Ripened oriental melon () with orange-colored flesh is rich in β-carotene. Lycopene β-cyclase (LCYB) is the synthetic enzyme that directly controls the massive accumulation of β-carotene. However, the regulatory mechanism underlying the -mediated β-carotene accumulation in oriental melon is fairly unknown. Here, we screened and identified a transcription factor, CmNAC34, by combining bioinformatics analysis and yeast one-hybrid screen with promoter. CmNAC34 was located in the nucleus and acted as a transcriptional activator. The expression profile of was consistent with that of during the fruit ripening. Additionally, the transient overexpression of CmNAC34 in oriental melon fruit promoted the expression of and enhanced β-carotene concentration, while transient silence of CmNAC34 in fruit was an opposite trend, which indicated CmNAC34 could modulate -mediated β-carotene biosynthesis in oriental melon. Finally, the yeast one-hybrid (Y1H), electrophoretic mobility shift assay (EMSA), β-glucuronidase (GUS) analysis assay, and luciferase reporter (LUC) assay indicated that CmNAC34 could bind to the promoter of and positively regulated the transcription level. These findings suggested that CmNAC34 acted as an activator to regulate β-carotene accumulation by directly binding the promoter of , which provides new insight into the regulatory mechanism of carotenoid metabolism during the development and ripening of oriental melon.
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http://dx.doi.org/10.3390/ijms23179805 | DOI Listing |
Genes Genomics
January 2025
Plant Molecular Breeding and Bioinformatics Laboratory, Department of Genetics and Plant Breeding, Bangladesh Agricultural University, Mymensingh, 2202, Bangladesh.
Background: TCP proteins are plant-specific transcription factors that play essential roles in various developmental processes, including leaf morphogenesis and senescence, flowering, lateral branching, hormone crosstalk, and stress responses. However, a comprehensive analysis of genome-wide TCP genes and their expression patterns in melon is yet to be done.
Objective: The present study aims to identify and analyze the TCP genes in the melon genome and understand their putative functions.
Nat Prod Res
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Laboratory of Biomedical Research, Institute of General and Experimental Biology, Siberian Division, Russian Academy of Science, Ulan-Ude, Russia.
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Department of Food Science & Technology, Faculty of Science, National University of Singapore, Singapore, Singapore.
Fresh-cut cantaloupes are highly susceptible to contamination by foodborne pathogens and spoilage-causing microorganisms. This study evaluated the efficacy of a probiotic coating produced by fermenting Lactiplantibacillus plantarum 299 V in pomelo peel extract in combination with vacuum packaging in controlling the microbial loads of fresh-cut cantaloupe during storage. As temperature abuse is common in transportation and at retail sale of such products in many countries, we evaluated their efficacy at different temperatures.
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Key Laboratory of Herbage & Endemic Crop Biology, Ministry of Education, School of Life Sciences, Inner Mongolia University, Hohhot, 010070, China. Electronic address:
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View Article and Find Full Text PDFPhotosynth Res
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Horticulture Department of Agriculture Faculty, Selcuk University, Konya, Turkey.
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