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Estimating evolution of temporal sequence changes: A practical approach to inferring ancestral developmental sequences and sequence heterochrony

机译:估计时间序列变化的演变:推断祖先发育序列和序列异时的实用方法

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摘要

Developmental biology often yields data in a temporal context. Temporal data in phylogenetic systematics has important uses in the field of evolutionary developmental biology and, in general, comparative biology. The evolution of temporal sequences, specifically developmental sequences, has proven difficult to examine due to the highly variable temporal progression of development. Issues concerning the analysis of temporal sequences and problems with current methods of analysis are discussed. We present here an algorithm to infer ancestral temporal sequences, quantify sequence heterochronies, and estimate pseudoreplicate consensus support for sequence changes using Parsimov-based genetic inference [PGi]. Real temporal developmental sequence data sets are used to compare PGi with currently used approaches, and PGi is shown to be the most efficient, accurate, and practical method to examine biological data and infer ancestral states on a phylogeny. The method is also expandable to address further issues in developmental evolution, namely modularity.
机译:发育生物学通常在时间范围内产生数据。系统发育中的时间数据在进化发育生物学以及通常是比较生物学领域具有重要用途。由于发育的高度可变的时间进展,已证明难以检查时间序列,特别是发育序列的进化。讨论了有关时间序列分析的问题以及当前分析方法的问题。我们在这里提出一种算法来推断祖先的时间序列,量化序列异时,并使用基于Parsimov的遗传推论[PGi]估计序列变化的伪复制共识支持。实际的时间发育序列数据集用于将PGi与当前使用的方法进行比较,并且PGi被证明是检查生物学数据和推断系统发育祖先状态的最有效,最准确和实用的方法。该方法还可以扩展以解决发展演变中的其他问题,即模块化。

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