Loke P, Sim T S
Department of Microbiology, Faculty of Medicine, National University of Singapore, Japan.
J Biochem. 2000 Apr;127(4):585-9. doi: 10.1093/oxfordjournals.jbchem.a022644.
Isopenicillin N synthase (IPNS) is a key enzyme responsible for the catalytic conversion of delta-(L-alpha-aminoadipoyl)-L-cysteinyl-D-valine (ACV) to isopenicillin N in the beta-lactam antibiotic biosynthetic pathway. The Aspergillus nidulans IPNS crystal structure implicated amino acid residues tyrosine-189, arginine-279, and serine-281 in the substrate-binding of the valine carboxylate portion of ACV via hydrogen bonds. In previous reports, we provided mutational evidence for the critical involvement of the corresponding arginine-281 and serine-283, which constitute a conserved R-X-S motif, for the catalysis of Cephalosporium acremonium IPNS (cIPNS). In this study, we report the site-directed mutagenesis of the corresponding tyrosine-191 in cIPNS to four amino acids from different amino acid groups, namely, phenylalanine, serine, histidine, and aspartate. The mutants Y191F, Y191H, and Y191R respectively yielded specific activities at levels of 3, 8.6, and 18.8% relative to the wild-type when enzyme bioassays were performed using purified protein fractions. These results were surprising, as previous mutational analyses involving arginine-281 and serine-283 resulted in non-measurable specific activities, thus suggesting that tyrosine-191 is important but not critical for the activity of cIPNS due to its involvement in ACV binding. Hence, it is likely that tyrosine-191 is the least critical of the three residues involved in binding the ACV valine carboxylate moiety.
异青霉素N合酶(IPNS)是β-内酰胺抗生素生物合成途径中负责将δ-(L-α-氨基己二酰基)-L-半胱氨酰-D-缬氨酸(ACV)催化转化为异青霉素N的关键酶。构巢曲霉IPNS晶体结构表明,氨基酸残基酪氨酸-189、精氨酸-279和丝氨酸-281通过氢键参与ACV缬氨酸羧酸盐部分的底物结合。在之前的报道中,我们提供了突变证据,证明构成保守R-X-S基序的相应精氨酸-281和丝氨酸-283对顶头孢霉IPNS(cIPNS)的催化作用至关重要。在本研究中,我们报道了将cIPNS中相应的酪氨酸-191定点突变为来自不同氨基酸组的四个氨基酸,即苯丙氨酸、丝氨酸、组氨酸和天冬氨酸。当使用纯化的蛋白质组分进行酶活性测定时,突变体Y191F、Y191H和Y191R的比活性分别为野生型的3%、8.6%和18.8%。这些结果令人惊讶,因为之前涉及精氨酸-281和丝氨酸-283的突变分析导致比活性无法测量,因此表明酪氨酸-191由于参与ACV结合,对cIPNS的活性很重要但并非至关重要。因此,酪氨酸-191可能是参与结合ACV缬氨酸羧酸盐部分的三个残基中最不重要的。