Abstract

A thermostable mutation, F51L, at the hydrophobic core of human alpha 1-antitrypsin (alpha 1AT) increased the conformational stability of the molecule by decreasing the unfolding rate significantly without altering the refolding rate. The mutation specifically influenced the transition between the native state and a compact intermediate, which retained approximately 70% of the far-UV CD signal, but which had most of the fluorescence signal already dequenched. The mutant alpha 1AT protein was more resistant than the wild-type protein to the insertion of the tetradecapeptide mimicking the sequence of the reactive center loop, indicating that the mutation increases the closing of the central beta-sheet, the A-sheet, in the native state. The F51L mutation enhanced the folding efficiency of the Z-type (E342K) genetic variation, which causes aggregation of the molecule in the liver. It has been shown previously that the aggregation of the Z protein occurs via loop-sheet polymerization, in which the reactive center loop of one molecule is inserted into the opening of the A-sheet of another molecule. Our results strongly suggest that the hydrophobic core of alpha 1AT regulates the opening-closing of the A-sheet and that certain genetic variations that cause opening of the A-sheet can be corrected by inserting an additional stable mutation into the hydrophobic core.

Highlights

  • From the Protein Engineering Group, Genetic Engineering Research Institute, Korea Institute of Science and Technology, Taejon 305-333, Korea

  • The mutant a 1AT protein was more resistant than the wild-type protein to the insertion of the tetradecapeptide mimicking the sequence of the reactive center loop, indicating that the mutation increases the closing of the central IJ-sheet, the A-sheet, in the native state

  • Our results strongly suggest that the hydrophobic core of a 1-antitrypsin (a1AT) regulates the opening-closing of the A-sheet and that certain genetic variations that cause opening of the A-sheet can be corrected by inserting an additional stable mutation into the hydrophobic core

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Summary

Introduction

The mutant a 1AT protein was more resistant than the wild-type protein to the insertion of the tetradecapeptide mimicking the sequence of the reactive center loop, indicating that the mutation increases the closing of the central IJ-sheet, the A-sheet, in the native state. Studies have indicated that the stress of the native form of a 1AT is not limited to the reactive center loop or the A-sheet, but may be propagated throughout the molecule [9, 10]. Several biochemical studies and recent structural determinations show that the reactive center loop of the active serpin is mobile and partially inserted into the central A-sheet [7, 14,15,16,17]. These apparent contradicting data may argue for a distinctive inhibition mechanism [18,19,20], the loop mobility postulated by Carrell et al [7] was confirmative

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