Organellar transcripts dominate the cellular mRNA pool across plants of varying ploidy levels

Author:

Forsythe Evan S.1,Grover Corrinne E.2,Miller Emma R.2,Conover Justin L.2ORCID,Arick Mark A.3,Chavarro M. Carolina F.45,Leal-Bertioli Soraya C. M.4ORCID,Peterson Daniel G.3,Sharbrough Joel6ORCID,Wendel Jonathan F.2ORCID,Sloan Daniel B.1ORCID

Affiliation:

1. Department of Biology, Colorado State University, Fort Collins, CO 80523

2. Department of Ecology, Evolution, and Organismal Biology, Iowa State University, Ames, IA 50010

3. Institute for Genomics, Biocomputing & Biotechnology, Mississippi State University, Mississippi State, MS 39762

4. Institute of Plant Breeding, Genetics and Genomics, Athens, GA 30602

5. Bayer Crop Science, Chesterfield, MO 63017

6. Department of Biology, New Mexico Institute of Mining and Technology, Socorro, NM 87801

Abstract

Mitochondrial and plastid functions depend on coordinated expression of proteins encoded by genomic compartments that have radical differences in copy number of organellar and nuclear genomes. In polyploids, doubling of the nuclear genome may add challenges to maintaining balanced expression of proteins involved in cytonuclear interactions. Here, we use ribo-depleted RNA sequencing (RNA-seq) to analyze transcript abundance for nuclear and organellar genomes in leaf tissue from four different polyploid angiosperms and their close diploid relatives. We find that even though plastid genomes contain <1% of the number of genes in the nuclear genome, they generate the majority (69.9 to 82.3%) of messenger RNA (mRNA) transcripts in the cell. Mitochondrial genes are responsible for a much smaller percentage (1.3 to 3.7%) of the leaf mRNA pool but still produce much higher transcript abundances per gene compared to nuclear genome. Nuclear genes encoding proteins that functionally interact with mitochondrial or plastid gene products exhibit mRNA expression levels that are consistently more than 10-fold lower than their organellar counterparts, indicating an extreme cytonuclear imbalance at the RNA level despite the predominance of equimolar interactions at the protein level. Nevertheless, interacting nuclear and organellar genes show strongly correlated transcript abundances across functional categories, suggesting that the observed mRNA stoichiometric imbalance does not preclude coordination of cytonuclear expression. Finally, we show that nuclear genome doubling does not alter the cytonuclear expression ratios observed in diploid relatives in consistent or systematic ways, indicating that successful polyploid plants are able to compensate for cytonuclear perturbations associated with nuclear genome doubling.

Funder

NSF | BIO | Division of Integrative Organismal Systems

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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