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探索链格孢菌的多胺代谢以寻找新的物质来控制真菌感染。

Exploring polyamine metabolism of Alternaria alternata to target new substances to control the fungal infection.

机构信息

Applied Mycology Unit, Food Technology Department, University of Lleida, UTPV-XaRTA, Agrotecnio Center, Lleida, Spain.

出版信息

Food Microbiol. 2017 Aug;65:193-204. doi: 10.1016/j.fm.2017.02.001. Epub 2017 Feb 3.

Abstract

Polyamines are essential for all living organisms as they are involved in several vital cell functions. The biosynthetic pathway of polyamines and its regulation is well established and, in this sense, the ornithine descarboxylase (ODC) enzyme acts as one of the controlling factors of the entire pathway. In this work we assessed the inhibition of the ODC with D, l-α-difluoromethylornithine (DFMO) on Alternaria alternata and we observed that fungal growth and mycotoxin production were reduced. This inhibition was not completely restored by the addition of exogenous putrescine. Actually, increasing concentrations of putrescine on the growth media negatively affected mycotoxin production, which was corroborated by the downregulation of pksJ and altR, both genes involved in mycotoxin biosynthesis. We also studied the polyamine metabolism of A. alternata with the goal of finding new targets that compromise its growth and its mycotoxin production capacity. In this sense, we tested two different polyamine analogs, AMXT-2455 and AMXT-3016, and we observed that they partially controlled A. alternata's viability in vitro and in vivo using tomato plants. Finding strategies to design new fungicide substances is becoming a matter of interest as resistance problems are emerging.

摘要

多胺是所有生物必需的,因为它们参与了几种重要的细胞功能。多胺的生物合成途径及其调控已经得到很好的确定,在这个意义上,鸟氨酸脱羧酶(ODC)酶是整个途径的控制因素之一。在这项工作中,我们评估了 D,l-α-二氟甲基鸟氨酸(DFMO)对链格孢菌的 ODC 抑制作用,我们观察到真菌生长和真菌毒素产生减少。这种抑制作用不能通过添加外源性腐胺完全恢复。实际上,在生长培养基中添加腐胺浓度增加会对真菌毒素产生产生负面影响,这与参与真菌毒素生物合成的 pksJ 和 altR 基因下调一致。我们还研究了链格孢菌的多胺代谢,以期找到新的靶标,从而损害其生长和真菌毒素产生能力。在这方面,我们测试了两种不同的多胺类似物,AMXT-2455 和 AMXT-3016,并观察到它们在体外和体内使用番茄植物部分控制了链格孢菌的存活。寻找设计新杀菌剂物质的策略变得越来越重要,因为抗药性问题正在出现。

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