Structural‐Functional Correlations between Unique N‐terminal Region and C‐terminal Conserved Motif in Short‐chain cis‐Prenyltransferase from Tomato

Author:

Imaizumi Riki1ORCID,Matsuura Hiroaki2ORCID,Yanai Taro1ORCID,Takeshita Kohei2ORCID,Misawa Shuto1,Yamaguchi Haruhiko3,Sakai Naoki2ORCID,Miyagi‐Inoue Yukino3,Suenaga‐Hiromori Miki4,Waki Toshiyuki4ORCID,Kataoka Kunishige1ORCID,Nakayama Toru4ORCID,Yamamoto Masaki2ORCID,Takahashi Seiji4ORCID,Yamashita Satoshi1ORCID

Affiliation:

1. Department of Material Chemistry Graduate School of Natural Science and Technology Kanazawa University Kakuma Kanazawa 920-1192 Japan

2. RIKEN SPring-8 Center Sayo-cho, Sayo-gun Hyogo 679-5148 Japan

3. Sumitomo Rubber Industries, Ltd Kobe Japan

4. Graduate School of Engineering Tohoku University Sendai Miyagi 980-8579 Japan

Abstract

AbstractNeryl diphosphate (C10) synthase (NDPS1), a homodimeric soluble cis‐prenyltransferase from tomato, contains four disulfide bonds, including two inter‐subunit S−S bonds in the N‐terminal region. Mutagenesis studies demonstrated that the S−S bond formation affects not only the stability of the dimer but also the catalytic efficiency of NDPS1. Structural polymorphs in the crystal structures of NDPS1 complexed with its substrate and substrate analog were identified by employing massive data collections and hierarchical clustering analysis. Heterogeneity of the C‐terminal region, including the conserved RXG motifs, was observed in addition to the polymorphs of the binding mode of the ligands. One of the RXG motifs covers the active site with an elongated random coil when the ligands are well‐ordered. Conversely, the other RXG motif was located away from the active site with a helical structure. The heterogeneous C‐terminal regions suggest alternating structural transitions of the RXG motifs that result in closed and open states of the active sites. Site‐directed mutagenesis studies demonstrated that the conserved glycine residue cannot be replaced. We propose that the putative structural transitions of the order/disorder of N‐terminal regions and the closed/open states of C‐terminal regions may cooperate and be important for the catalytic mechanism of NDPS1.

Funder

Japan Agency for Medical Research and Development

Publisher

Wiley

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