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大肠杆菌单链结合蛋白(SSB)四聚体以(SSB)35结合模式与单链DNA的协同结合

Co-operative binding of Escherichia coli SSB tetramers to single-stranded DNA in the (SSB)35 binding mode.

作者信息

Ferrari M E, Bujalowski W, Lohman T M

机构信息

Department of Biochemistry and Molecular Biophysics, Washington University School of Medicine, St Louis, MO 63110.

出版信息

J Mol Biol. 1994 Feb 11;236(1):106-23. doi: 10.1006/jmbi.1994.1122.

Abstract

Escherichia coli SSB tetramers can bind to single stranded (ss) DNA in several binding modes. At 25 degrees C, pH 8.1, SSB can form at least three distinct binding modes, (SSB)n, where the number of nucleotides occluded per tetramer (n), can have values of 35, 56 or 65. Stability of the different modes is modulated by solution conditions, primarily the salt concentration and type, as well as the free SSB concentration. At least two different types of positive co-operative binding of SSB to ssDNA have also been observed, which appear to be correlated with different SSB binding modes. The (SSB)65 mode, which dominates at monovalent salt concentrations > 0.2 M, displays only moderate, "limited" co-operative binding in which clustering of SSB is limited to the formation of dimers of tetramers (octamers). However, at lower salt concentrations, "unlimited" co-operative binding is observed in which long SSB clusters can form, similar to the behavior observed for the phage T4 gene 32 protein. It has been proposed that unlimited co-operativity is linked to the (SSB)35 binding mode; however, this has not been verified since quantitative estimates of the co-operativity in this binding mode are difficult on long ssDNA. To estimate the nearest-neighbor co-operativity parameter in the (SSB)35 mode, we have examined the equilibrium binding of SSB to the oligodeoxynucleotide, dA(pA)69. Under certain conditions, 1:1 complexes, in which all four SSB subunits interact with the dA(pA)69, can form at low SSB binding densities, whereas 2:1 complexes, in which both SSB tetramers bind to DNA using only two subunits, can form at high SSB binding densities. These 2:1 complexes serve as a model for co-operative binding in the (SSB)35 binding mode. We show that SSB tetramers bind in this mode with a minimum nearest-neighbor co-operativity parameter of omega 35 = 1.0 x 10(5) (0.125 M NaCl, pH 8.1, 25 degrees C). This indicates that the nearest-neighbor co-operativities for SSB tetramers bound to ssDNA in the (SSB)35 versus the (SSB)65 mode differ qualitatively and quantitatively and suggests that the (SSB)35 mode is responsible for the ability of SSB protein to form long clusters on ssDNA. If the ability of helix destabilizing proteins to form uninterrupted protein clusters on ssDNA is important in DNA replication, then it is likely that SSB uses its (SSB)35 mode to function in this capacity.

摘要

大肠杆菌单链结合蛋白(SSB)四聚体能够以多种结合模式与单链(ss)DNA结合。在25℃、pH 8.1条件下,SSB至少可形成三种不同的结合模式,即(SSB)n,其中每个四聚体封闭的核苷酸数(n)可以为35、56或65。不同模式的稳定性受溶液条件调节,主要是盐浓度和类型,以及游离SSB浓度。还观察到SSB与ssDNA至少有两种不同类型的正协同结合,这似乎与不同的SSB结合模式相关。在单价盐浓度>0.2 M时占主导的(SSB)65模式,仅表现出适度的“有限”协同结合,其中SSB的聚集仅限于形成四聚体二聚体(八聚体)。然而,在较低盐浓度下,观察到“无限”协同结合,其中可以形成长的SSB簇,类似于噬菌体T4基因32蛋白的行为。有人提出无限协同性与(SSB)35结合模式有关;然而,这尚未得到验证,因为在长ssDNA上难以对这种结合模式中的协同性进行定量估计。为了估计(SSB)35模式下的最近邻协同参数,我们研究了SSB与寡脱氧核苷酸dA(pA)69的平衡结合。在某些条件下,在低SSB结合密度下可以形成1:1复合物,其中所有四个SSB亚基都与dA(pA)69相互作用,而在高SSB结合密度下可以形成2:1复合物,其中两个SSB四聚体仅使用两个亚基与DNA结合。这些2:1复合物作为(SSB)35结合模式下协同结合的模型。我们表明,SSB四聚体以这种模式结合,其最小最近邻协同参数为ω35 = 1.0×10⁵(0.125 M NaCl,pH 8.1,25℃)。这表明在(SSB)35与(SSB)65模式下,与ssDNA结合的SSB四聚体的最近邻协同性在质量和数量上都有所不同,这表明(SSB)35模式是SSB蛋白在ssDNA上形成长簇能力的原因。如果螺旋不稳定蛋白在ssDNA上形成不间断蛋白簇的能力在DNA复制中很重要,那么SSB很可能利用其(SSB)35模式发挥这种作用。

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