转录组分析揭示了芒果果肉中谷胱甘肽和抗坏血酸含量在不同生长发育阶段的动态变化

Hassam Tahir, Muhammad Sajjad, Minjie Qian, Muhammad Zeeshan Ul Haq, Ashar Tahir, Tiantian Chen, Shaopu Shi, Muhammad Aamir Farooq, Wei Ling, Kaibing Zhou
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引用次数: 0

摘要

芒果(Mangifera indica)是一种极具价值的园艺作物,以其品质和产量著称。本研究通过转录组分析,研究了连续两年(2021-2022 年和 2022-2023 年)芒果果肉在不同生长发育阶段的理化性质、谷胱甘肽和抗坏血酸代谢途径的动态变化。总体而言,结果表明,在不同的成熟期,果肉中的总可溶性固形物、相对电导率、谷胱甘肽和酶的含量增加,而可滴定酸度、丙二醛、活性氧和抗坏血酸的含量减少。此外,转录组分析确定了谷胱甘肽和抗坏血酸代谢途径中关键的差异表达基因,并通过 qRT-PCR 进行了验证。在不同的比较中,花后 30 天与 60 天、30 天与 90 天、60 天与 90 天的 DEGs 分别为 1776、2513 和 828 个。其中,7 个 DEGs 主要富集在相关通路中,包括抗坏血酸过氧化物酶、抗坏血酸氧化酶、谷胱甘肽过氧化物酶、γ-谷氨酰转移酶、谷胱甘肽转移酶和葡萄糖-6-磷酸脱氢酶。这些基因的上调表明,谷胱甘肽和 AsA 能很好地清除活性氧,维持植物的正常功能。这项研究揭示了芒果果肉中谷胱甘肽和抗坏血酸动态变化的分子机制,为研究果实生长发育过程中抗氧化和代谢途径的调控提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transcriptomic Analysis Reveals Dynamic Changes in Glutathione and Ascorbic Acid Content in Mango Pulp across Growth and Development Stages
Mango (Mangifera indica) is a highly valuable horticultural crop known for its quality and productivity. This study investigates the dynamic changes in physicochemical properties and glutathione and ascorbic acid metabolic pathways in mango pulp across various growth and development stages over two consecutive years (2021–2022 and 2022–2023) by transcriptomic analysis. Overall, the results demonstrate that during different ripening periods, the pulp shows increased levels of total soluble solids, relative conductivity, glutathione, and enzymes, while titratable acidity, malondialdehyde, reactive oxygen species, and ascorbic acid contents decreased. Moreover, transcriptomic analysis identified key differentially expressed genes from the glutathione and ascorbic acid metabolic pathways and validated them with qRT-PCR. In different comparisons, a total of 1776, 2513, and 828 DEGs were identified in 30 vs. 60, 30 vs. 90, and 60 vs. 90 days after flowering, respectively. Among them, seven DEGs were primarily enriched in relevant pathways, which included ascorbate peroxidase, ascorbate oxidase, glutathione peroxidase, gamma-glutamyl transferase, glutathione transferases, and glucose-6-phosphate dehydrogenase. The upregulation of these genes indicates that glutathione and AsA respond well to scavenging reactive oxygen species and maintain normal functioning in plants. This research sheds light on the molecular mechanisms of glutathione and ascorbic acid dynamic changes in mango pulp, providing valuable insights into the regulation of antioxidant and metabolic pathways during fruit growth and development.
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