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糖原磷酸化酶b变构转变的固态31P核磁共振研究。

A solid-state 31P-NMR investigation of the allosteric transition in glycogen phosphorylase b.

作者信息

Challoner R, McDowell C A, Stirtan W, Withers S G

机构信息

Department of Chemistry, University of British Columbia, Vancouver, Canada.

出版信息

Biophys J. 1993 Feb;64(2):484-91. doi: 10.1016/S0006-3495(93)81391-2.

Abstract

The catalytic role of the cofactor phosphate moiety at the active site of glycogen phosphorylase has been the subject of many investigations including solution-state high-resolution 31P-NMR studies. In this study the pyridoxal phosphate moiety in both the inactive and active forms of microcrystalline phosphorylase b has been investigated by high-resolution 31P magic-angle spinning NMR. The symmetry of the shielding tensor in model compounds at varying degrees of ionization is investigated and the results indicate a marked difference between the dianionic and monoanionic model compounds. Consequently the observed similarity in the principal tensor components describing the shielding tensor of the phosphorus nuclei present at the active site of both the R- and T-state conformations suggests that there is no change in ionization site upon activation in contrast to suggestions based upon isotropic shifts. Since previous relaxation measurements have pointed to the need to consider motional influences in such systems, several plausible models are considered. Subject to the assumption of congruency between the principal axis system describing the shielding interaction and molecular frame determined by the molecular symmetry axes, we conclude that the phosphate cofactor is dianionic in both forms.

摘要

糖原磷酸化酶活性位点上辅因子磷酸基团的催化作用一直是许多研究的主题,包括溶液态高分辨率31P-NMR研究。在本研究中,通过高分辨率31P魔角旋转NMR研究了微晶磷酸化酶b的无活性和活性形式中的磷酸吡哆醛部分。研究了不同电离程度的模型化合物中屏蔽张量的对称性,结果表明双阴离子和单阴离子模型化合物之间存在显著差异。因此,在描述R态和T态构象活性位点处磷核屏蔽张量的主张量分量中观察到的相似性表明,与基于各向同性位移的建议相反,活化后电离位点没有变化。由于先前的弛豫测量表明需要考虑此类系统中的运动影响,因此考虑了几种合理的模型。在描述屏蔽相互作用的主轴系统与由分子对称轴确定的分子框架之间一致性的假设下,我们得出结论,两种形式的磷酸辅因子均为双阴离子。

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A solid-state 31P-NMR investigation of the allosteric transition in glycogen phosphorylase b.
Biophys J. 1993 Feb;64(2):484-91. doi: 10.1016/S0006-3495(93)81391-2.

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