Department of Biotechnology, Guru Nanak Dev University, Amritsar, Punjab, 143005, India.
Department of Bioinformatics, Hans Raj Mahila Maha Vidyalaya, Jalandhar, Punjab, 144008, India.
Sci Rep. 2023 Oct 13;13(1):17433. doi: 10.1038/s41598-023-44606-5.
Penicillium species are an industrially important group of fungi. Cyclophilins are ubiquitous proteins and several members of this family exhibit peptidyl-prolyl cis-trans isomerase (PPIase) activity. We had earlier demonstrated that the salt-induced PPIase activity in a halotolerant strain of P. oxalicum was associated with enhanced expression of a cyclophilin gene, PoxCYP18. Cloning and characterization of PoxCYP18 revealed that its cDNA consists of 522 bp encoding a protein of 173 amino acid residues, with predicted molecular mass and pI values of 18.91 kDa and 8.87, respectively. The recombinant PoxCYP18 can catalyze cis-trans isomerization of peptidyl-prolyl bond with a catalytic efficiency of 1.46 × 10 M s and is inhibited specifically only by cyclosporin A, with an inhibition constant of 5.04 ± 1.13 nM. PoxCYP18 consists of two cysteine residues at positions - 45 and - 170, and loses its activity under oxidizing conditions. Substitution of these residues alone or together by site-directed mutagenesis revealed that the PPIase activity of PoxCYP18 is regulated through a redox mechanism involving the formation of disulfide linkages. Heterologous expression of PoxCYP18 conferred enhanced tolerance to salt stress in transgenic E. coli cells, implying that this protein imparts protection to cellular processes against salt-induced damage.
青霉属真菌是一类具有重要工业应用价值的真菌。亲环素是一类广泛存在的蛋白质,该家族的一些成员具有肽基脯氨酰顺反异构酶(PPIase)活性。我们之前的研究表明,耐盐性的草酸青霉菌株中的盐诱导型 PPIase 活性与亲环素基因 PoxCYP18 的表达增强有关。PoxCYP18 的克隆和鉴定表明,其 cDNA 由 522 个碱基对组成,编码 173 个氨基酸残基的蛋白质,预测分子量和等电点分别为 18.91 kDa 和 8.87。重组 PoxCYP18 可以催化肽基脯氨酰键的顺反异构化,催化效率为 1.46×10 M s,并且仅被环孢素 A 特异性抑制,抑制常数为 5.04±1.13 nM。PoxCYP18 包含两个半胱氨酸残基,分别位于-45 位和-170 位,在氧化条件下失去活性。定点突变单独或共同取代这些残基表明,PoxCYP18 的 PPIase 活性受到涉及形成二硫键的氧化还原机制的调节。在异源表达 PoxCYP18 的转 E. coli 细胞中,赋予了对盐胁迫的增强耐受性,表明该蛋白对细胞过程提供了保护,防止盐诱导的损伤。