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Zeyang Zheng

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Aug 2026

Identification of ATG genes in the noble scallop Chlamys nobilis reveals unique expression strategies against low-temperature and Vibrio parahaemolyticus challenge.

Autophagy is a highly conserved cellular degradation pathway in eukaryotes, orchestrated by a suite of autophagy-related (ATG) genes. Beyond their canonical autophagic roles, ATG proteins participate extensively in diverse non-autophagic processes, serving as crucial regulators for cellular homeostasis and normal physiological functions. The noble scallop, Chlamys nobilis, is an economically important mariculture bivalve in southern China, yet its aquaculture industry frequently suffers severe losses due to extremes low temperature events and bacterial diseases. However, the evolutionary characteristics and stress-resistance functions of the ATG genes in this species remain poorly understood. In this study, a total of 213 non-redundant ATG genes were identified from 12 bivalve species and classified into 16 subfamilies, among which the ATG4 and ATG8 subfamilies exhibited extensive gene duplication. In C. nobilis, 17 CnATG genes were identified, spanning 14 subfamilies. Tissue expression profiling revealed that most CnATG genes were highly expressed in the kidney, intestine, and gill tissues. Importantly, low-temperature stress and Vibrio parahaemolyticus challenge experiments demonstrated markedly distinct expression patterns of CnATG genes, indicating their involvement in different stress response programs mediated by sophisticated transcriptional regulatory networks. This study systematically elucidates the evolutionary characteristics and expression regulation patterns of ATG genes in C. nobilis, laying a solid foundation for dissecting the mechanisms of environmental adaptation and immune defense in this scallop, and providing a valuable reference for autophagy-related research in other bivalves.

Zeyang Zheng, Ziru Huang, Shitong Liu et al. · 0 citations
Aug 2026

Integrated transcriptome and metabolome analysis reveals the regulatory mechanism of postharvest sweetness changes in kiwiberry.

BACKGROUND Kiwiberry is a climacteric fruit known for its unique flavor and rich nutritional profile. Fruit sweetness increases gradually during postharvest storage; however, the molecular mechanisms underlying this process remain unclear. RESULTS In this study, targeted metabolomic analysis identified 24 carbohydrate metabolites in kiwiberry. Notably, glucose, sucrose, fructose, and inositol exhibited relatively high abundance and displayed a progressive upward trend during storage. Transcriptomic profiling screened 94 genes encoding 14 key enzymes within the 'Starch and sucrose metabolism' pathway. Weighted gene co-expression network analysis identified 9 transcription factors associated with increased postharvest sweetness. Among them, AaDof was identified as a key transcription factor, showing regulatory interactions with 16 downstream genes involved in carbohydrate metabolism. CONCLUSION By integrating transcriptomic and metabolomic data, this study elucidates the metabolic processes and molecular mechanisms governing postharvest sweetness development in kiwiberry. These findings provide a theoretical foundation for breeding high-quality cultivars with enhanced sweetness. © 2026 Society of Chemical Industry.

Zhao Liu, Jianyu Song, Yuying Li et al. · 0 citations