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褪黑素通过靶向一种保守的病原体蛋白激酶发挥广谱抗真菌作用。

Melatonin functions as a broad-spectrum antifungal by targeting a conserved pathogen protein kinase.

作者信息

Li Renjian, Bi Ruiqing, Cai Huanyu, Zhao Juan, Sun Peng, Xu Weilong, Zhou Yaru, Yang Wei, Zheng Lu, Chen Xiao-Lin, Wang Guanghui, Wang Dongli, Liu Junfeng, Teng Huailong, Li Guotian

机构信息

State Key Laboratory of Agricultural Microbiology, Hubei Hongshan Laboratory, The Center of Crop Nanobiotechnology, The Provincial Key Laboratory of Plant Pathology of Hubei Province, College of Plant Science & Technology, Huazhong Agricultural University, Wuhan, China.

College of Science, Huazhong Agricultural University, Wuhan, China.

出版信息

J Pineal Res. 2023 Jan;74(1):e12839. doi: 10.1111/jpi.12839. Epub 2022 Nov 9.

Abstract

Melatonin is a low-cost natural small indole molecule with versatile biological functions. However, melatonin's fungicidal potential has not been fully exploited, and the mechanism remains elusive. Here, we report that melatonin broadly inhibited 13 plant pathogens. In the rice blast fungal pathogen Magnaporthe oryzae, melatonin inhibited fungal growth, formation of infection-specific structures named appressoria, and plant infection, reducing disease severity. Melatonin entered fungal cells efficiently and colocalized with the critical mitogen-activated protein kinase named Mps1, suppressing phosphorylation of Mps1. Melatonin's affinity for Mps1 via two hydrogen bonds was demonstrated using surface plasmon resonance and chemical modifications. To improve melatonin's efficiency, we obtained 20 melatonin derivatives. Tert-butyloxycarbonyl melatonin showed a 25-fold increase in fungicidal activities, demonstrating the feasibility of chemical modifications in melatonin modification. Our study demonstrated the broad-spectrum fungicidal effect of melatonin by suppressing Mps1 as one of the targets. Through further systematic modifications, developing an eco-friendly melatonin derivative of commercial values for agricultural applications appears promising.

摘要

褪黑素是一种具有多种生物学功能的低成本天然小分子吲哚。然而,褪黑素的杀菌潜力尚未得到充分开发,其作用机制仍不清楚。在此,我们报道褪黑素广泛抑制13种植物病原体。在稻瘟病菌病原体稻瘟病菌中,褪黑素抑制真菌生长、名为附着胞的感染特异性结构的形成以及植物感染,降低病害严重程度。褪黑素能有效进入真菌细胞,并与关键的丝裂原活化蛋白激酶Mps1共定位,抑制Mps1的磷酸化。利用表面等离子体共振和化学修饰证明了褪黑素通过两个氢键与Mps1的亲和力。为了提高褪黑素的效率,我们获得了20种褪黑素衍生物。叔丁氧羰基褪黑素的杀菌活性提高了25倍,证明了在褪黑素修饰中进行化学修饰的可行性。我们的研究通过抑制作为靶点之一的Mps1证明了褪黑素的广谱杀菌作用。通过进一步的系统修饰,开发一种具有商业价值的环保型褪黑素衍生物用于农业应用似乎很有前景。

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