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T4基因32蛋白结构域对单个DNA分子变性的动力学调控

Kinetic regulation of single DNA molecule denaturation by T4 gene 32 protein structural domains.

作者信息

Pant Kiran, Karpel Richard L, Williams Mark C

机构信息

Department of Physics, Northeastern University, 111 Dana Research Center, Boston, MA 02115, USA.

出版信息

J Mol Biol. 2003 Mar 28;327(3):571-8. doi: 10.1016/s0022-2836(03)00153-0.

Abstract

Bacteriophage T4 gene 32 protein (gp32) specifically binds single-stranded DNA, a property essential for its role in DNA replication, recombination, and repair. Although on a thermodynamic basis, single-stranded DNA binding proteins should lower the thermal melting temperature of double-stranded DNA (dsDNA), gp32 does not. Using single molecule force spectroscopy, we show for the first time that gp32 is capable of slowly destabilizing natural dsDNA. Direct measurements of single DNA molecule denaturation and renaturation kinetics in the presence of gp32 and its proteolytic fragments reveal three types of kinetic behavior, attributable to specific protein structural domains, which regulate gp32's helix-destabilizing capabilities. Whereas the full-length protein exhibits very slow denaturation kinetics, a truncate lacking the acidic C-domain exhibits much faster kinetics. This may reflect a steric blockage of the DNA binding site and/or a conformational change associated with this domain. Additional removal of the N-domain, which is needed for binding cooperativity, further increases the DNA denaturation rate, suggesting that both of these domains are critical to the regulation of gp32's helix-destabilization capabilities. This regulation is potentially biologically significant because uncontrolled helix-destabilization would be lethal to the cell. We also obtain equilibrium measurements of the helix-coil transition free energy in the presence of these proteins for the first time.

摘要

噬菌体T4基因32蛋白(gp32)特异性结合单链DNA,这一特性对其在DNA复制、重组及修复过程中所起的作用至关重要。尽管从热力学角度来看,单链DNA结合蛋白应该会降低双链DNA(dsDNA)的热解链温度,但gp32却不会。我们首次利用单分子力谱表明,gp32能够缓慢地使天然dsDNA不稳定。在存在gp32及其蛋白水解片段的情况下,对单个DNA分子变性和复性动力学的直接测量揭示了三种动力学行为,这归因于特定的蛋白质结构域,这些结构域调节着gp32的螺旋去稳定能力。全长蛋白表现出非常缓慢的变性动力学,而缺少酸性C结构域的截短蛋白表现出快得多的动力学。这可能反映了DNA结合位点的空间位阻和/或与该结构域相关的构象变化。进一步去除对结合协同性至关重要的N结构域,会进一步提高DNA变性速率,这表明这两个结构域对于调节gp32的螺旋去稳定能力都至关重要。这种调节可能具有生物学意义,因为不受控制的螺旋去稳定对细胞是致命的。我们还首次获得了在这些蛋白质存在下螺旋-线圈转变自由能的平衡测量结果。

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