Dulermo Rémi, Gamboa-Meléndez Heber, Ledesma-Amaro Rodrigo, Thevenieau France, Nicaud Jean-Marc
Micalis Institute, INRA, AgroParisTech, Université Paris-Saclay, 78350, Jouy-en-Josas, France.
Micalis Institute, INRA, AgroParisTech, Université Paris-Saclay, 78350, Jouy-en-Josas, France.
Biochim Biophys Acta. 2016 Jul;1861(7):555-65. doi: 10.1016/j.bbalip.2016.04.002. Epub 2016 Apr 9.
In yeast, β-oxidation of fatty acids (FAs) essentially takes place in peroxisomes, and FA activation must precede FA oxidation. In Saccharomyces cerevisiae, a single fatty-acyl–CoA-synthetase, ScFaa2p, mediates peroxisomal FA activation. We have previously shown that this reaction also exists in the oleaginous yeast Yarrowia lipolytica; however, the protein involved in this process remains unknown. Here, we found that proteins, named Aal proteins (Acyl/Aryl-CoA-ligases), resembling the 4-coumarate–CoA-ligase-like enzymes found in plants are involved in peroxisomal FA activation in Y. lipolytica; Y. lipolytica has 10 AAL genes, eight of which are upregulated by oleate. All the Aal proteins contain a PTS1-type peroxisomal targeting sequence (A/SKL), suggesting a peroxisomal localization. The function of the Aal proteins was analyzed using the faa1Δant1Δ mutant strain, which demonstrates neither cytoplasmic FA activation (direct result of FAA1 deletion) nor peroxisomal FA activation (indirect result of ANT1 deletion, a gene coding an ATP transporter). This strain is thus highly sensitive to external FA levels and unable to store external FAs in lipid bodies (LBs). Whereas the overexpression of (cytoplasmic) AAL1ΔPTS1 was able to partially complement the growth defect observed in the faa1Δant1Δ mutant on short-, medium- and long-chain FA media, the presence of Aal2p to Aal10p only allowed growth on the short-chain FA medium. Additionally, partial LB formation was observed in the oleate medium for strains overexpressing Aal1ΔPTS1p, Aal4ΔPTS1p, Aal7ΔPTS1p, and Aal8ΔPTS1p. Finally, an analysis of the FA content of cells grown in the oleate medium suggested that Aal4p and Aal6p present substrate specificity for C16:1 and/or C18:0.
在酵母中,脂肪酸(FAs)的β-氧化主要发生在过氧化物酶体中,并且脂肪酸活化必须先于脂肪酸氧化。在酿酒酵母中,单一的脂肪酰基辅酶A合成酶ScFaa2p介导过氧化物酶体脂肪酸活化。我们之前已经表明,该反应也存在于产油酵母解脂耶氏酵母中;然而,参与这一过程的蛋白质仍然未知。在这里,我们发现了名为Aal蛋白(酰基/芳基辅酶A连接酶)的蛋白质,它们类似于植物中发现的4-香豆酸辅酶A连接酶样酶,参与解脂耶氏酵母过氧化物酶体脂肪酸活化;解脂耶氏酵母有10个AAL基因,其中8个在油酸作用下上调。所有Aal蛋白都含有PTS1型过氧化物酶体靶向序列(A/SKL),表明其定位于过氧化物酶体。使用faa1Δant1Δ突变株分析了Aal蛋白的功能,该突变株既不表现出细胞质脂肪酸活化(FAA1缺失直接导致),也不表现出过氧化物酶体脂肪酸活化(ANT1缺失的间接结果,ANT1是一个编码ATP转运蛋白的基因)。因此,该菌株对外部脂肪酸水平高度敏感,无法将外部脂肪酸储存在脂质体(LBs)中。虽然(细胞质)AAL1ΔPTS1的过表达能够部分弥补faa1Δant1Δ突变体在短链、中链和长链脂肪酸培养基上观察到的生长缺陷,但Aal2p至Aal10p的存在仅允许在短链脂肪酸培养基上生长。此外,在油酸培养基中,过表达Aal1ΔPTS1p、Aal4ΔPTS1p、Aal7ΔPTS1p和Aal8ΔPTS1p的菌株观察到部分脂质体形成。最后,对在油酸培养基中生长的细胞的脂肪酸含量分析表明,Aal4p和Aal6p对C16:1和/或C18:0具有底物特异性。