Tolmasky M E, Actis L A, Crosa J H
Department of Molecular Microbiology and Immunology, School of Medicine, Oregon Health Sciences University, Portland 97201-3098.
Mol Microbiol. 1995 Jan;15(1):87-95. doi: 10.1111/j.1365-2958.1995.tb02223.x.
We have identified and sequenced an hdc gene in the Vibrio anguillarum plasmid pJM1 which encodes a histidine decarboxylase enzyme and is an essential component for the biosynthesis of anguibactin. The open reading frame corresponds to a protein of 386 amino acids with a calculated molecular mass of 44,259.69 Da. The amino acid sequence has extensive homology with the pyridoxal-P-dependent histidine decarboxylases of Morganella morganii, Klebsiella planticola, and Enterobacter aerogenes. Tn3-HoHo1 transposition mutagenesis of the hdc gene present in a recombinant clone carrying the entire pJM1 iron uptake region produced two derivatives, one with the lacZ gene in the same orientation as the direction of hdc transcription and the other with the lacZ gene in the opposite orientation. A. V. anguillarum strain harbouring one of the mutated derivatives was unable to grow under iron-limiting conditions and did not produce anguibactin. Therefore, the hdc gene must play a role in the biosynthetic pathway of this siderophore and consequently in conferring the high virulence phenotype to this bacterium. The role of histidine decarboxylase in biosynthesis of anguibactin was confirmed by the fact that growth under iron starvation was restored by addition of histamine to the medium. The presence of anguibactin was also demonstrated in supernatants from cultures of the hdc mutant strains grown under iron starvation with the addition of histamine, further confirming that histamine is a precursor in the biosynthesis of the siderophore.(ABSTRACT TRUNCATED AT 250 WORDS)
我们已在鳗弧菌质粒pJM1中鉴定并测序了一个hdc基因,该基因编码一种组氨酸脱羧酶,是anguibactin生物合成的必需成分。开放阅读框对应一个由386个氨基酸组成的蛋白质,计算分子量为44,259.69道尔顿。该氨基酸序列与摩根氏摩根菌、植物克雷伯菌和产气肠杆菌的依赖磷酸吡哆醛的组氨酸脱羧酶具有广泛的同源性。对携带整个pJM1铁摄取区域的重组克隆中存在的hdc基因进行Tn3-HoHo1转座诱变,产生了两种衍生物,一种衍生物中的lacZ基因与hdc转录方向相同,另一种衍生物中的lacZ基因方向相反。携带其中一种突变衍生物的鳗弧菌菌株在铁限制条件下无法生长,也不产生anguibactin。因此,hdc基因必定在这种铁载体的生物合成途径中发挥作用,从而赋予该细菌高毒力表型。培养基中添加组胺可恢复铁饥饿条件下的生长,这一事实证实了组氨酸脱羧酶在anguibactin生物合成中的作用。在添加组胺的铁饥饿条件下培养的hdc突变菌株的培养上清液中也证实了anguibactin的存在,进一步证实组胺是这种铁载体生物合成的前体。(摘要截短于250字)