Glyphosate, one of the most widely used and effective herbicides worldwide, plays a critical role in weed management. However, its application can indirectly compromise crop yield and fiber quality while controlling weeds. Consequently, breeding crop varieties that simultaneously exhibit high herbicide tolerance, high yield, and excellent quality has become a major goal in current crop breeding. To address this critical gap, we successfully developed a transgenic upland cotton line, designated as L397-1, by co-transforming the elite cultivar ZM24 with two functional genes: the herbicide-resistant
g10evo-epsps
and the high-yield
csRRM2
. Phenotypic analysis showed that L397–1 plants exhibited significantly enhanced tolerance to glyphosate, as well as increased yield and fiber length, indicating that this strategy effectively pyramids high-yield, high-quality, and high-herbicide-resistance traits. Furthermore, comprehensive environmental safety assessments were conducted on the transgenic plants, covering their competitive fitness in both wasteland and cultivated habitats, field arthropod community structure, incidence of major diseases, and the population density and species richness of harmful pests. The results revealed no significant differences between the transgenic L397–1 and its recipient ZM24 across all evaluated ecological parameters, supporting the ecological safety and application potential of L397–1 for future breeding utilization. In summary, this study establishes an integrated chain from “trait pyramiding technology development—germplasm innovation—multidimensional evaluation of breeding value”, providing new insights for the synergistic improvement of multiple traits and their utilization in crop breeding.
Peng Wang, Meng-Meng Li, Juyun Zheng et al.· Frontiers in Plant Science· 0 citations
The soil-borne fungal pathogen Verticillium dahliae (V. dahliae) is the causal agent of Verticillium wilt (VW), a vascular disease that severely threatens global cotton production. Although cell wall lignification represents a cornerstone of plant immunity, the precise regulatory circuits that bridge this structural reinforcement with Verticillium dahliae resistance in cotton have yet to be fully elucidated. Here, we demonstrate that the NAC transcription factor GhNAC043 is a key positive regulator of this defense. GhNAC043 expression was rapidly induced upon V. dahliae infection. Silencing GhNAC043 in cotton compromised resistance, reducing lignin accumulation and downregulating lignin biosynthesis genes. Conversely, heterologous overexpression of GhNAC043 in Arabidopsis enhanced VW tolerance. We further identified GhBPM2 as a nuclear interaction partner of GhNAC043. Profiling of the transcriptome demonstrated that the GhNAC043-GhBPM2 module alters the expression profile of genes pivotal for jasmonic acid (JA) and abscisic acid (ABA) signal transduction. Collectively, these results highlight a previously unknown regulatory pathway in which the GhNAC043-GhBPM2 complex drives lignin deposition through the modulation of JA and ABA signaling, thereby fortifying cotton against VW infection.
Zhaoyuan Ba, Juyun Zheng, Ying Liu et al.· Plant physiology and biochem...· 0 citations
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