State Key Laboratory for Managing Biotic and Chemical Threats to the Quality and Safety of Agro-Products, Key Laboratory of Biotechnology in Plant Protection of MARA and Zhejiang Province, Institute of Plant Virology, Ningbo University, Ningbo 315211, China.
Plant Physiol. 2024 Oct 1;196(2):1502-1517. doi: 10.1093/plphys/kiae350.
Emerging evidence indicates that fatty acid (FA) metabolic pathways regulate host immunity to vertebrate viruses. However, information on FA signaling in plant virus infection remains elusive. In this study, we demonstrate the importance of fatty acid desaturase (FAD), an enzyme that catalyzes the rate-limiting step in the conversion of saturated FAs into unsaturated FAs, during infection by a plant RNA virus. We previously found that the rare Kua-ubiquitin-conjugating enzyme (Kua-UEV1) fusion protein FAD4 from Nicotiana benthamiana (NbFAD4) was downregulated upon turnip mosaic virus (TuMV) infection. We now demonstrate that NbFAD4 is unstable and is degraded as TuMV infection progresses. NbFAD4 is required for TuMV replication, as it interacts with TuMV replication protein 6K2 and colocalizes with viral replication complexes. Moreover, NbFAD4 overexpression dampened the accumulation of immunity-related phytohormones and FA metabolites, and its catalytic activity appears to be crucial for TuMV infection. Finally, a yeast 2-hybrid library screen identified the vacuolar H+-ATPase component ATP6V0C as involved in NbFAD4 degradation and further suppression of TuMV infection. This study reveals the intricate role of FAD4 in plant virus infection, and sheds light on a new mechanism by which a V-ATPase is involved in plant antiviral defense.
新出现的证据表明,脂肪酸(FA)代谢途径调节宿主对脊椎动物病毒的免疫。然而,关于植物病毒感染中 FA 信号的信息仍然难以捉摸。在这项研究中,我们证明了脂肪酸去饱和酶(FAD)的重要性,FAD 是一种酶,它催化饱和 FA 转化为不饱和 FA 的限速步骤,在植物 RNA 病毒感染期间。我们之前发现,来自 Nicotiana benthamiana 的罕见 Kua-泛素连接酶(Kua-UEV1)融合蛋白 FAD4(NbFAD4)在芜菁花叶病毒(TuMV)感染后下调。我们现在证明 NbFAD4 不稳定,并且随着 TuMV 感染的进展而降解。NbFAD4 是 TuMV 复制所必需的,因为它与 TuMV 复制蛋白 6K2 相互作用并与病毒复制复合物共定位。此外,NbFAD4 的过表达抑制了与免疫相关的植物激素和 FA 代谢物的积累,并且其催化活性似乎对 TuMV 感染至关重要。最后,酵母 2 杂交文库筛选鉴定了液泡 H+-ATPase 成分 ATP6V0C 参与 NbFAD4 降解和进一步抑制 TuMV 感染。这项研究揭示了 FAD4 在植物病毒感染中的复杂作用,并阐明了 V-ATPase 参与植物抗病毒防御的新机制。