Repository logo
Home
Research Outputs
Collections
Statistics
Shared Repository Homepage
  1. Home
  2. Cultural Heritage Shared Repository Service
  3. Royal Botanic Gardens, Kew
  4. Article
  5. Genetic assimilation of ancestral plasticity during parallel adaptation to zinc contamination in Silene uniflora.

Genetic assimilation of ancestral plasticity during parallel adaptation to zinc contamination in Silene uniflora.

Thumbnail Image
Download
Name

s41559-022-01975-w.pdf

Description
visibility:open
Size

2.13 MB

Format

Adobe PDF

Checksum (CRC64NVME)

/PRtluZrFc0=

Resource type
Journal article
Creator (person)
Wood, Daniel P.
ORCIDORCID logo
Holmberg, Jon A.
Osborne, Owen G.
ORCIDORCID logo
Helmstetter, Andrew J.
ORCIDORCID logo
Dunning, Luke T.
ORCIDORCID logo
Ellison, Amy R.
ORCIDORCID logo
Smith, Rhian J.
ORCIDORCID logo
Lighten, Jackie
ORCIDORCID logo
Papadopulos, Alexander S. T.
ORCIDORCID logo
Date published
January 26, 2023
Abstract
Phenotypic plasticity in ancestral populations is hypothesized to facilitate adaptation, but evidence is piecemeal and often contradictory. Further, whether ancestral plasticity increases the probability of parallel adaptive changes has not been explored. The most general finding is that ancestral responses to a new environment are reversed following adaptation (known as reversion). We investigated the contribution of ancestral plasticity to adaptive evolution of gene expression in two independently evolved lineages of zinc-tolerant . We found that the general pattern of reversion is driven by the absence of a widespread stress response in zinc-adapted plants compared with zinc-sensitive plants. We show that ancestral plasticity that moves expression closer to the optimum value in the new environment influences the evolution of gene expression among genes that are likely to be involved in adaptation and increases the chance that genes are recruited repeatedly during adaptation. However, despite convergence in gene expression levels between independently adapted lineages, ancestral plasticity does not influence how similar expression values of adaptive genes become. Surprisingly, we also observed that ancestral plasticity that increases fitness often becomes genetically determined and fixed, that is, genetically assimilated. These results emphasize the important role of ancestral plasticity in parallel adaptation.
Project(s)
Priority 2: Trait Diversity and Function
Funder
Funder nameAwards
Natural Environment Research Council, United Kingdom
NE/R001081/1 - Independent Research Fellowship NE/T011025/1
Journal title
Nature Ecology & Evolution
Publisher
Springer Science and Business Media LLC
Place of publication
Berlin/Heidelberg, Germany
eISSN
2397-334X
Date accepted
December 12, 2022
Official URL
https://doi.org/10.1038/s41559-022-01975-w
Related URL
https://www.nature.com/articles/s41559-022-01975-w
Rights statement
In Copyright
Licence
https://creativecommons.org/licenses/by/4.0/
DOI
10.1038/s41559-022-01975-w
Keywords
Adaptation
Phenotypic plasticity
Plant evolution
Genetic assimilation
Silene uniflora
Ancestral plasticity
Zinc contamination
Molecular evolution
Additional information
IF = 15.46 (2022-2023)
Managed by the British Library and supported by the AHRC

Built with DSpace-CRIS software - Extension maintained and optimized by 4Science

  • Cookie settings
  • End User Agreement
  • About
  • Contact
  • Help
Repository logo COAR Notify