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Critical clamp loader processing by an essential AAA+ protease in Caulobacter crescentus

机译:新月形杆菌中必需的AAA +蛋白酶对关键钳上料器的加工

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摘要

Chromosome replication relies on sliding clamps that are loaded by energy-dependent complexes. In Escherichia coli, the ATP-binding clamp loader subunit DnaX exists as both long (τ) and short (γ) forms generated through programmed translational frameshifting, but the need for both forms is unclear. Here, we show that in Caulobacter crescentus, DnaX isoforms are unexpectedly generated through partial proteolysis by the AAA+ protease casein lytic proteinase (Clp) XP. We find that the normally processive ClpXP protease partially degrades DnaX to produce stable fragments upon encountering a glycine-rich region adjacent to a structured domain. Increasing the sequence complexity of this region prevents partial proteolysis and generates a τ-only form of DnaX in vivo that is unable to support viability on its own. Growth is restored when γ is provided in trans, but these strains are more sensitive to DNA damage compared with strains that can generate γ through proteolysis. Our work reveals an unexpected mode of partial processing by the ClpXP protease to generate DnaX isoforms, demonstrates that both τ and γ forms of DnaX are required for Caulobacter viability, and identifies a role for clamp loader diversity in responding to DNA damage. The conservation of distinct DnaX isoforms throughout bacteria despite fundamentally different mechanisms for producing them suggests there may be a conserved need for alternate clamp loader complexes during DNA damaging conditions.
机译:染色体复制依赖于由能量依赖性复合物加载的滑动夹具。在大肠杆菌中,ATP结合的钳加载子亚单位DnaX以通过程序化平移移码生成的长(τ)和短(γ)形式存在,但尚不清楚这两种形式的需求。在这里,我们显示在新月形杆菌中,DnaX亚型意外地通过AAA +蛋白酶酪蛋白裂解蛋白酶(Clp)XP的部分蛋白水解而产生。我们发现,通常的持续性ClpXP蛋白酶遇到与结构域相邻的富含甘氨酸的区域时,会部分降解DnaX,从而产生稳定的片段。增加该区域的序列复杂性会阻止部分蛋白水解,并在体内产生仅τ形式的DnaX,而DnaX无法独自支持生存能力。反式提供γ后,生长得以恢复,但与可通过蛋白水解产生γ的菌株相比,这些菌株对DNA损伤更敏感。我们的工作揭示了ClpXP蛋白酶产生DnaX亚型的部分加工的出乎意料的模式,证明了Caulobacter的生存力需要DnaX的τ和γ形式,并确定了夹具装载器多样性在响应DNA损伤中的作用。尽管在产生细菌方面存在根本不同的机制,但在整个细菌中仍保留了独特的DnaX同工型,这表明在DNA破坏条件下可能一直需要替代的夹具装载复合物。

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