Department of Biochemistry and Molecular Biology, University of Arkansas for Medical Sciences, 4301 West Markham Street (Slot 516), Little Rock, AR 72205, USA.
Nucleic Acids Res. 2024 Jun 24;52(11):6543-6557. doi: 10.1093/nar/gkae403.
Pif1 helicase functions in both the nucleus and mitochondria. Pif1 tightly couples ATP hydrolysis, single-stranded DNA translocation, and duplex DNA unwinding. We investigated two Pif1 variants (F723A and T464A) that have each lost one site of interaction of the protein with the DNA substrate. Both variants exhibit minor reductions in affinity for DNA and ATP hydrolysis but have impaired DNA unwinding activity. However, these variants translocate on single-stranded DNA faster than the wildtype enzyme and can slide on the DNA substrate in an ATP-independent manner. This suggests they have lost their grip on the DNA, interfering with coupling ATP hydrolysis to translocation and unwinding. Yeast expressing these variants have increased gross chromosomal rearrangements, increased telomere length, and can overcome the lethality of dna2Δ, similar to phenotypes of yeast lacking Pif1. However, unlike pif1Δ mutants, they are viable on glycerol containing media and maintain similar mitochondrial DNA copy numbers as Pif1 wildtype. Overall, our data indicate that a tight grip of the trailing edge of the Pif1 enzyme on the DNA couples ATP hydrolysis to DNA translocation and DNA unwinding. This tight grip appears to be essential for the Pif1 nuclear functions tested but is dispensable for mitochondrial respiratory growth.
Pif1 解旋酶在细胞核和线粒体中都有功能。Pif1 紧密地将 ATP 水解、单链 DNA 易位和双链 DNA 解旋结合在一起。我们研究了两种 Pif1 变体(F723A 和 T464A),它们都失去了蛋白质与 DNA 底物相互作用的一个位点。这两种变体对 DNA 和 ATP 水解的亲和力都略有降低,但 DNA 解旋活性受损。然而,这些变体在单链 DNA 上的易位速度比野生型酶快,并且可以在 ATP 非依赖性的方式下在 DNA 底物上滑动。这表明它们已经失去了对 DNA 的控制,干扰了 ATP 水解与易位和解旋的偶联。表达这些变体的酵母中,总染色体重排增加,端粒长度增加,并且可以克服 dna2Δ 的致死性,类似于缺乏 Pif1 的酵母的表型。然而,与 pif1Δ 突变体不同,它们在含有甘油的培养基上具有生存能力,并且与 Pif1 野生型相比,线粒体 DNA 拷贝数相似。总的来说,我们的数据表明,Pif1 酶的尾随边缘对 DNA 的紧密握持将 ATP 水解与 DNA 易位和 DNA 解旋偶联起来。这种紧密的握持对于测试的 Pif1 核功能似乎是必不可少的,但对于线粒体呼吸生长是可有可无的。