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大肠杆菌RNA聚合酶的聚集平衡:核心酶和全酶原聚体中阴离子连接的构象转变的证据。

Aggregation equilibria of Escherichia coli RNA polymerase: evidence for anion-linked conformational transitions in the protomers of core and holoenzyme.

作者信息

Shaner S L, Piatt D M, Wensley C G, Yu H, Burgess R R, Record M T

出版信息

Biochemistry. 1982 Oct 26;21(22):5539-51. doi: 10.1021/bi00265a025.

Abstract

The aggregation equilibria of Escherichia coli RNA polymerase core and holoenzyme have been studied by velocity sedimentation as a function of [NaCl] both in the presence and in the absence of MgCl2. Effects of other anions (F- and I-), pH, and temperature have also been examined. Diffusion coefficients obtained by quasi-elastic light scattering (QLS) at high and low salt concentrations were used in conjunction with sedimentation coefficients under these conditions to obtain molecular weights of the protomer and aggregates of the core enzyme. At low salt concentration, core aggregates to a tetramer in the absence of MgCl2 and to an octamer in the presence of MgCl2. Some ambiguity exists in the interpretation of the sedimentation and QLS data for holoenzyme. The sedimentation results are consistent with the formation of dimers at low salt, both in the presence and in the absence of MgCl2. In all cases, equilibrium constants were calculated assuming a simple monomer--j-mer stoichiometry. These equilibrium constants are extremely sensitive functions of the concentration and type of monovalent anion. In Cl-, aggregation of both core and holoenzyme begins abruptly when the salt concentration is reduced below approximately 0.2 M (at a protein concentration of approximately 0.30 mg/mL); for core, substitution of I- for Cl- suppresses aggregation while F- enhances aggregation at a fixed anion concentration. No specific effect of monovalent cations (Na+, NH4+) is observed; Mg2+ has no effect on holoenzyme dimerization and has little effect on the salt range of core aggregation, though the stoichiometries of the core aggregates in the presence and absence of Mg2+ differ. Anion effects on these equilibria were modeled by assuming that a class of anion-binding sites on the protomer is not present in the aggregate, so that anion release accompanies aggregation. Analytical expressions for several models of the effect of anions on the aggregation equilibria were derived by using the method of binding polynomials. The salt dependence of the aggregation equilibria in the absence of Mg2+ appears inconsistent with a model in which the anion-binding sites on the protomer are independent (noncooperative), but it is well described by a model in which anion binding to the protomers occurs in a completely cooperative manner. The molecular basis of this apparent cooperative effect of anions on the aggregation equilibria is proposed to be an allosteric effect of anions on conformational equilibria of the protomers of core polymerase and the holoenzyme. Implications of such a salt-dependent conformational transition for the DNA-binding interactions of the enzyme are considered.

摘要

通过速度沉降法,研究了大肠杆菌RNA聚合酶核心酶和全酶在有无MgCl₂存在下,作为[NaCl]函数的聚集平衡。还考察了其他阴离子(F⁻和I⁻)、pH和温度的影响。在高盐和低盐浓度下通过准弹性光散射(QLS)获得的扩散系数,与这些条件下的沉降系数结合使用,以获得核心酶原聚体和聚集体的分子量。在低盐浓度下,核心酶在无MgCl₂时聚合成四聚体,在有MgCl₂时聚合成八聚体。对于全酶的沉降和QLS数据的解释存在一些模糊性。沉降结果与低盐时二聚体的形成一致,无论有无MgCl₂。在所有情况下,假设简单的单体-j聚体化学计量关系来计算平衡常数。这些平衡常数是单价阴离子浓度和类型的极其敏感的函数。在Cl⁻中,当盐浓度降低到约0.2 M以下(蛋白质浓度约为0.30 mg/mL)时,核心酶和全酶的聚集突然开始;对于核心酶,在固定阴离子浓度下,用I⁻取代Cl⁻会抑制聚集,而F⁻会增强聚集。未观察到单价阳离子(Na⁺、NH₄⁺)的特异性作用;Mg²⁺对全酶二聚化没有影响,对核心酶聚集的盐浓度范围影响很小,尽管有和没有Mg²⁺时核心聚集体的化学计量不同。通过假设原聚体上一类阴离子结合位点在聚集体中不存在,从而阴离子释放伴随聚集,对这些平衡的阴离子效应进行了建模。通过使用结合多项式方法,推导了几种阴离子对聚集平衡影响模型的解析表达式。在无Mg²⁺时聚集平衡的盐依赖性似乎与原聚体上阴离子结合位点是独立的(非协同)模型不一致,但用阴离子与原聚体以完全协同方式结合的模型能很好地描述。阴离子对聚集平衡这种明显协同效应的分子基础被认为是阴离子对核心聚合酶和全酶原聚体构象平衡的变构效应。考虑了这种盐依赖性构象转变对酶与DNA结合相互作用的影响。

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