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首页> 外文期刊>Applied and Environmental Microbiology >Requirements of the Engineered Leader Peptide of Nisin for Inducing Modification, Export, and Cleavage
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Requirements of the Engineered Leader Peptide of Nisin for Inducing Modification, Export, and Cleavage

机译:Nisin的工程化领导肽对诱导修饰,输出和裂解的要求

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Nisin A is a pentacyclic peptide antibiotic produced by Lactococcus lactis. The leader peptide of prenisin keeps nisin inactive and has a role in inducing NisB- and NisC-catalyzed modifications of the propeptide and NisT-mediated export. The highly specific NisP cleaves off the leader peptide from fully modified and exported prenisin. We present here a detailed mutagenesis analysis of the nisin leader peptide. For alternative cleavage, we successfully introduced a putative NisP autocleavage site and sites for thrombin, enterokinase, Glu-C, and factor Xa in the C-terminal part of the leader peptide. Replacing residue F-18 with Trp or Thr strongly reduced production. On the other hand, D-19A, F-18H, F-18M, L-16D, L-16K, and L-16A enhanced production. Substitutions within and outside the FNLD box enhanced or reduced the transport efficiency. None of the above substitutions nor even an internal 6His tag from positions ?13 to ?8 had any effect on the capacity of the leader peptide to induce NisB and NisC modifications. Therefore, these data demonstrate a large mutational freedom. However, simultaneous replacement of the FNLD amino acids by four alanines strongly reduced export and even led to a complete loss of the capacity to induce modifications. Reducing the leader peptide to MSTKDFNLDLR led to 3- or 4-fold dehydration. Taken together, the FNLD box is crucial for inducing posttranslational modifications.
机译:乳链菌肽A是乳酸乳球菌产生的五环肽抗生素。乳链菌肽的前导肽使乳链菌肽保持失活,并在诱导NisB和NisC催化的前肽修饰和NisT介导的出口中发挥作用。高特异性的NisP从完全修饰和输出的prenisin上切割前导肽。我们在这里提出了乳链菌肽前导肽的详细诱变分析。对于其他裂解,我们成功地在前导肽的C末端部分成功引入了一个假定的NisP自动裂解位点和凝血酶,肠激酶,Glu-C和Xa因子位点。用Trp或Thr替代残基F-18会大大降低产量。另一方面,D-19A,F-18H,F-18M,L-16D,L-16K和L-16A提高了产量。 FNLD盒子内部和外部的替代提高或降低了运输效率。上述取代甚至从位置α13至α8的内部6His标签都没有对前导肽诱导NisB和NisC修饰的能力有任何影响。因此,这些数据证明了很大的突变自由。但是,用四个丙氨酸同时替换FNLD氨基酸会大大降低输出,甚至导致诱导修饰的能力完全丧失。将前导肽还原为MSTKDFNLDLR导致3或4倍脱水。总之,FNLD盒对于诱导翻译后修饰至关重要。

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