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解析桃果实采后生理过程中影响热和冷响应的代谢途径。

Deciphering the metabolic pathways influencing heat and cold responses during post-harvest physiology of peach fruit.

机构信息

Centro de Estudios Fotosintéticos y Bioquímicos (CEFOBI), Facultad de Ciencias Bioquímicas y Farmacéuticas, Universidad Nacional de Rosario, Rosario, 2000, Argentina.

出版信息

Plant Cell Environ. 2014 Mar;37(3):601-16. doi: 10.1111/pce.12181. Epub 2013 Sep 8.

Abstract

Peaches are highly perishable and deteriorate quickly at ambient temperature. Cold storage is commonly used to prevent fruit decay; however, it affects fruit quality causing physiological disorders collectively termed 'chilling injury' (CI). To prevent or ameliorate CI, heat treatment is often applied prior to cold storage. In the present work, metabolic profiling was performed to determine the metabolic dynamics associated with the induction of acquired CI tolerance in response to heat shock. 'Dixiland' peach fruits exposed to 39 °C, cold stored, or after a combined treatment of heat and cold, were compared with fruits ripening at 20 °C. Dramatic changes in the levels of compatible solutes such as galactinol and raffinose were observed, while amino acid precursors of the phenylpropanoid pathway were also modified due to the stress treatments, as was the polyamine putrescine. The observed responses towards temperature stress in peaches are composed of both common and specific response mechanisms to heat and cold, but also of more general adaptive responses that confer strategic advantages in adverse conditions such as biotic stresses. The identification of such key metabolites, which prime the fruit to cope with different stress situations, will likely greatly accelerate the design and the improvement of plant breeding programs.

摘要

桃子极易腐烂,在环境温度下会迅速变质。冷藏通常用于防止水果腐烂;然而,它会影响水果质量,导致统称为“冷害”(CI)的生理障碍。为了防止或减轻 CI,冷藏前通常会进行热处理。在本工作中,进行代谢组学分析以确定与热休克诱导获得的 CI 耐受性相关的代谢动态。与在 20°C 下成熟的果实相比,将暴露于 39°C 的“Dixiland”桃果实、冷藏或热冷联合处理后的果实进行比较。观察到诸如半乳糖醇和棉子糖等相容性溶质的水平发生了剧烈变化,而苯丙烷途径的氨基酸前体由于应激处理也发生了变化,多胺腐胺也是如此。桃子对温度胁迫的观察反应既包括对热和冷的共同和特定反应机制,也包括更普遍的适应性反应,这些反应在生物胁迫等不利条件下赋予了战略优势。鉴定这些关键代谢物,使水果能够应对不同的应激情况,可能会极大地加速植物育种计划的设计和改进。

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