Crystal structure determination and inhibition studies of a novel xylanase and α-amylase inhibitor protein (XAIP) from Scadoxus multiflorus

被引:11
作者
Kumar, Sanjit [1 ]
Singh, Nagendra [1 ]
Sinha, Mau [1 ]
Dube, Divya [1 ]
Singh, S. Baskar [1 ]
Bhushan, Asha [1 ]
Kaur, Punit [1 ]
Srinivasan, Alagiri [1 ]
Sharma, Sujata [1 ]
Singh, Tej P. [1 ]
机构
[1] All India Inst Med Sci, Dept Biophys, New Delhi 110029, India
关键词
crystal structure; enzyme inhibition; TIM barrel fold; xylanase; alpha-amylase; AMYLASE/SUBTILISIN INHIBITOR; ANGSTROM RESOLUTION; XIP-I; WHEAT;
D O I
10.1111/j.1742-4658.2010.07703.x
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
A novel plant protein isolated from the underground bulbs of Scadoxus multiflorus, xylanase and alpha-amylase inhibitor protein (XAIP), inhibits two structurally and functionally unrelated enzymes: xylanase and alpha-amylase. The mature protein contains 272 amino acid residues which show sequence identities of 48% to the plant chitinase hevamine and 36% to xylanase inhibitor protein-I, a double-headed inhibitor of GH10 and GH11 xylanases. However, unlike hevamine, it is enzymatically inactive and, unlike xylanase inhibitor protein-I, it inhibits two functionally different classes of enzyme. The crystal structure of XAIP has been determined at 2.0 A resolution and refined to R-cryst and R-free factors of 15.2% and 18.6%, respectively. The polypeptide chain of XAIP adopts a modified triosephosphate isomerase barrel fold with eight beta-strands in the inner circle and nine alpha-helices forming the outer ring. The structure contains three cis peptide bonds: Gly33-Phe34, Tyr159-Pro160 and Trp253-Asp254. Although hevamine has a long accessible carbohydrate-binding channel, in XAIP this channel is almost completely filled with the side-chains of residues Phe13, Pro77, Lys78 and Trp253. Solution studies indicate that XAIP inhibits GH11 family xylanases and GH13 family alpha-amylases through two independent binding sites located on opposite surfaces of the protein. Comparison of the structure of XAIP with that of xylanase inhibitor protein-I, and docking studies, suggest that loops alpha 3-beta 4 and alpha 4-beta 5 may be involved in the binding of GH11 xylanase, and that helix alpha 7 and loop beta 6-alpha 6 are suitable for the interaction with alpha-amylase.
引用
收藏
页码:2868 / 2882
页数:15
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