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From wrinkled seeds to plant oil accumulation networks: The legacy of a Plant Physiology classic

delete2026-07-05
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OA
AI
Q
Que Kong
S
Sitakanta Pattanaik
孔凡涛 (Fantao Kong)
L
Liang Guo
L
Ling Yuan
W
Wei Ma *
DOI:10.1093/plphys/kiag471delete
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Abstract

Abstract

En 中文
Plant seeds accumulate triacylglycerol (TAG) as a major storage reserve that supports post-germination growth and seedling establishment. Vegetable oils are also essential for human nutrition and provide renewable feedstocks for industrial and biotechnological applications. In 1998, Focks and Benning published a landmark study in Plant Physiology describing the Arabidopsis WRINKLED1 mutants (wri1), which display a distinctive wrinkled seed phenotype and a dramatic reduction in seed oil accumulation. The conceptual importance of this discovery was not simply the identification of a low-oil mutant, but the demonstration that seed oil accumulation depends on developmental control of carbon flux from carbohydrates into fatty acid precursors. Cloning of the Arabidopsis WRI1 (AtWRI1) gene in 2004 transformed this physiological phenotype into a molecular framework by identifying WRI1 as a member of the APETALA2 (AP2) family of transcription factors that activates late glycolytic and fatty acid biosynthetic genes. Subsequent work uncovered the AW-box cis-element, upstream seed-maturation regulators, WRI1-interacting partners, post-transcriptional and post-translational modification mechanisms controlling WRI1 stability and activity, and the structural basis of WRI1-DNA recognition. These discoveries established WRI1 as a central regulatory node linking seed development, carbohydrate metabolism, and seed oil accumulation. More recent studies have broadened WRI1 biology beyond canonical seed oil biosynthesis to include non-seed oil-storing tissues, hormone and nutrient-associated processes, environmental responses, and structure-guided crop engineering. Here, we revisit the original Plant Physiology classic and trace how one mutant phenotype reshaped modern understanding of plant carbon partitioning, transcriptional regulation, and metabolic engineering

Journal

Plant Physiology cover
Plant Physiology
IF:
6.9
Papers:
1.7W
Citations:
9.6W

Organization

Y
yazhouwan national laboratory
Scholars:
388
Papers: 212
Citations: 1
N
Nanyang Technological University
Scholars:
4.8W
Papers: 4.7W
Citations: 8.1W
D
Dalian University of Technology
Scholars:
5.7W
Papers: 4.3W
Citations: 5.5W
U
University of Kentucky
Scholars:
2.5W
Papers: 2.1W
Citations: 41
Cited Papers

Cited Papers

Citing Papers

Citing Papers