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Open access Aug 2026

Cyclin C and EB1c cooperatively regulate plant height in eggplant via internode elongation.

Plant height is an important agronomic characteristic that influences crop productivity and overall plant structure. Elucidating the molecular mechanisms underlying stem elongation in eggplant (Solanum melongena L.) is essential for advancing crop improvement. In this study, we identified a semi-dwarf eggplant mutant, eggplant dwarf4 (edf4), generated through Ethyl methanesulfonate (EMS) mutagenesis. Genetic mapping and functional analyses revealed that a point mutation in SmCycC, which encodes a homolog of Cyclin C, is responsible for the dwarf phenotype. The edf4 mutant exhibited 28.67% (p < 0.01) reduced plant height and 21.35% (p < 0.01) shorter internodes, concomitant with suppressed cell proliferation. VIGS-mediated silencing of SmCycC recapitulated the dwarf phenotype, with plant height reduced by 26.3% (p < 0.05). This evidence confirms that SmCycC positively drives internode elongation and overall plant height by enhancing cell division. We further identified SmEB1c, a microtubule plus-end binding protein, as a physical interactor of SmCycC. Silencing SmEB1c leads to plant dwarfism caused by decreased cell number, supporting its role as a positive regulator of stem growth. Together, these findings uncover a SmCycC-SmEB1c regulatory module that controls plant height by affecting cell division in eggplant, providing promising genetic targets for breeding semi-dwarf cultivars.

Ping Yu, Jian-Jian Shen, Ling He et al. · 0 citations
Open access Sep 2026

QTL Mapping and Functional Analysis Reveal Candidate Genes, Including BrSRR1, Involved in Negative Regulation of Shade-Induced Hypocotyl Elongation in Brassica rapa

Shade avoidance response (SAR) is an important adaptive mechanism that enables plants to optimize light capture in dense canopies, but excessive shade-induced hypocotyl elongation can negatively affect plant architecture, yield, and quality in Chinese cabbage. In this study, we investigated the genetic basis of SAR using an advanced intercross recombinant inbred line (AI RIL) population derived from a cross between the oil type Chinese cabbage ‘R500’ with significantly longer hypocotyls and the vegetable type Chinese cabbage ‘L58’ with shorter hypocotyls. Quantitative trait locus (QTL) mapping under simulated shade, represented by a low red/far-red light ratio of 0.5, and non-shade conditions, represented by a high red/far-red light ratio of 2.0, identified several candidate genes associated with hypocotyl elongation, including COP1, XTH17, HYH and SRR1. Among these genes, BrSRR1 was selected for functional validation by introducing two alleles of BrSRR1 coding sequences into the Arabidopsis srr1 mutant. Under simulated shade, the srr1 mutant exhibited significantly longer hypocotyl than wild-type Col-0, whereas the BrSRR1-L58 restored hypocotyl length to a level statistically indistinguishable from that of wild-type Col-0. In contrast, the BrSRR1-R500 failed to complement the mutant phenotype, indicating ecotype-specific and allele-dependent functional divergence. Collectively, these findings indicate that BrSRR1 is implicated as a candidate gene involved in negative regulation of shade-induced hypocotyl elongation, though pending validation in the native species, providing insights into the genetic regulation of SAR in Chinese cabbage and a potential target for breeding varieties with reduced shade-induced hypocotyl elongation suited to high-density planting.

Ya-Kun Zheng, Daling Feng, Shu-Xin Xuan et al. · 0 citations

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