The immediate metabolomic effects of whole-genome duplication in the greater duckweed, Spirodela polyrhiza
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Date
Authors
Wu, Tian
Bafort, Quinten
Mortier, Frederik
Almeida-Silva, Fabricio
Natran, Annelore
Van de Peer, Yves
Journal Title
Journal ISSN
Volume Title
Publisher
Wiley
Abstract
PREMISE :
In plants, whole-genome duplication (WGD) is a common mutation with profound evolutionary potential. Given the costs associated with a superfluous genome copy, polyploid establishment is enigmatic. However, in the right environment, immediate phenotypic changes following WGD can facilitate establishment. Metabolite abundances are the direct output of the cell's regulatory network and determine much of the impact of environmental and genetic change on the phenotype. While it is well known that an increase in the bulk amount of genetic material can increase cell size, the impact of gene dosage multiplication on the metabolome remains largely unknown.
METHODS :
We used untargeted metabolomics on four genetically distinct diploid-neoautotetraploid pairs of the greater duckweed, Spirodela polyrhiza, to investigate how WGD affects metabolite abundances per cell and per biomass.
RESULTS :
Autopolyploidy increased metabolite levels per cell, but the response of individual metabolites varied considerably. However, the impact on metabolite level per biomass was restricted because the increased cell size reduced the metabolite concentration per cell. Nevertheless, we detected both quantitative and qualitative effects of WGD on the metabolome. Many effects were strain-specific, but some were shared by all four strains.
CONCLUSIONS :
The nature and impact of metabolic changes after WGD depended strongly on the genotype. Dosage effects have the potential to alter the plant metabolome qualitatively and quantitatively, but were largely balanced out by the reduction in metabolite concentration due to an increase in cell size in this species.
Description
DATA AVAILABILITY STATEMENT :
All raw LC-MS and GC-MS files will be deposited in the EMBL-EBI MetaboLights database (DOI: 10.1093/nar/gkad1045, PMID:37971328) with the identifier MTBLS10435, which can be accessed at https://www.ebi.ac.uk/metabolights/MTBLS10435. The codes used for the analyses in this paper will be available on a GitHub repository at https://github.com/wutian1217/metabolomics.
APPENDIX S1. Supplementary materials and figures.
APPENDIX S2. Supplementary tables.
This article is part of joint special issues of the American Journal of Botany and Applications in Plant Sciences: “Twice as Nice: New Techniques and Discoveries in Polyploid Biology”.
APPENDIX S1. Supplementary materials and figures.
APPENDIX S2. Supplementary tables.
This article is part of joint special issues of the American Journal of Botany and Applications in Plant Sciences: “Twice as Nice: New Techniques and Discoveries in Polyploid Biology”.
Keywords
Araceae, Comparative metabolomics, Dosage effects, Duckweed (Spirodela polyrhiza), Lemnaceae, Polyploidy, Spirodela polyrhiza, Whole genome duplication (WGD), SDG-15: Life on land
Sustainable Development Goals
SDG-15:Life on land
Citation
Wu, T., Q. Bafort, F. Mortier, F. Almeida‐Silva, A. Natran, and Y. Van de Peer. 2024. The immediate metabolomic effects of
whole‐genome duplication in the greater duckweed,
Spirodela polyrhiza. American Journal of Botany 111:
e16383. https://doi.org/10.1002/ajb2.16383.