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由反应假单胞菌NCPPB1311产生的白线诱导因子(WLIP)的生物学特性

Biological characterization of white line-inducing principle (WLIP) produced by Pseudomonas reactans NCPPB1311.

作者信息

Lo Cantore Pietro, Lazzaroni Silvia, Coraiola Manuela, Dalla Serra Mauro, Cafarchia Claudia, Evidente Antonio, Lacobellis Nicola S

机构信息

Dipartimento di Biologia, Difesa e Biotecnologie Agro Forestali, Università degli Studi della Basilicata, Viale dell'Ateneo Lucano 10, 85100 Potenza, Italy.

出版信息

Mol Plant Microbe Interact. 2006 Oct;19(10):1113-20. doi: 10.1094/MPMI-19-1113.

DOI:10.1094/MPMI-19-1113
PMID:17022175
Abstract

The biological activities of the lipodepsipeptides (LDP) white line-inducing principle (WLIP), produced by Pseudomonas reactans NCPPB1311, and tolaasin I, produced by R tolaasii NCPPB2192, were compared. Antimicrobial assays showed that both LDP inhibited the growth of fungi-including the cultivated mushrooms Agaricus bisporus, Lentinus edodes, and Pleurotus spp.--chromista, and gram-positive bacteria. Assays of the two LDP on blocks of Agaricus bisporus showed their capacity to alter the mushrooms' pseudo-tissues though WLIP was less active than that of tolaasin I. Contrary to previous studies, tolaasin I was found to inhibit the growth of gram-negative bacteria belonging to the genera Escherichia, Erwinia, Agrobacterium, Pseudomonas, and Xanthomonas. The only gram-negative bacterium affected by WLIP was Erwinia carotovora subsp. carotovora. Both WLIP and tolaasin I caused red blood cell lysis through a colloid-osmotic shock mediated by transmembrane pores; however, the haemolytic activity of WLIP was greater than that of tolaasin I. Transmembrane pores, at a concentration corresponding to 1.5 x C50, showed a radius between 1.5 and 1.7 +/- 0.1 nm for WLIP and 2.1 +/- 0.1 nm for tolaasin I. The antifungal activity of WLIP together with the finding that avirulent morphological variants of P. reactans lack WLIP production suggests that WLIP may play an important role in the interaction of the producing bacterium P. reactans and cultivated mushrooms.

摘要

对由反应假单胞菌NCPPB1311产生的脂缩肽(LDP)白线诱导因子(WLIP)和由托拉斯假单胞菌NCPPB2192产生的托拉菌素I的生物活性进行了比较。抗菌试验表明,两种LDP均能抑制真菌(包括栽培蘑菇双孢蘑菇、香菇和平菇属)、色素界生物和革兰氏阳性菌的生长。对双孢蘑菇菌块进行的两种LDP试验表明,它们有能力改变蘑菇的假组织,不过WLIP的活性低于托拉菌素I。与之前的研究相反,发现托拉菌素I能抑制属于埃希氏菌属、欧文氏菌属、农杆菌属、假单胞菌属和黄单胞菌属的革兰氏阴性菌的生长。受WLIP影响的唯一革兰氏阴性菌是胡萝卜软腐欧文氏菌胡萝卜软腐亚种。WLIP和托拉菌素I均通过跨膜孔介导的胶体渗透休克导致红细胞裂解;然而,WLIP的溶血活性大于托拉菌素I。在相当于1.5×C50的浓度下,跨膜孔的半径对于WLIP为1.5至1.7±0.1纳米,对于托拉菌素I为2.1±0.1纳米。WLIP的抗真菌活性以及无毒形态变异的反应假单胞菌缺乏WLIP产生这一发现表明,WLIP可能在产菌反应假单胞菌与栽培蘑菇的相互作用中发挥重要作用。

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