Literature DB >> 28990412

Structural Biology of Proline Catabolic Enzymes.

John J Tanner1,2.   

Abstract

SIGNIFICANCE: Proline catabolism refers to the 4-electron oxidation of proline to glutamate catalyzed by the enzymes proline dehydrogenase (PRODH) and l-glutamate γ-semialdehyde dehydrogenase (GSALDH, or ALDH4A1). These enzymes and the intermediate metabolites of the pathway have been implicated in tumor growth and suppression, metastasis, hyperprolinemia metabolic disorders, schizophrenia susceptibility, life span extension, and pathogen virulence and survival. In some bacteria, PRODH and GSALDH are combined into a bifunctional enzyme known as proline utilization A (PutA). PutAs are not only virulence factors in some pathogenic bacteria but also fascinating systems for studying the coordination of metabolic enzymes via substrate channeling. Recent Advances: The past decade has seen an explosion of structural data for proline catabolic enzymes. This review surveys these structures, emphasizing protein folds, substrate recognition, oligomerization, kinetic mechanisms, and substrate channeling in PutA. CRITICAL ISSUES: Major unsolved structural targets include eukaryotic PRODH, the complex between monofunctional PRODH and monofunctional GSALDH, and the largest of all PutAs, trifunctional PutA. The structural basis of PutA-membrane association is poorly understood. Fundamental aspects of substrate channeling in PutA remain unknown, such as the identity of the channeled intermediate, how the tunnel system is activated, and the roles of ancillary tunnels. FUTURE DIRECTIONS: New approaches are needed to study the molecular and in vivo mechanisms of substrate channeling. With the discovery of the proline cycle driving tumor growth and metastasis, the development of inhibitors of proline metabolic enzymes has emerged as an exciting new direction. Structural biology will be important in these endeavors.

Entities:  

Keywords:  aldehyde dehydrogenase 4A1; proline dehydrogenase; proline utilization A; protein oligomerization; substrate channeling

Mesh:

Substances:

Year:  2017        PMID: 28990412      PMCID: PMC6338584          DOI: 10.1089/ars.2017.7374

Source DB:  PubMed          Journal:  Antioxid Redox Signal        ISSN: 1523-0864            Impact factor:   8.401


  152 in total

Review 1.  Advances in kinetic protein crystallography.

Authors:  Dominique Bourgeois; Antoine Royant
Journal:  Curr Opin Struct Biol       Date:  2005-10       Impact factor: 6.809

2.  The metabolism of proline as microenvironmental stress substrate.

Authors:  James M Phang; Jui Pandhare; Yongmin Liu
Journal:  J Nutr       Date:  2008-10       Impact factor: 4.798

3.  Proline metabolism in procyclic Trypanosoma brucei is down-regulated in the presence of glucose.

Authors:  Nadia Lamour; Loïc Rivière; Virginie Coustou; Graham H Coombs; Michael P Barrett; Frédéric Bringaud
Journal:  J Biol Chem       Date:  2005-01-21       Impact factor: 5.157

Review 4.  The TIM-barrel fold: a versatile framework for efficient enzymes.

Authors:  R K Wierenga
Journal:  FEBS Lett       Date:  2001-03-16       Impact factor: 4.124

Review 5.  Human aldehyde dehydrogenase gene family.

Authors:  A Yoshida; A Rzhetsky; L C Hsu; C Chang
Journal:  Eur J Biochem       Date:  1998-02-01

6.  Human glutamic-gamma-semialdehyde dehydrogenase. Kinetic mechanism.

Authors:  C Forte-McRobbie; R Pietruszko
Journal:  Biochem J       Date:  1989-08-01       Impact factor: 3.857

7.  Structures of the PutA peripheral membrane flavoenzyme reveal a dynamic substrate-channeling tunnel and the quinone-binding site.

