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首页> 外文期刊>Frontiers in Microbiology >The Influence of Sporulation Conditions on the Spore Coat Protein Composition of Bacillus subtilis Spores
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The Influence of Sporulation Conditions on the Spore Coat Protein Composition of Bacillus subtilis Spores

机译:孢子形成条件对枯草芽孢杆菌孢子孢子外壳蛋白组成的影响

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Spores are of high interest to the food and health sectors because of their extreme resistance to harsh conditions, especially against heat. Earlier research has shown that spores prepared on solid agar plates have a higher heat resistance than those prepared under a liquid medium condition. It has also been shown that the more mature a spore is, the higher is its heat resistance most likely mediated, at least in part, by the progressive cross-linking of coat proteins. The current study for the first time assesses, at the proteomic level, the effect of two commonly used sporulation conditions on spore protein presence.~(14)N spores prepared on solid Schaeffer’s-glucose (SG) agar plates and~(15)N metabolically labeled spores prepared in shake flasks containing 3-( N -morpholino) propane sulfonic acid (MOPS) buffered defined liquid medium differ in their coat protein composition as revealed by LC-FT-MS/MS analyses. The former condition mimics the industrial settings while the latter conditions mimic the routine laboratory environment wherein spores are developed. As seen previously in many studies, the spores prepared on the solid agar plates show a higher thermal resistance than the spores prepared under liquid culture conditions. The~(14)N:~(15)N isotopic ratio of the 1:1 mixture of the spore suspensions exposes that most of the identified inner coat and crust proteins are significantly more abundant while most of the outer coat proteins are significantly less abundant for the spores prepared on solid SG agar plates relative to the spores prepared in the liquid MOPS buffered defined medium. Sporulation condition-specific differences and variation in isotopic ratios between the tryptic peptides of expected cross-linked proteins suggest that the coat protein cross-linking may also be condition specific. Since the core dipicolinic acid content is found to be similar in both the spore populations, it appears that the difference in wet heat resistance is connected to the differences in the coat protein composition and assembly. Corroborating the proteomic analyses, electron microscopy analyses show a significantly thinner outer coat layer of the spores cultured on the solid agar medium.
机译:孢子由于对极端条件,特别是高温具有极强的抵抗力,因此在食品和卫生领域备受关注。早期的研究表明,在固态琼脂平板上制备的孢子比在液体培养基条件下制备的孢子具有更高的耐热性。还显示出,孢子越成熟,其耐热性越高,最有可能至少部分地由外壳蛋白的逐步交联介导。当前的研究首次在蛋白质组学水平上评估了两种常用的孢子形成条件对孢子蛋白存在的影响。〜(14)N孢子在固体Schaeffer's葡萄糖(SG)琼脂平板和〜(15)N上制备LC-FT-MS / MS分析显示,在装有3-(N-吗啉代)丙烷磺酸(MOPS)缓冲定义的液体培养基的摇瓶中制备的经代谢标记的孢子,其外壳蛋白组成不同。前者条件模仿工业环境,而后者条件模仿孢子生长的常规实验室环境。如先前在许多研究中所见,在固态琼脂平板上制备的孢子显示出比在液体培养条件下制备的孢子更高的耐热性。孢子悬浮液的1:1混合物的〜(14)N:〜(15)N同位素比表明,大多数已鉴定的内层皮和地壳蛋白含量明显较高,而大多数外层皮蛋白的含量则明显较低在固态SG琼脂平板上制备的孢子相对于在液态MOPS缓冲的定义培养基中制备的孢子的溶解度。预期交联蛋白的胰蛋白酶消化肽之间的孢子形成条件特异性差异和同位素比率变化表明,外壳蛋白交联也可能是条件特异性的。由于发现两个孢子群体的核心二吡啶甲酸含量相似,因此似乎湿耐热性的差异与外壳蛋白组成和组装的差异有关。电子显微镜分析证实了蛋白质组学分析,结果表明在固体琼脂培养基上培养的孢子的外表皮明显更薄。

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