Why Specialized Metabolism Recurrently Emerges in Plants: Chemical and Genomic Biases in Metabolic Diversification

Specialized metabolism plays a central role in mediating ecological interactions and adaptive responses in plants, while leaving enduring signatures in genome structure and evolution. Here, we synthesize advances in genomics, biochemistry, and evolutionary biology into a metabolite-driven genetic diversification (MGD) framework, in which metabolite chemistry biases the generation, retention, and reuse of genetic variation. When metabolic flux produces reactive, inhibitory, or otherwise costly intermediates, pathways handling these liabilities recurrently recruit gene dosage changes, duplication, and divergence at catalytic and regulatory choke points. These biases do not impose deterministic outcomes; instead, they shape which genomic variants are preferentially sampled and retained under selection, giving rise to predictable patterns of genomic change. Genome multiplication-through whole-genome duplication, allopolyploidy, and cell type-specific endoreduplication-amplifies these effects by altering dosage balance, regulatory context, and retention trajectories. Integrating MGD with genome-scale dosage dynamics explains why specialized metabolism repeatedly converges on similar solutions across plant lineages, even amid extensive genomic turnover and chemical diversity.

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Publication Details

Journal
Annual Review of Genetics
Published
2026-09-11
DOI
https://doi.org/10.1146/annurev-genet-011626-032027
Primary Topic
Plant biochemistry and biosynthesis
Type
article
Field-Weighted Citation Impact
0.00
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article

Why Specialized Metabolism Recurrently Emerges in Plants: Chemical and Genomic Biases in Metabolic Diversification

Jun Murata, Eiichiro Ono
Annual Review of Genetics
Plant biochemistry and biosynthesis
article

Why Specialized Metabolism Recurrently Emerges in Plants: Chemical and Genomic Biases in Metabolic Diversification

Jun Murata, Eiichiro Ono
article en

Abstract

Specialized metabolism plays a central role in mediating ecological interactions and adaptive responses in plants, while leaving enduring signatures in genome structure and evolution. Here, we synthesize advances in genomics, biochemistry, and evolutionary biology into a metabolite-driven genetic diversification (MGD) framework, in which metabolite chemistry biases the generation, retention, and reuse of genetic variation. When metabolic flux produces reactive, inhibitory, or otherwise costly intermediates, pathways handling these liabilities recurrently recruit gene dosage changes, duplication, and divergence at catalytic and regulatory choke points. These biases do not impose deterministic outcomes; instead, they shape which genomic variants are preferentially sampled and retained under selection, giving rise to predictable patterns of genomic change. Genome multiplication-through whole-genome duplication, allopolyploidy, and cell type-specific endoreduplication-amplifies these effects by altering dosage balance, regulatory context, and retention trajectories. Integrating MGD with genome-scale dosage dynamics explains why specialized metabolism repeatedly converges on similar solutions across plant lineages, even amid extensive genomic turnover and chemical diversity.

Annual Review of Genetics
Suntory (Japan) (JP), Suntory Foundation for Life Sciences (JP)
Openalex Percentile: Top 18%
Plant biochemistry and biosynthesis
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