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Impact of Membrane Fusion and Proteolysis on SpoIIQ Dynamics and Interaction with SpoIIIAH

机译:膜融合和蛋白水解对SpoIIQ动力学及其与SpoIIIAH相互作用的影响

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摘要

The onset of engulfment-dependent gene expression during Bacillus subtilis sporulation requires the forespore membrane protein SpoIIQ, which recruits mother cell proteins involved in late gene expression to the outer forespore membrane. Engulfment activates the late forespore transcription factor σG, which produces high levels of the secreted SpoIVB protease that is required for activation of the late mother cell transcription factor σK. Engulfment also triggers the proteolytic cleavage of SpoIIQ, an event that depends on the SpoIVB protease but not on σG activity. To determine if SpoIVB directly cleaves SpoIIQ and to determine if this event participates in the onset of late gene expression, we purified SpoIVB, SpoIIQ, and SpoIVFA (another SpoIVB substrate). SpoIVB directly cleaved SpoIIQ at the same site in vitro and in vivo and cleaved SpoIVFA in at least three different locations. SpoIIQ cleavage depends on membrane fusion, but not on σG activity, suggesting that the ability of SpoIVB to cleave substrates is regulated by membrane fusion. We isolated SpoIVB-resistant SpoIIQ proteins by random mutagenesis of codons at the cleavage site and demonstrated that SpoIIQ processing is dispensable for spore formation and for activation of late forespore and mother cell gene expression. Fluorescence recovery after photobleaching analysis demonstrated that membrane fusion releases SpoIIQ from an immobile complex, an event that could allow SpoIVB to cleave SpoIIQ. We propose that this membrane fusion-dependent reorganization in the complex, rather than SpoIIQ proteolysis itself, is necessary for the onset of late transcription.
机译:枯草芽孢杆菌孢子形成过程中依赖吞噬的基因表达的开始需要前孢子膜蛋白SpoIIQ,该蛋白将参与后期基因表达的母细胞蛋白募集到外前孢子膜。吞噬会激活后孢子转录因子σ G ,后者产生高水平的分泌SpoIVB蛋白酶,这是激活后母细胞转录因子σ K 所必需的。吞噬还会触发SpoIIQ的蛋白水解切割,该事件取决于SpoIVB蛋白酶,而不取决于σ G 活性。为了确定SpoIVB是否直接切割SpoIIQ并确定此事件是否参与后期基因表达的发生,我们纯化了SpoIVB,SpoIIQ和SpoIVFA(另一个SpoIVB底物)。 SpoIVB在体内和体外直接在同一位点切割SpoIIQ,并在至少三个不同位置切割SpoIVFA。 SpoIIQ裂解取决于膜融合,但不取决于σ G 活性,表明SpoIVB裂解底物的能力受膜融合的调节。我们通过在切割位点的密码子的随机诱变分离了抗SpoIVB的SpoIIQ蛋白,并证明了SpoIIQ加工对于孢子形成以及后期的前孢子和母细胞基因表达的激活是必不可少的。光漂白分析后的荧光恢复表明膜融合从固定的复合物中释放了SpoIIQ,这一事件可能使SpoIVB裂解SpoIIQ。我们建议这种复杂的膜融合依赖重组,而不是SpoIIQ蛋白水解本身,对于后期转录的开始是必需的。

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