Logo image
Crystallization of adenylylsulfate reductase from desulfovibrio gigas: A strategy based on controlled protein oligomerization
Journal article   Peer reviewed

Crystallization of adenylylsulfate reductase from desulfovibrio gigas: A strategy based on controlled protein oligomerization

Jou-Yin Fang, Yuan-Lan Chiang, Yin-Cheng Hsieh, Vincent C.-C. Wang, Yen-Chieh Huang, Phimonphan Chuankhayan, Ming-Chi Yang, Ming-Yih Liu, Sunney I. Chan and Chun-Jung Chen
Crystal Growth and Design, Vol.11(6), pp.2127-2134
01/06/2011

Abstract

Adenylylsulfate reductase (adenosine 5′-phosphosulfate reductase, APS reductase or APSR, E.C.1.8.99.2) catalyzes the conversion of APS to sulfite in dissimilatory sulfate reduction. APSR was isolated and purified directly from massive anaerobically grown Desulfovibrio gigas, a strict anaerobe, for structure and function investigation. Oligomerization of APSR to form dimers-α 2 β 2 , tetramers- α 4 β 4 , hexamers- α 6 β 6 , and larger oligomers was observed during purification of the protein. Dynamic light scattering and ultracentrifugation revealed that the addition of adenosine monophosphate (AMP) or adenosine 5′-phosphosulfate (APS) disrupts the oligomerization, indicating that AMP or APS binding to the APSR dissociates the inactive hexamers into functional dimers. Treatment of APSR with β-mercaptoethanol decreased the enzyme size from a hexamer to a dimer, probably by disrupting the disulfide Cys156-Cys162 toward the C-terminus of the β-subunit. Alignment of the APSR sequences from D. gigas and A. fulgidus revealed the largest differences in this region of the β-subunit, with the D. gigas APSR containing 16 additional amino acids with the Cys156-Cys162 disulfide. Studies in a pH gradient showed that the diameter of the APSR decreased progressively with acidic pH. To crystallize the APSR for structure determination, we optimized conditions to generate a homogeneous and stable form of APSR by combining dynamic light scattering, ultracentrifugation, and electron paramagnetic resonance methods to analyze the various oligomeric states of the enzyme in varied environments. © 2011 American Chemical Society.

Metrics

1 Record Views

Details

Logo image