Interactions defining the specificity between fungal xylanases and the xylanase-inhibiting protein XIP-I from wheat

被引:107
作者
Flatman, R
McLauchlan, WR
Juge, N
Furniss, C
Berrin, JG
Hughes, RK
Manzanares, P
Ladbury, JE
O'Brien, R
Williamson, G
机构
[1] Food Res Inst, Norwich NR4 7UA, Norfolk, England
[2] Fac Sci & Tech St Jerome, Inst Mediterraneen Rech Nutr, UMR 1111, INRA, F-13397 Marseille 20, France
[3] CSIC, Inst Agroquim & Tecnol Alimentos, Burjassot 46100, Valencia, Spain
[4] UCL, London WC1E 6BT, England
关键词
plant inhibitor; protein-protein interaction;
D O I
10.1042/BJ20020168
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
We previously reported on the xylanase-inhibiting protein I (XIP-I) from wheat [McLauchlan, Garcia-Conesa, Williamson, Roza, Ravestein and Maat (1999), Biochem. J. 338, 441-446]. In the present study, we show that XIP-I inhibits family-10 and -11 fungal xylanases. The K(i) values for fungal xylanases ranged from 3.4 to 610 nM, but bacterial family-10 and -11 xylanases were not inhibited. Unlike many glycosidase inhibitors, XIP-I was not a slow-binding inhibitor of the Aspergillus niger xylanase. Isothermal titration calorimetry of the XIP-I-A. niger xylanase complex showed the formation of a stoichiometric (1: 1) complex with a heat capacity change of -1.38 kJ.mol(-1).K(-1), leading to a predicted buried surface area of approx. 2200 +/- 500 Angstrom at the complex interface. For this complex with A. niger xylanase (K(i) = 320 nM at pH 5.5), titration curves indicated that an observable interaction occurred at pH 4-7, and this was consistent with the pH profile of inhibition of activity. In contrast, the stronger complex between A. nidulans xylanase and XIP-I (K(i) = 9 nM) led to an observable interaction across the entire pH range tested (3-9). Using surface plasmon resonance, we show that the differences in the binding affinity of XIP-I for A. niger and A. nidulans xylanase are due to a 200-fold lower dissociation rate k(off) for the latter, with only a small difference in association rate k(on).
引用
收藏
页码:773 / 781
页数:9
相关论文
共 41 条
[1]   DEVELOPMENT-RELATED CHANGES IN DECAY SUSCEPTIBILITY AND POLYGALACTURONASE INHIBITOR CONTENT OF BARTLETT PEAR FRUIT [J].
ABUGOUKH, AA ;
STRAND, LL ;
LABAVITCH, JM .
PHYSIOLOGICAL PLANT PATHOLOGY, 1983, 23 (01) :101-109
[2]   HOST-PATHOGEN INTERACTIONS .3. PROTEINS FROM PLANT CELL WALLS INHIBIT POLYGALACTURONASES SECRETED BY PLANT PATHOGENS [J].
ALBERSHEIM, P ;
ANDERSON, AJ .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1971, 68 (08) :1815-+
[3]  
ANTON VL, 1997, BIOCHIM BIOPHYS ACTA, V1343, P31
[4]   INTERLABORATORY TESTING OF METHODS FOR ASSAY OF XYLANASE ACTIVITY [J].
BAILEY, MJ ;
BIELY, P ;
POUTANEN, K .
JOURNAL OF BIOTECHNOLOGY, 1992, 23 (03) :257-270
[5]   POLYGALACTURONASE-INHIBITING PROTEIN ACCUMULATES IN PHASEOLUS-VULGARIS L IN RESPONSE TO WOUNDING, ELICITORS AND FUNGAL INFECTION [J].
BERGMANN, CW ;
ITO, Y ;
SINGER, D ;
ALBERSHEIM, P ;
DARVILL, AG ;
BENHAMOU, N ;
NUSS, L ;
SALVI, G ;
CERVONE, F ;
DELORENZO, G .
PLANT JOURNAL, 1994, 5 (05) :625-634
[6]   High-level production of recombinant fungal endo-β-1,4-xylanase in the methylotrophic yeast Pichia pastoris [J].
Berrin, JG ;
Williamson, G ;
Puigserver, A ;
Chaix, JC ;
McLauchlan, WR ;
Juge, N .
PROTEIN EXPRESSION AND PURIFICATION, 2000, 19 (01) :179-187
[7]  
BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3
[8]   HOST PATHOGEN INTERACTIONS .35. CAN PHASEOLUS PGIP INHIBIT PECTIC ENZYMES FROM MICROBES AND PLANTS [J].
CERVONE, F ;
DELORENZO, G ;
PRESSEY, R ;
DARVILL, AG ;
ALBERSHEIM, P .
PHYTOCHEMISTRY, 1990, 29 (02) :447-449
[9]   THE ROLE OF PECTIC ENZYMES IN PLANT PATHOGENESIS [J].
COLLMER, A ;
KEEN, NT .
ANNUAL REVIEW OF PHYTOPATHOLOGY, 1986, 24 :383-409
[10]   STRUCTURES AND MECHANISMS OF GLYCOSYL HYDROLASES [J].
DAVIES, G ;
HENRISSAT, B .
STRUCTURE, 1995, 3 (09) :853-859