Authors:  Harkewal Singh; Benjamin W Arentson; Donald F Becker; John J Tanner
Journal:  Proc Natl Acad Sci U S A       Date:  2014-02-18       Impact factor: 11.205

8.  Flavin redox state triggers conformational changes in the PutA protein from Escherichia coli.

Authors:  Weidong Zhu; Donald F Becker
Journal:  Biochemistry       Date:  2003-05-13       Impact factor: 3.162

9.  Genes required for mycobacterial growth defined by high density mutagenesis.

Authors:  Christopher M Sassetti; Dana H Boyd; Eric J Rubin
Journal:  Mol Microbiol       Date:  2003-04       Impact factor: 3.501

10.  Engineering a trifunctional proline utilization A chimaera by fusing a DNA-binding domain to a bifunctional PutA.

Authors:  Benjamin W Arentson; Erin L Hayes; Weidong Zhu; Harkewal Singh; John J Tanner; Donald F Becker
Journal:  Biosci Rep       Date:  2016-11-22       Impact factor: 3.840

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  19 in total

1.  Structural and Biochemical Characterization of Aldehyde Dehydrogenase 12, the Last Enzyme of Proline Catabolism in Plants.

Authors:  David A Korasick; Radka Končitíková; Martina Kopečná; Eva Hájková; Armelle Vigouroux; Solange Moréra; Donald F Becker; Marek Šebela; John J Tanner; David Kopečný
Journal:  J Mol Biol       Date:  2018-12-21       Impact factor: 5.469

2.  Redox Modulation of Oligomeric State in Proline Utilization A.

Authors:  David A Korasick; Ashley C Campbell; Shelbi L Christgen; Srinivas Chakravarthy; Tommi A White; Donald F Becker; John J Tanner
Journal:  Biophys J       Date:  2018-06-19       Impact factor: 4.033

3.  Structure-affinity relationships of reversible proline analog inhibitors targeting proline dehydrogenase.

Authors:  Alexandra N Bogner; John J Tanner
Journal:  Org Biomol Chem       Date:  2022-01-26       Impact factor: 3.876

4.  Evidence for Proline Catabolic Enzymes in the Metabolism of Thiazolidine Carboxylates.

Authors:  Yizi Mao; Javier Seravalli; Thomas G Smith; Martha Morton; John J Tanner; Donald F Becker
Journal:  Biochemistry       Date:  2021-11-09       Impact factor: 3.162

5.  Covalent Modification of the Flavin in Proline Dehydrogenase by Thiazolidine-2-Carboxylate.

Authors:  Ashley C Campbell; Donald F Becker; Kent S Gates; John J Tanner
Journal:  ACS Chem Biol       Date:  2020-03-18       Impact factor: 5.100

Review 6.  Role of Proline in Pathogen and Host Interactions.

Authors:  Shelbi L Christgen; Donald F Becker
Journal:  Antioxid Redox Signal       Date:  2018-02-02       Impact factor: 8.401

7.  The Proline Cycle As a Potential Cancer Therapy Target.

Authors:  John J Tanner; Sarah-Maria Fendt; Donald F Becker
Journal:  Biochemistry       Date:  2018-04-23       Impact factor: 3.162

8.  Structural analysis of prolines and hydroxyprolines binding to the l-glutamate-γ-semialdehyde dehydrogenase active site of bifunctional proline utilization A.

Authors:  Ashley C Campbell; Alexandra N Bogner; Yizi Mao; Donald F Becker; John J Tanner
Journal:  Arch Biochem Biophys       Date:  2020-12-18       Impact factor: 4.013

9.  Structural Basis for the Substrate Inhibition of Proline Utilization A by Proline.

Authors:  David A Korasick; Travis A Pemberton; Benjamin W Arentson; Donald F Becker; John J Tanner
Journal:  Molecules       Date:  2017-12-23       Impact factor: 4.411

10.  Structural basis for the stereospecific inhibition of the dual proline/hydroxyproline catabolic enzyme ALDH4A1 by trans-4-hydroxy-L-proline.

Authors:  Alexandra N Bogner; Kyle M Stiers; Cole M McKay; Donald F Becker; John J Tanner
Journal:  Protein Sci       Date:  2021-06-04       Impact factor: 6.993

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