Structures of Pathogenic Fungal FKBP12s Reveal Possible Self-Catalysis Function

Invasive fungal infections remain difficult to treat and require novel targeting strategies. The 12-kDa FK506-binding protein (FKBP12) is a ubiquitously expressed peptidyl-prolyl isomerase with considerable homology between fungal pathogens and is thus a prime candidate for future targeting efforts...

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Main Authors: Nam K. Tonthat, Praveen Rao Juvvadi, Hengshan Zhang, Soo Chan Lee, Ron Venters, Leonard Spicer, William J. Steinbach, Joseph Heitman, Maria A. Schumacher
Format: Article
Language:English
Published: American Society for Microbiology 2016-04-01
Series:mBio
Online Access:http://mbio.asm.org/cgi/content/full/7/2/e00492-16
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spelling doaj-dc32fd632606417c991e077722ee8ed22021-07-02T01:50:38ZengAmerican Society for MicrobiologymBio2150-75112016-04-0172e00492-1610.1128/mBio.00492-16Structures of Pathogenic Fungal FKBP12s Reveal Possible Self-Catalysis FunctionNam K. TonthatPraveen Rao JuvvadiHengshan ZhangSoo Chan LeeRon VentersLeonard SpicerWilliam J. SteinbachJoseph HeitmanMaria A. SchumacherInvasive fungal infections remain difficult to treat and require novel targeting strategies. The 12-kDa FK506-binding protein (FKBP12) is a ubiquitously expressed peptidyl-prolyl isomerase with considerable homology between fungal pathogens and is thus a prime candidate for future targeting efforts to generate a panfungal strategy. Despite decades of research on FKBPs, their substrates and mechanisms of action remain unclear. Here we describe structural, biochemical, and in vivo analyses of FKBP12s from the pathogenic fungi Candida albicans, Candida glabrata, and Aspergillus fumigatus. Strikingly, multiple apo A. fumigatus and C. albicans FKBP12 crystal structures revealed a symmetric, intermolecular interaction involving the deep insertion of an active-site loop proline into the active-site pocket of an adjacent subunit. Such interactions have not been observed in previous FKBP structures. This finding indicates the possibility that this is a self-substrate interaction unique to the A. fumigatus and C. albicans fungal proteins that contain this central proline. Structures obtained with the proline in the cis and trans states provide more data in support of self-catalysis. Moreover, cysteine cross-linking experiments captured the interacting dimer, supporting the idea that it forms in solution. Finally, genetic studies exploring the impact of mutations altering the central proline and an adjacent residue provide evidence that any dimeric state formed in vivo, where FKBP12 concentrations are low, is transient. Taken together, these findings suggest a unique mechanism of self-substrate regulation by fungal FKBP12s, lending further novel understanding of this protein for future drug-targeting efforts.http://mbio.asm.org/cgi/content/full/7/2/e00492-16
collection DOAJ
language English
format Article
sources DOAJ
author Nam K. Tonthat
Praveen Rao Juvvadi
Hengshan Zhang
Soo Chan Lee
Ron Venters
Leonard Spicer
William J. Steinbach
Joseph Heitman
Maria A. Schumacher
spellingShingle Nam K. Tonthat
Praveen Rao Juvvadi
Hengshan Zhang
Soo Chan Lee
Ron Venters
Leonard Spicer
William J. Steinbach
Joseph Heitman
Maria A. Schumacher
Structures of Pathogenic Fungal FKBP12s Reveal Possible Self-Catalysis Function
mBio
author_facet Nam K. Tonthat
Praveen Rao Juvvadi
Hengshan Zhang
Soo Chan Lee
Ron Venters
Leonard Spicer
William J. Steinbach
Joseph Heitman
Maria A. Schumacher
author_sort Nam K. Tonthat
title Structures of Pathogenic Fungal FKBP12s Reveal Possible Self-Catalysis Function
title_short Structures of Pathogenic Fungal FKBP12s Reveal Possible Self-Catalysis Function
title_full Structures of Pathogenic Fungal FKBP12s Reveal Possible Self-Catalysis Function
title_fullStr Structures of Pathogenic Fungal FKBP12s Reveal Possible Self-Catalysis Function
title_full_unstemmed Structures of Pathogenic Fungal FKBP12s Reveal Possible Self-Catalysis Function
title_sort structures of pathogenic fungal fkbp12s reveal possible self-catalysis function
publisher American Society for Microbiology
series mBio
issn 2150-7511
publishDate 2016-04-01
description Invasive fungal infections remain difficult to treat and require novel targeting strategies. The 12-kDa FK506-binding protein (FKBP12) is a ubiquitously expressed peptidyl-prolyl isomerase with considerable homology between fungal pathogens and is thus a prime candidate for future targeting efforts to generate a panfungal strategy. Despite decades of research on FKBPs, their substrates and mechanisms of action remain unclear. Here we describe structural, biochemical, and in vivo analyses of FKBP12s from the pathogenic fungi Candida albicans, Candida glabrata, and Aspergillus fumigatus. Strikingly, multiple apo A. fumigatus and C. albicans FKBP12 crystal structures revealed a symmetric, intermolecular interaction involving the deep insertion of an active-site loop proline into the active-site pocket of an adjacent subunit. Such interactions have not been observed in previous FKBP structures. This finding indicates the possibility that this is a self-substrate interaction unique to the A. fumigatus and C. albicans fungal proteins that contain this central proline. Structures obtained with the proline in the cis and trans states provide more data in support of self-catalysis. Moreover, cysteine cross-linking experiments captured the interacting dimer, supporting the idea that it forms in solution. Finally, genetic studies exploring the impact of mutations altering the central proline and an adjacent residue provide evidence that any dimeric state formed in vivo, where FKBP12 concentrations are low, is transient. Taken together, these findings suggest a unique mechanism of self-substrate regulation by fungal FKBP12s, lending further novel understanding of this protein for future drug-targeting efforts.
url http://mbio.asm.org/cgi/content/full/7/2/e00492-16
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