首页> 外文期刊>Applied Microbiology >3-Hydroxybutyrate Derived from Poly-3-Hydroxybutyrate Mobilization Alleviates Protein Aggregation in Heat-Stressed Herbaspirillum seropedicae SmR1
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3-Hydroxybutyrate Derived from Poly-3-Hydroxybutyrate Mobilization Alleviates Protein Aggregation in Heat-Stressed Herbaspirillum seropedicae SmR1

机译:来自聚-3-羟基丁酸酯的3-羟基丁酸盐可缓解热应激疱疹的蛋白质聚集在热应激疱疹中丝氨酸SMR1

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Under conditions of carbon starvation or thermal, osmotic, or oxidative shock, mutants affected in the synthesis or mobilization of poly-3-hydroxybutyrate (PHB) are known to survive less well. It is still unclear if the synthesis and accumulation of PHB are sufficient to protect bacteria against stress conditions or if the stored PHB has to be mobilized. Here, we demonstrated that mobilization of PHB in Herbaspirillum seropedicae SmR1 was heat-shock activated at 45°C. In situ proton (~(1)H) nuclear magnetic resonance spectroscopy (i.e., ~(1)H-nuclear magnetic resonance) showed that heat shock increased amounts of 3-hydroxybutyrate (3HB) only in H. seropedicae strains able to synthesize and mobilize PHB. H. seropedicae SmR1 mutants unable to synthesize or mobilize PHB were more susceptible to heat shock and survived less well than the parental strain. When 100?mM 3-hydroxybutyrate was added to the medium, the Δ phaC1 strain (an H. seropedicae mutant unable to synthesize PHB) and the double mutant with deletion of both phaZ1 and phaZ2 (i.e., Δ phaZ1.2 ) (unable to mobilize PHB) showed partial rescue of heat adaptability (from 0% survival without 3HB to 40% of the initial viable population). Addition of 200?mM 3HB before the imposition of heat shock reduced protein aggregation to 15% in the Δ phaC1 mutant and 12% in the Δ phaZ1.2 mutant. We conclude that H. seropedicae SmR1 is naturally protected by 3HB released by PHB mobilization, while mutants unable to generate large amounts of 3HB under heat shock conditions are less able to cope with heat damage.IMPORTANCE Bacteria are subject to abrupt changes in environmental conditions affecting their growth, requiring rapid adaptation. Increasing the concentration of some metabolites can protect bacteria from hostile conditions that lead to protein denaturation and precipitation, as well as damage to plasma membranes. In this work, we demonstrated that under thermal shock, the bacterium Herbaspirillum seropedicae depolymerized its intracellular stock polymer known as poly-3-hydroxybutyrate (PHB), rapidly increasing the concentration of 3-hydroxybutyrate (3HB) and decreasing protein precipitation by thermal denaturation. Mutant H. seropedicae strains unable to produce or depolymerize PHB suffered irreparable damage during thermal shock, resulting in fast death when incubated at 45°C. Our results will contribute to the development of bacteria better adapted to high temperatures found either in natural conditions or in industrial processes. In the case of H. seropedicae and other bacteria that interact beneficially with plants, the understanding of PHB metabolism can be decisive for the development of more-competitive strains and their application as biofertilizers in agriculture.
机译:在碳饥饿或热,渗透或氧化休克的条件下,已知在合成或摩托中受到聚-3-羟基丁酯(PHB)的突变体,以较少存活。尚不清楚pHB的合成和积累是否足以保护细菌免受应力条件或者储存的PHB必须动员。在这里,我们证明,在45℃下激活HERBASPIRILLUM丝氨酸SMR1中PHB的动员。原位质子(〜(1)h)核磁共振光谱(即,〜(1)H核磁共振)显示,仅在能够合成的H.丝氨酸菌株中增加3-羟基丁酸酯(3HB)的热休克增加量动员博士。 H.丝氨酸SMR1无法合成或动员PHB的突变体更容易热休克,并且少于亲本菌株的浓度较差。当向培养基中加入100毫·3-羟基丁酸盐时,δPHAC1菌株(不能合成PHB的H.丝氨酸突变体)和具有缺失PHAZ1和PHAZ2(即ΔPHAZ1.2)(无法进行的双突变体)(无法Mobilize PHB)显示热适应性的部分拯救(从0%生存,没有3HB的3HB至40%的初始活性人群)。在施加热冲击之前加入200·mm 3HB,在δPHAC1突变体中降低蛋白质聚集至15%,δPHAZ1.2突变体中的12%。我们得出结论,H.Sepopedicae SMR1天然受到PHB动员的3HB的3HB,而在热休克条件下不能产生大量3HB的突变体的突变体不太能够应对热量损伤。分析细菌受影响的环境条件突然变化他们的增长,需要快速适应。增加一些代谢物的浓度可以保护细菌免受导致蛋白质变性和沉淀的敌对条件,以及血浆膜损伤。在这项工作中,我们证明,在热休克下,将细菌的细菌血清酸溶胶,其称为聚-3-羟丁酯(PHB)的细胞内库存聚合物,快速增加3-羟基丁酸酯(3HB)的浓度,并通过热变性降低蛋白质沉淀。突变体H.丝氨酸菌株不能产生或解解PHB在热冲击期间遭受不可挽回的损伤,导致在45℃温育时快速死亡。我们的结果将导致细菌的发展,更好地适应在自然条件或工业过程中发现的高温。在H.丝氨酸和与植物有利互动的其他细菌的情况下,对PHB代谢的理解可能是对农业中生物元化器的更竞争力的菌株和应用的果断的决定性。

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