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多聚磷酸盐及其与胁迫耐受性和益生菌特性的联系。

Polyphosphate in and Its Link to Stress Tolerance and Probiotic Properties.

作者信息

Alcántara Cristina, Coll-Marqués José M, Jadán-Piedra Carlos, Vélez Dinoraz, Devesa Vicenta, Zúñiga Manuel, Monedero Vicente

机构信息

Laboratory of Lactic Acid Bacteria and Probiotics, Instituto de Agroquímica y Tecnología de Alimentos, Consejo Superior de Investigaciones Científicas, Valencia, Spain.

Trace Elements Group, Instituto de Agroquímica y Tecnología de Alimentos, Consejo Superior de Investigaciones Científicas, Valencia, Spain.

出版信息

Front Microbiol. 2018 Sep 7;9:1944. doi: 10.3389/fmicb.2018.01944. eCollection 2018.

Abstract

The synthesis of the inorganic polymer polyphosphate (poly-P) in bacteria has been linked to stress survival and to the capacity of some strains to sequester heavy metals. In addition, synthesis of poly-P by certain strains of probiotic lactobacilli has been evidenced as a probiotic mechanism due to the homeostatic properties of this compound at the intestinal epithelium. We analyzed the link between poly-P synthesis, stress response, and mercury toxicity/accumulation by comparing wild-type strains of and their corresponding mutants devoid of poly-P synthesis capacity (defective in the poly-P kinase, , gene). Results showed that resistance to salt (NaCl) and acidic (pH 4) stresses upon mutation was affected in , while no effect was observed in two different strains. Inorganic [Hg(II)] and organic (CHHg) mercury toxicity was generally increased upon mutation, but no influence was seen on the capacity to retain both mercurial forms by the bacteria. Notwithstanding, the culture supernatants of -defective strains possessed a diminished capacity to induce HSP27 expression, a marker for cell protection, in cultured Caco-2 cells compared to wild-type strains. In summary, our results illustrate that the role of poly-P in stress tolerance can vary between strains and they reinforce the idea of probiotic-derived poly-P as a molecule that modulates host-signaling pathways. They also question the relevance of this polymer to the capacity to retain mercury of probiotics.

摘要

细菌中无机聚合物多聚磷酸盐(poly - P)的合成与应激生存以及某些菌株螯合重金属的能力有关。此外,某些益生菌乳酸杆菌菌株合成多聚磷酸盐已被证明是一种益生菌机制,因为该化合物在肠道上皮具有稳态特性。我们通过比较野生型菌株及其相应的缺乏多聚磷酸盐合成能力(多聚磷酸盐激酶基因ppk缺陷)的突变体,分析了多聚磷酸盐合成、应激反应与汞毒性/积累之间的联系。结果表明,ppk突变后,对于盐(NaCl)和酸性(pH 4)应激的抗性在大肠杆菌中受到影响,而在两种不同的乳酸杆菌菌株中未观察到影响。无机[Hg(II)]和有机(CHHg)汞的毒性在ppk突变后通常会增加,但对细菌保留两种汞形态的能力没有影响。尽管如此,与野生型菌株相比,ppk缺陷的乳酸杆菌菌株的培养上清液在培养的Caco - 2细胞中诱导细胞保护标志物HSP27表达的能力有所下降。总之,我们的结果表明,多聚磷酸盐在应激耐受性中的作用可能因菌株而异,并且强化了益生菌衍生的多聚磷酸盐作为调节宿主信号通路的分子的观点。它们还质疑了这种聚合物与益生菌保留汞能力的相关性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0fd3/6137179/75c5e33597d8/fmicb-09-01944-g001.jpg

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