The conformational dynamics of a metastable serpin studied by hydrogen exchange and mass spectrometry

被引:45
作者
Tsutsui, Yuko
Liu, Lu
Gershenson, Anne
Wintrode, Patrick L. [1 ]
机构
[1] Case Western Reserve Univ, Dept Physiol & Biophys, Cleveland, OH 44106 USA
[2] Brandeis Univ, Dept Chem, Waltham, MA 02454 USA
关键词
D O I
10.1021/bi060431f
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
Serpins are a class of protease inhibitors that initially fold to a metastable structure and subsequently undergo a large conformational change to a stable structure when they inhibit their target proteases. How serpins are able to achieve this remarkable conformational rearrangement is still not understood. To address the question of how the dynamic properties of the metastable form may facilitate the conformational change, hydrogen/deuterium exchange and mass spectrometry were employed to probe the conformational dynamics of the serpin human alpha(1)-antitrypsin (alpha(1)AT). It was found that the F helix, which in the crystal structure appears to physically block the conformational change, is highly dynamic in the metastable form. In particular, the C-terminal half of the F helix appears to spend a substantial fraction of time in a partially unfolded state. In contrast, beta-strands 3A and 5A, which must separate to accommodate insertion of the reactive center loop (RCL), are not conformationally flexible in the metastable state but are rigid and stable. The conformational lability required for loop insertion must therefore be triggered during the inhibition reaction. beta-strand 1C, which anchors the distal end of the RCL and thus prevents transition to the so-called latent form, is also stable, consistent with the observation that alpha(1)AT does not spontaneously adopt the latent form. A surprising degree of flexibility is seen in beta-strand 6A, and it is speculated that this flexibility may deter the formation of edge-edge polymers.
引用
收藏
页码:6561 / 6569
页数:9
相关论文
共 40 条
[1]   PRIMARY STRUCTURE EFFECTS ON PEPTIDE GROUP HYDROGEN-EXCHANGE [J].
BAI, YW ;
MILNE, JS ;
MAYNE, L ;
ENGLANDER, SW .
PROTEINS-STRUCTURE FUNCTION AND GENETICS, 1993, 17 (01) :75-86
[2]   DETERMINATION OF CONCENTRATION OF HYDROLYTIC ENZYME SOLUTIONS - ALPHA-CHYMOTRYPSIN TRYPSIN PAPAIN ELASTASE SUBTILISIN AND ACETYLCHOLINESTERASE [J].
BENDER, ML ;
BEGUECAN.ML ;
BLAKELEY, RL ;
BRUBACHER, LJ ;
FEDER, J ;
GUNTER, CR ;
KEZDY, FJ ;
KILLHEFFER, JV ;
MARSHALL, TH ;
MILLER, CG ;
ROESKE, RW ;
STOOPS, JK .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1966, 88 (24) :5890-+
[3]   The role of strand 1 of the C β-sheet in the structure and function of α1-antitrypsin [J].
Bottomley, SP ;
Lawrenson, ID ;
Tew, D ;
Dai, WW ;
Whisstock, JC ;
Pike, RN .
PROTEIN SCIENCE, 2001, 10 (12) :2518-2524
[4]   Different conformational changes within the F-helix occur during serpin folding, polymerization, and proteinase lnhibition [J].
Cabrita, LD ;
Dai, WW ;
Bottomley, SP .
BIOCHEMISTRY, 2004, 43 (30) :9834-9839
[5]   The native metastability and misfolding of serine protease inhibitors [J].
Cho, YL ;
Chae, YK ;
Jung, CH ;
Kim, MJ ;
Na, YR ;
Kim, YH ;
Kang, SJ ;
Im, H .
PROTEIN AND PEPTIDE LETTERS, 2005, 12 (05) :477-481
[6]  
*DEL SCI, 2002, PYMOL MOL GRAPH SYST
[7]   Active site distortion is sufficient for proteinase inhibition by serpins -: Structure of the covalent complex of α1-proteinase inhibitor with porcine pancreatic elastase [J].
Dementiev, A ;
Dobó, J ;
Gettins, PGW .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2006, 281 (06) :3452-3457
[8]   Topography of a 2.0 Å structure of α1-antitrypsin reveals targets for rational drug design to prevent conformational disease [J].
Elliott, PR ;
Pei, XY ;
Dafforn, TR ;
Lomas, DA .
PROTEIN SCIENCE, 2000, 9 (07) :1274-1281
[9]   The F-helix of serpins plays an essential, active role in the proteinase inhibition mechanism [J].
Gettins, PGW .
FEBS LETTERS, 2002, 523 (1-3) :2-6
[10]   Serpin structure, mechanism, and function [J].
Gettins, PGW .
CHEMICAL REVIEWS, 2002, 102 (12) :4751-4803