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血红素诱导人α-珠蛋白重折叠的动力学及机制

Kinetics and mechanism of heme-induced refolding of human alpha-globin.

作者信息

Leutzinger Y, Beychok S

出版信息

Proc Natl Acad Sci U S A. 1981 Feb;78(2):780-4. doi: 10.1073/pnas.78.2.780.

Abstract

Hemoglobin alpha and beta chains are tightly packed, highly (75%) helical stable molecules. Removal of the heme results in unfolded (30% helical) unstable globin chains that can be refolded to the native conformation by recombination with heme. We have studied the kinetics of heme binding and the ensuing conformational changes by using three stopped-flow techniques: (i) fluorescence quenching, which monitors the spatial orientation and distance between the bound heme and the A12(14)alpha tryptophan; (ii) absorption at the Soret band maxima, whose position and intensity depend on the local environment of the heme and the nature of the axial ligands; and (iii) far-UV circular dichroism, which directly gauges the recovery of secondary structure. The fluorescence quenching was biphasic: An initial second-order decay, representing 80-85% of the total amplitude, marked the binding of hemin dicyanide to a relatively well-defined site at a rate constant of 3.3 x 10(7) M(-1) sec(-1), corresponding to a half-time of 10 msec at 2.4 muM reactants. The Soret absorption and circular dichroism were also multiphasic, all three probes detecting a first-order process of half-time 25-40 sec, during which the final secondary and tertiary structures of the heme pocket were established, and the spatial relationship between the heme and the A12 tryptophan was fixed. A slower circular dichroism change, representing two-thirds of the total backbone refolding, with a half-time of 116 sec, marked the full acquisition of the native subunit conformation. The results show that the residues of the heme pocket achieve or closely approach their final three-dimensional structure well before the entire chain is folded. These measurements represent a direct observation of the rate of prosthetic group-induced secondary structure formation and illustrate the advantages of multiple probe analysis in outlining a protein folding pathway.

摘要

血红蛋白的α链和β链紧密堆积,是高度(75%)呈螺旋状的稳定分子。去除血红素会导致未折叠的(30%呈螺旋状)不稳定珠蛋白链,这些链可通过与血红素重组而重新折叠成天然构象。我们使用三种停流技术研究了血红素结合动力学及随之发生的构象变化:(i)荧光猝灭,它监测结合的血红素与A12(14)α色氨酸之间的空间取向和距离;(ii)在索雷特带最大值处的吸收,其位置和强度取决于血红素的局部环境和轴向配体的性质;(iii)远紫外圆二色性,它直接测量二级结构的恢复情况。荧光猝灭是双相的:初始的二级衰减占总幅度的80 - 85%,标志着氰化高铁血红素与一个相对明确的位点结合,速率常数为3.3×10⁷ M⁻¹ sec⁻¹,在反应物浓度为2.4 μM时对应半衰期为10毫秒。索雷特吸收和圆二色性也是多相的,所有这三种探针都检测到一个半衰期为25 - 40秒的一级过程,在此期间血红素口袋的最终二级和三级结构得以确立,血红素与A12色氨酸之间的空间关系也固定下来。较慢的圆二色性变化占总主链重折叠的三分之二,半衰期为116秒,标志着天然亚基构象的完全获得。结果表明,在整个链折叠之前,血红素口袋的残基就已达到或非常接近其最终的三维结构。这些测量结果直接观察到了辅基诱导的二级结构形成速率,并说明了多探针分析在勾勒蛋白质折叠途径方面的优势。

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