Proton relay system in the active site of maltodextrinphosphorylase via hydrogen bonds with large proton polarizability: an FT-IR difference spectroscopy study

被引:8
作者
Bartl, F
Palm, D
Schinzel, R
Zundel, G
机构
[1] Humboldt Univ, Charite Berlin, Inst Med Phys & Biophys, D-10098 Berlin, Germany
[2] Univ Wurzburg, Theodor Boveri Inst, Dept Physiol Chem, D-97074 Wurzburg, Germany
[3] Univ Munich, Inst Phys Chem, D-80333 Munich, Germany
来源
EUROPEAN BIOPHYSICS JOURNAL WITH BIOPHYSICS LETTERS | 1999年 / 28卷 / 03期
关键词
maltodextrinphosphorylase; hydrogen bonds; proton polarizability; Fourier transform infrared spectroscopy; pyridoxalphosphate dissociation state;
D O I
10.1007/s002490050200
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Maltodextrinphosphorylase (MDP) was studied in the pH range 5.4-8.4 by Fourier transform infrared (FT-IR) spectroscopy. The pK(a) value of the cofactor pyridoxalphosphate (PLP) was found between 6.5 and 7.0, which closely resembles the second py, of free PLP. FTIR difference spectra of the binary complex of MDP + alpha-D-glucose-1-methylenephosphonate (Glc-1-MeP) minus native MDP were taken at pH 6.9. Following binary complex formation. two Lys residues, tentatively assigned to the active site residues Lys533 and Lys539, became deprotonated, and PLP as well as a carboxyl group, most likely of Glu637, protonated. A system of hydrogen bonds which shows large proton polarizability due to collective proton tunneling was observed connecting Lys533, PLP, and Glc-1-MeP. A comparison with model systems shows, furthermore. that this hydrogen bonded chain is highly sensitive to local electrical fields and specific interactions, respectively. In the binary complex the proton limiting structure with by far the highest probability is the one in which Glc-1-MeP is singly protonated. Glc-1-MeP is singly protonated. In a second hydrogen bonded chain the proton of Lys539 is shifted to Glu637. in the binary complex the proton remains located at Glu637. In the ternary complex composed of phosphorylase. glucose-1-phosphate (Glc-1-P), and the nonreducing end of a polysaccharide chain (primer), a second proton may be shifted to the phosphate group of Glc-1-P. In the doubly protonated phosphate group the loss of mesomeric stabilization of the phosphate ester makes the C(1)-O(1) bond of Glc-1-P susceptible to bond cleavage. The arising glucosyl carbonium ion will be a substrate for nucleophilic attack by the nonreducing terminal glucose residue of the polysaccharide chain.
引用
收藏
页码:200 / 207
页数:8
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