The N‐terminal intrinsically disordered region of Ncb5or docks with the cytochrome b5 core to form a helical motif that is of ancient origin

Author:

Benson David R.1,Deng Bin2,Kashipathy Maithri M.3,Lovell Scott3,Battaile Kevin P.4,Cooper Anne5,Gao Philip5,Fenton Aron W.6,Zhu Hao267ORCID

Affiliation:

1. Department of Chemistry University of Kansas Lawrence Kansas USA

2. Department of Physical Therapy and Rehabilitation Science University of Kansas Medical Center Kansas City Kansas USA

3. Protein Structure and X‐ray Crystallography Laboratory, The University of Kansas Lawrence Kansas USA

4. NYX, New York Structural Biology Center Upton New York USA

5. Protein Production Group The University of Kansas Lawrence Kansas USA

6. Department of Biochemistry and Molecular Biology University of Kansas Medical Center Kansas City Kansas USA

7. Department of Clinical Laboratory Sciences University of Kansas Medical Center Kansas City Kansas USA

Abstract

AbstractNADH cytochrome b5 oxidoreductase (Ncb5or) is a cytosolic ferric reductase implicated in diabetes and neurological conditions. Ncb5or comprises cytochrome b5 (b5) and cytochrome b5 reductase (b5R) domains separated by a CHORD‐Sgt1 (CS) linker domain. Ncb5or redox activity depends on proper inter‐domain interactions to mediate electron transfer from NADH or NADPH via FAD to heme. While full‐length human Ncb5or has proven resistant to crystallization, we have succeeded in obtaining high‐resolution atomic structures of the b5 domain and a construct containing the CS and b5R domains (CS/b5R). Ncb5or also contains an N‐terminal intrinsically disordered region of 50 residues that has no homologs in other protein families in animals but features a distinctive, conserved L34MDWIRL40 motif also present in reduced lateral root formation (RLF) protein in rice and increased recombination center 21 in baker's yeast, all attaching to a b5 domain. After unsuccessful attempts at crystallizing a human Ncb5or construct comprising the N‐terminal region naturally fused to the b5 domain, we were able to obtain a high‐resolution atomic structure of a recombinant rice RLF construct corresponding to residues 25–129 of human Ncb5or (52% sequence identity; 74% similarity). The structure reveals Trp120 (corresponding to invariant Trp37 in Ncb5or) to be part of an 11‐residue α‐helix (S116QMDWLKLTRT126) packing against two of the four helices in the b5 domain that surround heme (α2 and α5). The Trp120 side chain forms a network of interactions with the side chains of four highly conserved residues corresponding to Tyr85 and Tyr88 (α2), Cys124 (α5), and Leu47 in Ncb5or. Circular dichroism measurements of human Ncb5or fragments further support a key role of Trp37 in nucleating the formation of the N‐terminal helix, whose location in the N/b5 module suggests a role in regulating the function of this multi‐domain redox enzyme. This study revealed for the first time an ancient origin of a helical motif in the N/b5 module as reflected by its existence in a class of cytochrome b5 proteins from three kingdoms among eukaryotes.

Funder

Industrial Macromolecular Crystallography Association Collaborative Access Team

National Institute of General Medical Sciences

U.S. Department of Energy

Publisher

Wiley

Subject

Molecular Biology,Biochemistry,Structural Biology

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