Kiwifruit bacterial canker, caused by Pseudomonas syringae pv. actinidiae (Psa), severely restricts the sustainable development of the kiwifruit industry. Screening stable resistant germplasm and establishing efficient disease resistance evaluation methods are core prerequisites for breeding resistant cultivars. In this study, 86 Actinidia accessions were systematically assessed for Psa susceptibility over three consecutive years using the reported detached shoot inoculation assay. Seven representative accessions with contrasting resistance phenotypes, namely ‘Cuiyu’, ‘Chuhong’, ‘Jinmei’, ‘Hongyang’, ‘Cuixiang’, ‘Avfs08’, and ‘G3’, were selected to measure the activities of four defense-related enzymes post Psa inoculation to dissect the physiological mechanisms driving divergent Psa resistance in kiwifruit. Lesion lengths across years exhibited a significant positive correlation, demonstrating that this inoculation method delivers repeatable, genetically stable phenotypic data with limited environmental interference. Two accessions belonging to A. valvata and A. eriantha exhibited stable high resistance via synergistic biochemical defenses. By contrast, the widely grown cultivar ‘Hongyang’ was highly susceptible, while moderately resistant materials such as ‘Cuiyu’ and ‘Yannong 3’ were discovered within the inherently susceptible species A. chinensis. Highly resistant accessions rapidly induced coordinated increases in SOD and PAL activity at 24 h post inoculation to maintain ROS homeostasis and lignin biosynthesis, whereas susceptible accessions displayed chaotic, ineffective enzymatic stress responses. Temporal synergy of PAL and POD may act as the key defensive regulatory mode. This study uncovered substantial interspecific variation in Psa resistance across Actinidia germplasm, identified elite donors with stable resistance, and elucidated the physiological mechanisms of kiwifruit resistance to Psa. These findings provided a theoretical foundation and valuable germplasm for subsequent resistance gene mining and disease resistance breeding.
Mengjie Chen, Jia-Le Tang, Sha Mo et al.· Plants· 0 citations
Mature Vitis davidii berries exhibit a unique metabolite profile characterized by exceptionally low malate, relatively lower soluble sugars, and abundant anthocyanin diglucoside accumulation. To elucidate the regulatory basis underlying these distinctive traits, we performed an integrated transcriptomic and metabolomic analysis across 18 developmental stages. This atlas identified veraison as a critical metabolic reprogramming window, marking a significant shift in metabolic flux that is potentially linked to species-specific transcriptional divergences. Using weighted gene coexpression network analysis (WGCNA), we identified candidate hub genes hypothesized to participate in these shifts. Specifically, transient transformation in grapevine callus provided preliminary functional evidence suggesting that the nuclear-localized transcription factor VdNAC17 potentially regulates soluble sugar accumulation, while VdbZIP30 might serve a dual regulatory function coordinating both soluble sugars and anthocyanins. Collectively, this high-resolution multiomics atlas proposes a foundational regulatory framework for V. davidii berry quality and identifies promising genetic targets for targeted grapevine breeding programs.
Shengdi Yang, Yating Zeng, Bilin Chen et al.· Journal of Agricultural and...· 0 citations
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