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Related Experiment Video

Updated: Mar 1, 2026

Dissection and Downstream Analysis of Zebra Finch Embryos at Early Stages of Development
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Dissection and Downstream Analysis of Zebra Finch Embryos at Early Stages of Development

Published on: June 21, 2014

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PHENOTYPIC VARIATION OF GROWTH TRAJECTORIES IN FINCHES.

Mats Björklund1

  • 1Department of Zoology, Uppsala University, Villavägen 9, S-752 36, Uppsala, Sweden.

Evolution; International Journal of Organic Evolution
|June 1, 2017
PubMed
Summary

Phenotypic variation in finch growth trajectories is largely constrained to a single dimension, influencing evolutionary responses. This suggests morphological evolution often follows a multivariate size axis.

Keywords:
Correlationsfinchesgeneral sizegrowth trajectoriesphenotypic variation

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Area of Science:

  • Evolutionary biology
  • Developmental biology
  • Quantitative genetics

Background:

  • Phenotypic variation is essential for evolution, particularly changes in ontogenetic parameters that drive new phenotypes.
  • Understanding the structure of phenotypic variation in growth is crucial for predicting evolutionary trajectories.

Purpose of the Study:

  • To analyze the amount and dimensionality of phenotypic variation in early ontogenetic growth trajectories.
  • To investigate the structure of covariation among multiple traits during early development in finches.

Main Methods:

  • Utilized a recently developed infinite-dimensional model to analyze phenotypic variation.
  • Examined growth data for six to eight traits in three finch species up to 8 days of age.

Main Results:

  • A substantial proportion of phenotypic variation in growth trajectories was confined to a single dimension.
  • This primary dimension represented a coordinated increase or decrease in size across all ages.
  • Eigenfunctions showed high collinearity among traits, indicating strong covariation.

Conclusions:

  • Early ontogenetic growth variation in finches is highly structured, primarily along a multivariate size axis.
  • Additive genetic variation along this axis would lead to correlated responses in size across ages and traits.
  • This supports the hypothesis that morphological evolution frequently proceeds along multivariate size axes.