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The Lactococcus lactis FabF Fatty Acid Synthetic Enzyme Can Functionally Replace both the FabB and FabF proteins of Escherichia coli and the FabH protein of Lactococcus lactis

机译:乳酸乳球菌FabF脂肪酸合成酶可以在功能上替代大肠杆菌的FabB和FabF蛋白以及乳酸乳球菌的FabH蛋白

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摘要

The genome of Lactococcus lactis encodes a single long chain 3-ketoacyl-acyl carrier protein synthase. This is in contrast to its close relative, Enterococcus faecalis, and to Escherichia coli, both of which have two such enzymes. In E. faecalis and E. coli one of the two long chain synthases (FabO and FabB, respectively) has a role in unsaturated fatty acid synthesis that cannot be satisfied by FabF, the other long chain synthase. Since L. lactis has only a single long chain 3-ketoacyl-acyl carrier protein synthase (annotated as FabF), it seemed likely that this enzyme must function both in unsaturated fatty acid synthesis and in elongation of short chain acyl carrier protein substrates to the C18 fatty acids found in the cellular phospholipids. We report that this is the case. Expression of L. lactis FabF can functionally replace both FabB and FabF in E. coli, although it does not restore thermal regulation of phospholipid fatty acid composition to E. coli fabF mutant strains. The lack of thermal regulation was predictable because wild type L. lactis was found not to show any significant change in fatty acid composition with growth temperature. We also report that overproduction of L. lactis FabF allows growth of an L. lactis mutant strain that lacks the FabH short chain 3-ketoacyl-acyl carrier protein synthase. The strain tested was a derivative (called the ΔfabH bypass strain) of the original fabH deletion strain that had acquired the ability to grow when supplemented with octanoate. Upon introduction of a FabF overexpression plasmid into this strain, growth proceeded normally in the absence of fatty acid supplementation. Moreover, this strain had a normal rate of fatty acid synthesis and a normal fatty acid composition. Both the ΔfabH bypass strain that overproduced FabF and the wild type incorporated much less exogenous octanoate into long chain phospholipid fatty acids than did the ΔfabH bypass strain. Incorporation of octanoate and decanoate labeled with deuterium showed that these acids were incorporated intact as the distal methyl and methylene groups of the long chain fatty acids.
机译:乳酸乳球菌的基因组编码单个长链3-酮酰基-酰基载体蛋白合酶。这与它的近亲粪肠球菌和大肠埃希氏菌相反,两者均具有两种这样的酶。在粪肠球菌和大肠杆菌中,两个长链合酶之一(分别为FabO和FabB)在不饱和脂肪酸的合成中具有另一种长链合酶FabF无法满足的作用。由于乳酸乳球菌只有一个长链3-酮酰基-酰基载体蛋白合酶(标注为FabF),因此这种酶似乎必须在不饱和脂肪酸合成和短链酰基载体蛋白底物向糖基化酶的延伸中起作用。在细胞磷脂中发现C18脂肪酸。我们报告情况就是如此。乳酸乳杆菌FabF的表达可以在大肠杆菌中功能性地替代FabB和FabF,尽管它不能恢复对大肠杆菌fabF突变株的磷脂脂肪酸组成的热调节。缺乏热调节是可以预见的,因为发现野生型乳酸乳球菌不随生长温度显示脂肪酸组成的任何显着变化。我们还报告说,乳酸乳球菌FabF的过量生产允许缺乏乳酸脱氢酶短链3-酮酰基-酰基载体蛋白合酶的乳酸乳球菌突变菌株的生长。测试的菌株是原始fabH缺失菌株的衍生物(称为ΔfabH旁路菌株),当添加辛酸酯时,该菌株已具有生长能力。将FabF过表达质粒引入该菌株后,在不添加脂肪酸的情况下生长正常进行。此外,该菌株具有正常的脂肪酸合成速率和正常的脂肪酸组成。与ΔfabH旁路菌株相比,过量生产FabF的ΔfabH旁路菌株和野生型掺入长链磷脂脂肪酸中的外源辛酸少得多。掺入氘标记的辛酸酯和癸酸酯表明,这些酸作为长链脂肪酸的远端甲基和亚甲基完整保留。

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