-Wide Association Mapping in Populus euphratica.

Authors:  Xuli Zhu; Fengshuo Sun; Mengmeng Sang; Meixia Ye; Wenhao Bo; Ang Dong; Rongling Wu
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7.  Holm multiple correction for large-scale gene-shape association mapping.

Authors:  Guifang Fu; Garrett Saunders; John Stevens
Journal:  BMC Genet       Date:  2014-06-20       Impact factor: 2.797

8.  A Bivariate Hypothesis Testing Approach for Mapping the Trait-Influential Gene.

Authors:  Garrett Saunders; Guifang Fu; John R Stevens
Journal:  Sci Rep       Date:  2017-10-09       Impact factor: 4.379

9.  Identification of Quantitative Trait Loci for Altitude Adaptation of Tree Leaf Shape With Populus szechuanica in the Qinghai-Tibetan Plateau.

Authors:  Meixia Ye; Xuli Zhu; Pan Gao; Libo Jiang; Rongling Wu
Journal:  Front Plant Sci       Date:  2020-05-27       Impact factor: 5.753

  9 in total

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