Literature DB >> 30171650

Not as easy as π: An insertional residue does not explain the π-helix gain-of-function in two-component FMN reductases.

Jeffrey S McFarlane1, Richard A Hagen2, Annemarie S Chilton1, Dianna L Forbes2, Audrey L Lamb1, Holly R Ellis2.   

Abstract

The π-helix located at the tetramer interface of two-component FMN-dependent reductases contributes to the structural divergence from canonical FMN-bound reductases within the NADPH:FMN reductase family. The π-helix in the SsuE FMN-dependent reductase of the alkanesulfonate monooxygenase system has been proposed to be generated by the insertion of a Tyr residue in the conserved α4-helix. Variants of Tyr118 were generated, and their X-ray crystal structures determined, to evaluate how these alterations affect the structural integrity of the π-helix. The structure of the Y118A SsuE π-helix was converted to an α-helix, similar to the FMN-bound members of the NADPH:FMN reductase family. Although the π-helix was altered, the FMN binding region remained unchanged. Conversely, deletion of Tyr118 disrupted the secondary structural properties of the π-helix, generating a random coil region in the middle of helix 4. Both the Y118A and Δ118 SsuE SsuE variants crystallize as a dimer. The MsuE FMN reductase involved in the desulfonation of methanesulfonates is structurally similar to SsuE, but the π-helix contains a His insertional residue. Exchanging the π-helix insertional residue of each enzyme did not result in equivalent kinetic properties. Structure-based sequence analysis further demonstrated the presence of a similar Tyr residue in an FMN-bound reductase in the NADPH:FMN reductase family that is not sufficient to generate a π-helix. Results from the structural and functional studies of the FMN-dependent reductases suggest that the insertional residue alone is not solely responsible for generating the π-helix, and additional structural adaptions occur to provide the altered gain of function.
© 2018 The Protein Society.

Entities:  

Keywords:  MsuD; MsuE; NAD(P)H-FMN reductase family; SsuD; SsuE; flavin monooxygenases; flavin reductases; two-component FMN-dependent systems; π-helix

Mesh:

Substances:

Year:  2018        PMID: 30171650      PMCID: PMC6295896          DOI: 10.1002/pro.3504

Source DB:  PubMed          Journal:  Protein Sci        ISSN: 0961-8368            Impact factor:   6.725


  33 in total

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7.  Altered mechanism of the alkanesulfonate FMN reductase with the monooxygenase enzyme.

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8.  Steady-state kinetic isotope effects support a complex role of Arg226 in the proposed desulfonation mechanism of alkanesulfonate monooxygenase.

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  1 in total

Review 1.  The role of π-helices in TRP channel gating.

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Journal:  Curr Opin Struct Biol       Date:  2019-08-02       Impact factor: 6.809

  1 in total

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