Small-angle neutron scattering solution structures of NADPH-dependent sulfite reductase
[Display omitted] •Sulfite reductase (SiR) is a multi-subunit oxidoreductase that reduces SO32− to S2−.•We show that subunit-subunit binding triggers domain reorganization of the reductase subunit.•Subunit-subunit binding also elicits compaction of the oxidase subunit.•Reducing the reductase positio...
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Veröffentlicht in: | Journal of structural biology 2021-06, Vol.213 (2), p.107724-107724, Article 107724 |
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Sprache: | eng |
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•Sulfite reductase (SiR) is a multi-subunit oxidoreductase that reduces SO32− to S2−.•We show that subunit-subunit binding triggers domain reorganization of the reductase subunit.•Subunit-subunit binding also elicits compaction of the oxidase subunit.•Reducing the reductase positions its electron-transfer domain near the oxidase binding site.•These domain motions present a model for multi-electron electron transfer in SiR.
Sulfite reductase (SiR), a dodecameric complex of flavoprotein reductase subunits (SiRFP) and hemoprotein oxidase subunits (SiRHP), reduces sulfur for biomass incorporation. Electron transfer within SiR requires intra- and inter-subunit interactions that are mediated by the relative position of each protein, governed by flexible domain movements. Using small-angle neutron scattering, we report the first solution structures of SiR heterodimers containing a single copy of each subunit. These structures show how the subunits bind and how both subunit binding and oxidation state impact SiRFP’s conformation. Neutron contrast matching experiments on selectively deuterated heterodimers allow us to define the contribution of each subunit to the solution scattering. SiRHP binding induces a change in the position of SiRFP’s flavodoxin-like domain relative to its ferredoxin-NADP+ reductase domain while compacting SiRHP’s N-terminus. Reduction of SiRFP leads to a more open structure relative to its oxidized state, re-positioning SiRFP’s N-terminal flavodoxin-like domain towards the SiRHP binding position. These structures show, for the first time, how both SiRHP binding to, and reduction of, SiRFP positions SiRFP for electron transfer between the subunits. |
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ISSN: | 1047-8477 1095-8657 |
DOI: | 10.1016/j.jsb.2021.107724 |