首页> 美国卫生研究院文献>Journal of Bacteriology >Glucose represses formation of delta-(L-alpha-aminoadipyl)-L-cysteinyl-D-valine and isopenicillin N synthase but not penicillin acyltransferase in Penicillium chrysogenum.
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Glucose represses formation of delta-(L-alpha-aminoadipyl)-L-cysteinyl-D-valine and isopenicillin N synthase but not penicillin acyltransferase in Penicillium chrysogenum.

机译:葡萄糖可抑制产黄青霉中δ-(L-α-氨基己二酰基)-L-半胱氨酰-D-缬氨酸和异青霉素N合酶的形成而不抑制青霉素酰基转移酶的形成。

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摘要

The content of alpha-aminoadipyl-cysteinyl-valine, the first intermediate of the penicillin biosynthetic pathway, decreased when Penicillium chrysogenum was grown in a high concentration of glucose. Glucose repressed the incorporation of [14C]valine into alpha-aminoadipyl-cysteinyl-[14C]valine in vivo. The pool of alpha-aminoadipic acid increased sevenfold in control (lactose-grown) penicillin-producing cultures, coinciding with the phase of rapid penicillin biosynthesis, but this increase was very small in glucose-grown cultures. Glucose stimulated homocitrate synthase and saccharopine dehydrogenase activities in vivo and increased the incorporation of lysine into proteins. These results suggest that glucose stimulates the flux through the lysine biosynthetic pathway, thus preventing alpha-aminoadipic acid accumulation. The repression of alpha-aminoadipyl-cysteinyl-valine synthesis by glucose was not reversed by the addition of alpha-aminoadipic acid, cysteine, or valine. Glucose also repressed isopenicillin N synthase, which converts alpha-aminoadipyl-cysteinyl-valine into isopenicillin N, but did not affect penicillin acyltransferase, the last enzyme of the penicillin biosynthetic pathway.
机译:当青霉青霉在高浓度的葡萄糖中生长时,青霉素生物合成途径的第一个中间产物α-氨基己二酰基-半胱氨酸-缬氨酸的含量降低。葡萄糖在体内抑制了[14C]缬氨酸掺入α-氨基己二酰基-半胱氨酸-[14C]缬氨酸中。在生产青霉素的对照(乳糖生长)培养物中,α-氨基己二酸池增加了七倍,这与青霉素快速生物合成的阶段相吻合,但是在葡萄糖生长的培养物中,这种增加很小。葡萄糖在体内刺激了纯柠檬酸合酶和糖精脱氢酶的活性,并增加了赖氨酸向蛋白质中的掺入。这些结果表明葡萄糖刺激了通过赖氨酸生物合成途径的通量,从而防止了α-氨基己二酸的积累。葡萄糖对α-氨基己二酰基-半胱氨酸-缬氨酸合成的抑制作用并未因添加α-氨基己二酸,半胱氨酸或缬氨酸而逆转。葡萄糖还抑制异青霉素N合酶,后者可将α-氨基己二酰基-半胱氨酸-缬氨酸转化为异青霉素N,但不影响青霉素生物合成途径的最后一种酶青霉素酰基转移酶。

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