It is demonstrated that dual editing of BcSGR1 and BcSGR2 exerts an additive effect on delaying leaf senescence and enhances postharvest shelf life without incurring significant yield penalties under the experimental conditions.
Abstract
Leaf senescence negatively impacts yield and postharvest quality in non-heading Chinese cabbage (Brassica rapa ssp. chinensis), and the STAY-GREEN (SGR) homologs BcSGR1 and BcSGR2 function as core regulators of chlorophyll degradation. In this study, we constructed CRISPR/Cas9 single- and dual-gene editing vectors using four high-efficiency, high-specificity single-guide RNAs (sgRNAs). By optimizing the transformation system using petiolate cotyledon explants supplemented with 6 mg·L−1 AgNO3, we obtained a PCR-positive transformation efficiency of 26% (this value reflects transformation efficiency; the actual gene editing efficiency for each mutant line is presented in the target sequencing results) and generated BcSGR1 (YB1) and BcSGR2 (YB2) single mutants and a BcSGR1/BcSGR2 double mutant (DKO). All mutant lines exhibited a pronounced stay-green phenotype and delayed leaf senescence. The DKO line produced 3.15-fold higher chlorophyll and only one-quarter of the wild-type MDA level, indicating an additive enhancement effect of the double knockout. Compared with the wild type (3-day shelf life), YB1, YB2 and DKO extended postharvest longevity to 7, 8 and 11 days, with senescence delayed by 15, 18 and 22 days, respectively. Notably, whereas the YB1 and YB2 displayed mild leaf shriveling at later developmental stages, the DKO maintained normal leaf morphology. Collectively, our findings demonstrate that dual editing of BcSGR1 and BcSGR2 exerts an additive effect on delaying leaf senescence and enhances postharvest shelf life without incurring significant yield penalties under the experimental conditions. This study provides a feasible and effective strategy for breeding stay-green cultivars of non-heading Chinese cabbage.
Rice (Oryza sativa L.) is a staple food crop worldwide, and improving disease resistance is a core target in rice breeding. In this study, we employed CRISPR/Cas9 genome editing to modify the coding sequence (CDS) of two susceptibility genes, Bsr-d1 and Pi21, in the elite maintainer line Gengxiang B to enhance its blas...
Ke Lan, Lin Yuan, Da-Cheng Zhao et al.· Plants· 0 citations
Huanglongbing (HLB), caused by Candidatus Liberibacter spp., remains the most destructive disease affecting citrus worldwide. To support host-directed genome-editing strategies aimed at reducing susceptibility, we optimized key regeneration steps in Citrus sinensis and validated a dual-gRNA CRISPR/Cas9 approach targeti...
The present study addresses optimization of in-vitro regeneration via direct organogenesis and Agrobacterium-mediated genetic transformation, enabling efficient multiplex CRISPR/Cas9-based genome editing of the phytoene desaturase (PsPDS) gene in pea. Pea (Pisum sativum L.) is an important legume crop valued for food,...
ABSTRACT Goji is recognized as a nutritionally rich superfruit with medicinal and industrial importance. However, its inherently indeterminate growth habit causes asynchronous flowering and uneven fruit ripening, resulting in harvesting inefficiency with high labour costs and low fruit yield. To elucidate the molecular...
Fazal Rehman, Huanli Liu, Yun Ma et al.· Plant Biotechnology Journal· 0 citations
iPB-REG is established as a practical strategy for producing uniform genome-edited fruit trees and provide a valuable platform for DNA-free genetic improvement and functional genomics in clonally propagated perennial crops.
C. Nishitani, Nozomi Tsujino, Misa Kuroki et al.· bioRxiv· 0 citations
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