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瑞士乳杆菌肽酶突变体在牛奶中的生长速率受损,可通过使用氨基酸补充剂来克服。

Impaired growth rates in milk of Lactobacillus helveticus peptidase mutants can be overcome by use of amino acid supplements.

作者信息

Christensen Jeffrey E, Steele James L

机构信息

Department of Bacteriology, University of Wisconsin-Madison, 53706, USA.

出版信息

J Bacteriol. 2003 Jun;185(11):3297-306. doi: 10.1128/JB.185.11.3297-3306.2003.

DOI:10.1128/JB.185.11.3297-3306.2003
PMID:12754227
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC155375/
Abstract

To evaluate the contribution of intracellular peptidases to the growth of the 14-amino-acid (aa) auxotroph Lactobacillus helveticus CNRZ32, single- and multiple-peptidase-deletion mutants were constructed. Two broad-specificity aminopeptidases (PepC and PepN) and X-prolyl dipeptidyl aminopeptidase (PepX) were inactivated through successive cycles of chromosomal gene replacement mutagenesis. The inactivation of all three peptidases in JLS247 ((Delta)pepC (Delta)pepN (Delta)pepX) did not affect the growth rate in amino acid-defined medium. However, the peptidase mutants generally had decreased specific growth rates when acquisition of amino acids required hydrolysis of the proteins in milk, the most significant result being a 73% increase in generation time for JLS247. The growth rate deficiencies in milk were overcome by amino acid supplements with some specificity to each of the peptidase mutants. For example, milk supplementation with Pro resulted in the most significant growth rate increase for (Delta)pepX strains and a 7-aa supplement (Asn, Cys, Ile, Pro, Ser, Thr, and Val) resulted in a JLS247 growth rate indistinguishable from that of the wild type. Our results show that characterization of the activities of the broad-specificity aminopeptidases had little predictive value regarding the amino acid supplements found to enhance the milk growth rates of the peptidase mutant strains. These results represent the first determination of the physiological roles with respect to specific amino acid requirements for peptidase mutants grown in milk.

摘要

为了评估细胞内肽酶对14个氨基酸(aa)营养缺陷型瑞士乳杆菌CNRZ32生长的贡献,构建了单肽酶缺失突变体和多肽酶缺失突变体。通过连续的染色体基因置换诱变循环,使两种广谱氨肽酶(PepC和PepN)和X-脯氨酰二肽基氨肽酶(PepX)失活。JLS247(ΔpepC ΔpepN ΔpepX)中所有三种肽酶的失活并不影响其在氨基酸限定培养基中的生长速率。然而,当获取氨基酸需要水解牛奶中的蛋白质时,肽酶突变体的比生长速率通常会降低,最显著的结果是JLS247的代时增加了73%。牛奶中的生长速率缺陷可通过氨基酸补充来克服,且每种肽酶突变体对氨基酸补充具有一定的特异性。例如,向牛奶中添加Pro可使ΔpepX菌株的生长速率增加最为显著,而添加7种氨基酸(天冬酰胺、半胱氨酸、异亮氨酸、脯氨酸、丝氨酸、苏氨酸和缬氨酸)可使JLS247的生长速率与野生型无明显差异。我们的结果表明,对于发现能提高肽酶突变体菌株在牛奶中生长速率的氨基酸补充物,广谱氨肽酶活性的表征几乎没有预测价值。这些结果首次确定了肽酶突变体在牛奶中生长时对特定氨基酸需求的生理作用。

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