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Effect of GAPDH-derived antimicrobial peptides on sensitive yeasts cells: membrane permeability, intracellular pH and H+-influx/-efflux rates

机译:GAPDH衍生的抗微生物肽对敏感酵母细胞的影响:膜渗透性,细胞内pH和H + -INILUX / -UBFLUX速率

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Saccharomyces cerevisiae secretes antimicrobial peptides (AMPs) derived from glyceraldehyde-3-phosphate dehydrogenase (GAPDH), which induce the death of several non-Saccharomyces yeasts. Previously, we demonstrated that the naturally secreted GAPDH-derived AMPs (i.e. saccharomycin) caused a loss of culturability and decreased the intracellular pH (pHi) of Hanseniaspora guilliermondii cells. In this study, we show that chemically synthesised analogues of saccharomycin also induce a pHi drop and loss of culturability in H. guilliermondii, although to a lesser extent than saccharomycin. To assess the underlying causes of the pHi drop, we evaluated the membrane permeability to H+ cations of H. guilliermondii cells, after being exposed to saccharomycin or its synthetic analogues. Results showed that the H+-efflux decreased by 75.6% and the H+-influx increased by 66.5% in cells exposed to saccharomycin at pH 3.5. Since H+-efflux via H+-ATPase is energy dependent, reduced glucose consumption would decrease ATP production and consequently H+-ATPase activity. However, glucose uptake rates were not affected, suggesting that the AMPs rather than affecting glucose transporters may affect directly the plasma membrane W-ATPase or increase ATP leakage due to cell membrane disturbance. Thus, our study revealed that both saccharomycin and its synthetic analogues induced cell death of H. guilliermondii by increasing the proton influx and inhibiting the proton efflux.
机译:Saccharomyces Cerevisiae分泌衍生自甘氨醛-3-磷酸脱氢酶(GAPDH)的抗微生物肽(AMP),其诱导几种非酵母酵母的死亡。以前,我们证明了天然分泌的GAPDH衍生的AMPS(即酵母霉素)引起培养性的丧失并降低了亨塞氏菌属细胞的细胞内pH(PHI)。在这项研究中,我们表明,糖霉素的化学合成类似物也诱导了H.Guilliermondii的phi下降和培养性的损失,但在较小程度上比糖霉素。为了评估PHI降的潜在原因,在暴露于糖霉素或其合成类似物之后,评估了H.Guilliermondii细胞H +阳离子的膜渗透性。结果表明,H + -UFFLUX降低了75.6%,H + -INFLUX在pH 3.5下暴露于糖霉素的细胞中增加了66.5%。由于H + -Efflux通过H + -ATPase是能量依赖性,因此降低的葡萄糖消耗会降低ATP产生,因此可以降低H + -ATPase活性。然而,葡萄糖摄取率没有受到影响,表明AMPS而不是影响葡萄糖转运蛋白可能会直接影响血浆膜W- ATP酶或增加由于细胞膜扰动引起的ATP泄漏。因此,我们的研究表明,通过增加质子流入并抑制质子流出,酿酒酵母和其合成类似物诱导H. Guilliermondii的细胞死亡。

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