Catalytically important damage-free structures of a copper nitrite reductase obtained by femtosecond X-ray laser and room-temperature neutron crystallography

Author:

Halsted Thomas P.ORCID,Yamashita KeitaroORCID,Gopalasingam Chai C.ORCID,Shenoy Rajesh T.,Hirata Kunio,Ago Hideo,Ueno Go,Blakeley Matthew P.ORCID,Eady Robert R.,Antonyuk Svetlana V.ORCID,Yamamoto MasakiORCID,Hasnain S. SamarORCID

Abstract

Copper-containing nitrite reductases (CuNiRs) that convert NO2to NO via a CuCAT–His–Cys–CuETproton-coupled redox system are of central importance in nitrogen-based energy metabolism. These metalloenzymes, like all redox enzymes, are very susceptible to radiation damage from the intense synchrotron-radiation X-rays that are used to obtain structures at high resolution. Understanding the chemistry that underpins the enzyme mechanisms in these systems requires resolutions of better than 2 Å. Here, for the first time, the damage-free structure of the resting state of one of the most studied CuNiRs was obtained by combining X-ray free-electron laser (XFEL) and neutron crystallography. This represents the first direct comparison of neutron and XFEL structural data for any protein. In addition, damage-free structures of the reduced and nitrite-bound forms have been obtained to high resolution from cryogenically maintained crystals by XFEL crystallography. It is demonstrated that AspCATand HisCATare deprotonated in the resting state of CuNiRs at pH values close to the optimum for activity. A bridging neutral water (D2O) is positioned with one deuteron directed towards AspCAT Oδ1and one towards HisCAT N∊2. The catalytic T2Cu-ligated water (W1) can clearly be modelled as a neutral D2O molecule as opposed to D3O+or OD, which have previously been suggested as possible alternatives. The bridging water restricts the movement of the unprotonated AspCATand is too distant to form a hydrogen bond to the O atom of the bound nitrite that interacts with AspCAT. Upon the binding of NO2a proton is transferred from the bridging water to the Oδ2atom of AspCAT, prompting electron transfer from T1Cu to T2Cu and reducing the catalytic redox centre. This triggers the transfer of a proton from AspCATto the bound nitrite, enabling the reaction to proceed.

Funder

Biotechnology and Biological Sciences Research Council

Science and Technology Facilities Council

Publisher

International Union of Crystallography (IUCr)

Subject

Condensed Matter Physics,General Materials Science,Biochemistry,General Chemistry

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1. Identifying and avoiding radiation damage in macromolecular crystallography;Acta Crystallographica Section D Structural Biology;2024-04-30

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