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Artificial metalloprotease with active site comprising aldehyde group and Cu(II)cyclen complex

机译:具有含醛基和Cu(II)周期素配合物的活性位点的人工金属蛋白酶

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摘要

To design artificial proteases that cleave peptide backbones of a wide range of proteins at selected sites, artificial active sites comprising the Cu(II) complex of cyclen (Cu(II)Cyc) and aldehyde group were synthesized on a cross-linked polystyrene. The aldehyde group was employed as the binding site in view of its ability of reversible formation of imine bonds with E-amino groups of Lys residues exposed on the surface of proteins and Cu(II)Cyc as the catalytic group for peptide hydrolysis. The two polymeric artificial metalloproteases synthesized in the present study cleaved all of the protein substrates examined (myoglobin, gamma-globulin, bovine serum albumin, human serum albumin, lysozyme, and ovalbumin), manifesting saturation kinetic behavior. At 50 degrees C and pH 9.0 or 9.5, K-m was (1.3-22) x 10(-4) M, comparable to those of natural proteases, and k(cat) was (6.0-25) x 10(-4) s(-1), corresponding to half-lives of 4.6-19 min. Intermediacy of the imine complexes formed between the aldehyde group of the catalyst and the epsilon-amino, groups of Lys residues of the substrates was confirmed by the trapping experiment with NaB(OAc)(3)H. MALDI-TOF MS of the proteolytic reaction mixtures revealed formation of various cleavage products. Structures of some of the cleavage products were determined by using carboxypeptidase A and trypsin. Among various cleavage sites thus identified, Gln(91)-Ser(92) and Ala(94)-Thr(95) were the major initial cleavage sites in the degradation of myoglobin by the two catalysts. The selective cleavage of Gln(91)-Ser(92) and Ala(94)-Thr(95) was attributed to general acid assistance in peptide cleavage by Tyr(146) located in proximity to the two peptide bonds. Broad substrate selectivity, high cleavage-site selectivity, and high proteolytic rate are achieved, therefore, by positioning the aldehyde group in proximity to Cu(II)Cyc attached to a crosslinked polystyrene.
机译:为了设计可在选定位点切割多种蛋白质的肽主链的人工蛋白酶,在交联的聚苯乙烯上合成了包含cycln(Cu(II)Cyc)和乙醛基的Cu(II)配合物的人工活性位点。考虑到醛基具有可逆形成亚胺键的能力,该醛基可与暴露在蛋白质表面的Lys残基的E-氨基形成可逆的亚胺键,而Cu(II)Cyc作为肽水解的催化基团。本研究中合成的两种聚合人工金属蛋白酶裂解了所有检测的蛋白质底物(肌红蛋白,γ-球蛋白,牛血清白蛋白,人血清白蛋白,溶菌酶和卵清蛋白),表现出饱和动力学行为。在50摄氏度和pH值为9.0或9.5时,Km为(1.3-22)x 10(-4)M,与天然蛋白酶相当,k(cat)为(6.0-25)x 10(-4)s (-1),对应于4.6-19分钟的半衰期。通过NaB(OAc)(3)H的俘获实验证实了催化剂的醛基和ε-氨基之间形成的亚胺配合物的中间体,底物的Lys残基。蛋白水解反应混合物的MALDI-TOF MS显示形成各种裂解产物。通过使用羧肽酶A和胰蛋白酶来确定一些切割产物的结构。在这样鉴定的各种裂解位点中,Gln(91)-Ser(92)和Ala(94)-Thr(95)是两种催化剂降解肌红蛋白的主要初始裂解位点。 Gln(91)-Ser(92)和Ala(94)-Thr(95)的选择性切割归因于位于两个肽键附近的Tyr(146)的一般酸辅助肽切割。因此,通过将醛基置于与交联的聚苯乙烯相连的Cu(II)Cyc的附近,可实现较宽的底物选择性,高裂解位点选择性和高蛋白水解速率。

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