Lamping E, Kohlwein S D, Henry S A, Paltauf F
Institut für Biochemie und Lebensmittelchemie, Technische Universität Graz, Austria.
J Bacteriol. 1991 Oct;173(20):6432-7. doi: 10.1128/jb.173.20.6432-6437.1991.
Regulation of the activity of the mitochondrial enzyme phosphatidylserine decarboxylase (PSD) was measured in vitro by using membrane preparations from wild-type and mutant strains of Saccharomyces cerevisiae. PSD specific activity was not affected by carbon source, and on all carbon sources, the highest specific activity was observed in cells entering the stationary phase of growth. However, PSD activity was found to be regulated in response to soluble precursors of phospholipid biosynthesis. PSD specific activity was reduced to about 63% of the level observed in unsupplemented wild-type cells when the cells were grown in the presence of 75 microM inositol. The presence of 1 mM choline alone had no repressing effect, but the presence of 1 mM choline and 75 microM inositol together led to further repression to a level of about 28% of the derepressed activity. Regulatory mutations known to affect regulation or expression of genes encoding phospholipid-synthesizing enzymes also affected PSD specific activity. opi1 mutants, which are constitutive for a number of phospholipid-biosynthetic enzymes, were found to have high, constitutive levels of PSD. Likewise, in ino2 or ino4 regulatory mutants, PSD activity was found to be at the fully repressed level regardless of growth condition. Regulation of PSD activity was also affected in several structural-gene mutants under conditions of impaired phosphatidylcholine biosynthesis. Together, these data strongly suggest that PSD expression is controlled by the mechanism of general control of phospholipid biosynthesis that regulates many enzymes of phospholipid biosynthesis.
利用酿酒酵母野生型和突变株的膜制剂,在体外测定了线粒体酶磷脂酰丝氨酸脱羧酶(PSD)的活性调节。PSD的比活性不受碳源影响,在所有碳源上,进入生长稳定期的细胞中观察到最高比活性。然而,发现PSD活性受磷脂生物合成可溶性前体的调节。当细胞在75μM肌醇存在下生长时,PSD比活性降低至未添加野生型细胞中观察到水平的约63%。单独存在1 mM胆碱没有抑制作用,但1 mM胆碱和75μM肌醇共同存在会导致进一步抑制,降至去抑制活性水平的约28%。已知影响磷脂合成酶编码基因调节或表达的调节突变也影响PSD比活性。opi1突变体对多种磷脂生物合成酶呈组成型,发现其PSD水平较高且呈组成型。同样,在ino2或ino4调节突变体中,无论生长条件如何,PSD活性都处于完全抑制水平。在磷脂酰胆碱生物合成受损的条件下,几种结构基因突变体中PSD活性的调节也受到影响。总之,这些数据强烈表明,PSD的表达受磷脂生物合成一般控制机制的调控,该机制调节许多磷脂生物合成酶。