Son Hokyoung, Min Kyunghun, Lee Jungkwan, Choi Gyung Ja, Kim Jin-Cheol, Lee Yin-Won
Department of Agricultural Biotechnology and Center for Fungal Pathogenesis, Seoul National University, Seoul, Republic of Korea.
Eukaryot Cell. 2012 Sep;11(9):1143-53. doi: 10.1128/EC.00104-12. Epub 2012 Jul 13.
Fungi have evolved efficient metabolic mechanisms for the exact temporal (developmental stages) and spatial (organelles) production of acetyl coenzyme A (acetyl-CoA). We previously demonstrated mechanistic roles of several acetyl-CoA synthetic enzymes, namely, ATP citrate lyase and acetyl-CoA synthetases (ACSs), in the plant-pathogenic fungus Gibberella zeae. In this study, we characterized two carnitine acetyltransferases (CATs; CAT1 and CAT2) to obtain a better understanding of the metabolic processes occurring in G. zeae. We found that CAT1 functioned as an alternative source of acetyl-CoA required for lipid accumulation in an ACS1 deletion mutant. Moreover, deletion of CAT1 and/or CAT2 resulted in various defects, including changes to vegetative growth, asexual/sexual development, trichothecene production, and virulence. Although CAT1 is associated primarily with peroxisomal CAT function, mislocalization experiments showed that the role of CAT1 in acetyl-CoA transport between the mitochondria and cytosol is important for sexual and asexual development in G. zeae. Taking these data together, we concluded that G. zeae CATs are responsible for facilitating the exchange of acetyl-CoA across intracellular membranes, particularly between the mitochondria and the cytosol, during various developmental stages.
真菌已经进化出高效的代谢机制,用于在精确的时间(发育阶段)和空间(细胞器)产生乙酰辅酶A(acetyl-CoA)。我们之前证明了几种乙酰辅酶A合成酶,即ATP柠檬酸裂解酶和乙酰辅酶A合成酶(ACSs),在植物病原真菌玉米赤霉中的作用机制。在本研究中,我们对两种肉碱乙酰转移酶(CATs;CAT1和CAT2)进行了表征,以更好地了解玉米赤霉中发生的代谢过程。我们发现,在ACS1缺失突变体中,CAT1作为脂质积累所需的乙酰辅酶A的替代来源发挥作用。此外,CAT1和/或CAT2的缺失导致了各种缺陷,包括营养生长、无性/有性发育、单端孢霉烯产生和毒力的变化。虽然CAT1主要与过氧化物酶体CAT功能相关,但定位错误实验表明,CAT1在线粒体和细胞质之间的乙酰辅酶A转运中的作用对玉米赤霉的有性和无性发育很重要。综合这些数据,我们得出结论,玉米赤霉CATs负责在不同发育阶段促进乙酰辅酶A跨细胞内膜的交换,特别是在线粒体和细胞质之间。