Kwon Hee Su, Kawaguchi Kouhei, Kikuma Takashi, Takegawa Kaoru, Kitamoto Katsuhiko, Higuchi Yujiro
Department of Bioscience and Biotechnology, Faculty of Agriculture, Kyushu University, 6-10-1 Hakozaki, Fukuoka 812-8581, Japan.
Department of Biotechnology, The University of Tokyo, 1-1-1 Bunkyo-ku, Tokyo 113-8657, Japan.
Biochem Biophys Res Commun. 2017 Nov 4;493(1):481-486. doi: 10.1016/j.bbrc.2017.08.166. Epub 2017 Sep 1.
Acyl-CoA binding protein (ACBP) plays important roles in the metabolism of lipids in eukaryotic cells. In the industrially important filamentous fungus Aspergillus oryzae, although we have previously demonstrated that the A. oryzae ACBP (AoACBP) localizes to punctate structures and exhibits long-range motility, which is dependent on autophagy-related proteins, the physiological role of AoACBP remains elusive. Here, we describe identification and characterization of another ACBP from A. oryzae; we named this ACBP as AoAcb2 and accordingly renamed AoACBP as AoAcb1. The deduced amino acid sequence of AoAcb2 lacked a signal peptide. Phylogenetic analysis classified AoAcb2 into a clade that was same as the ACBP Acb1 of the model yeast Saccharomyces cerevisiae, but was different from that of AoAcb1. In contrast to punctate localization of AoAcb1, AoAcb2 was found to be dispersedly distributed in the cytoplasm, as was previously observed for the S. cerevisiae Acb1. Since we could not generate an Aoacb2 disruptant, we created an Aoacb2 conditional mutant that exhibited less growth under Aoacb2-repressed condition, suggesting that Aoacb2 is an essential gene for growth. Moreover, we observed that A. oryzae AoAcb2, but not A. oryzae AoAcb1, was secreted under carbon-starved condition, suggesting that AoAcb2 might be secreted via the unconventional protein secretion (UPS) pathway, just like S. cerevisiae Acb1. We also demonstrated that the unconventional secretion of AoAcb2 was dependent on the t-SNARE AoSso1, but was independent of the autophagy-related protein AoAtg1, suggesting that the unconventional secretion of AoAcb2, unlike that of S. cerevisiae Acb1, via the UPS pathway, is not regulated by the autophagy machinery. Thus, the filamentous fungus A. oryzae harbors two types of ACBPs, one of which appears to be essential for growth and undergoes unconventional secretion.
酰基辅酶A结合蛋白(ACBP)在真核细胞的脂质代谢中发挥着重要作用。在具有重要工业价值的丝状真菌米曲霉中,尽管我们之前已经证明米曲霉ACBP(AoACBP)定位于点状结构并表现出长距离运动性,且这种运动性依赖于自噬相关蛋白,但AoACBP的生理作用仍然不清楚。在此,我们描述了米曲霉中另一种ACBP的鉴定和特征;我们将这种ACBP命名为AoAcb2,并相应地将AoACBP重新命名为AoAcb1。AoAcb2的推导氨基酸序列缺乏信号肽。系统发育分析将AoAcb2归类到与模式酵母酿酒酵母的ACBP Acb1相同的进化枝中,但与AoAcb1的进化枝不同。与AoAcb1的点状定位相反,发现AoAcb2分散分布在细胞质中,这与之前观察到的酿酒酵母Acb1的情况一样。由于我们无法产生Aoacb2缺失突变体,我们创建了一个Aoacb2条件突变体,该突变体在Aoacb2抑制条件下生长较慢,这表明Aoacb2是生长所必需的基因。此外,我们观察到米曲霉AoAcb2在碳饥饿条件下会分泌,而米曲霉AoAcb1则不会,这表明AoAcb2可能像酿酒酵母Acb1一样通过非常规蛋白质分泌(UPS)途径分泌。我们还证明了AoAcb2的非常规分泌依赖于t-SNARE AoSso1,但不依赖于自噬相关蛋白AoAtg1,这表明与酿酒酵母Acb1不同,AoAcb2通过UPS途径的非常规分泌不受自噬机制的调控。因此,丝状真菌米曲霉含有两种类型的ACBP,其中一种似乎对生长至关重要并经历非常规分泌。