Literature DB >> 22512465

Prolidase function in proline metabolism and its medical and biotechnological applications.

R L Kitchener1, A M Grunden.   

Abstract

Prolidase is a multifunctional enzyme that possesses the unique ability to degrade imidodipeptides in which a proline or hydroxyproline residue is located at the C-terminal end. Prolidases have been isolated from archaea and bacteria, where they are thought to participate in proline recycling. In mammalian species, prolidases are found in the cytoplasm and function primarily to liberate proline in the final stage of protein catabolism, particularly during the biosynthesis and degradation of collagen. Collagen comprises nearly one-third of the total protein in the body, and it is essential in maintaining tissue structure and integrity. Prolidase deficiency (PD), a rare autosomal recessive disorder in which mutations in the PEPD gene affect prolidase functionality, tends to have serious and sometimes life-threatening clinical symptoms. Recombinant prolidases have many applications and have been investigated not only as a possible treatment for PD, but also as a part of anti-cancer strategies, a component of biodecontamination cocktails and in the dairy industry. This review will serve to discuss the many in vivo functions of procaryotic and eucaryotic prolidases, as well as the most recent advances in therapeutic and biotechnological application of prolidases.
© 2012 The Authors Journal of Applied Microbiology © 2012 The Society for Applied Microbiology.

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Year:  2012        PMID: 22512465     DOI: 10.1111/j.1365-2672.2012.05310.x

Source DB:  PubMed          Journal:  J Appl Microbiol        ISSN: 1364-5072            Impact factor:   3.772


  29 in total

1.  Structure of recombinant prolidase from Thermococcus sibiricus in space group P21221.

Authors:  Vladimir Timofeev; Elvira Slutskaya; Marina Gorbacheva; Konstantin Boyko; Tatiana Rakitina; Dmitry Korzhenevskiy; Alexey Lipkin; Vladimir Popov
Journal:  Acta Crystallogr F Struct Biol Commun       Date:  2015-07-28       Impact factor: 1.056

2.  Sex-specific association of the peptidase D gene rs731839 polymorphism and serum lipid levels in the Mulao and Han populations.

Authors:  Quan-Zhen Lin; Rui-Xing Yin; Jian Wu; Tao Guo; Wei Wang; Jia-Qi Sun; Guang-Yuan Shi; Shao-Wen Shen; Jin-Zhen Wu; Shang-Ling Pan
Journal:  Int J Clin Exp Pathol       Date:  2014-06-15

3.  The relationships among the levels of oxidative and antioxidative parameters, FEV1 and prolidase activity in COPD.

Authors:  Selami Ekin; Ahmet Arısoy; Hulya Gunbatar; Bunyamin Sertogullarindan; Aysel Sunnetcioglu; Hatice Sezen; Selvi Asker; Hanifi Yıldız
Journal:  Redox Rep       Date:  2016-02-15       Impact factor: 4.412

4.  Dysregulation of macrophage PEPD in obesity determines adipose tissue fibro-inflammation and insulin resistance.

Authors:  V Pellegrinelli; S Rodriguez-Cuenca; C Rouault; E Figueroa-Juarez; H Schilbert; S Virtue; J M Moreno-Navarrete; G Bidault; M C Vázquez-Borrego; A R Dias; B Pucker; M Dale; M Campbell; S Carobbio; Y H Lin; M Vacca; J Aron-Wisnewsky; S Mora; M M Masiero; A Emmanouilidou; S Mukhopadhyay; G Dougan; M den Hoed; R J F Loos; J M Fernández-Real; D Chiarugi; K Clément; A Vidal-Puig
Journal:  Nat Metab       Date:  2022-04-25

5.  Prolidase is required for early trafficking events during influenza A virus entry.

Authors:  Marie O Pohl; Thomas O Edinger; Silke Stertz
Journal:  J Virol       Date:  2014-07-16       Impact factor: 5.103

6.  Serum prolidase activity and oxidant-antioxidant status in children with chronic hepatitis B virus infection.

Authors:  Velat Şen; Ünal Uluca; Aydın Ece; İbrahim Kaplan; Fatma Bozkurt; Fesih Aktar; Sedat Bağlı; Recep Tekin
Journal:  Ital J Pediatr       Date:  2014-11-26       Impact factor: 2.638

7.  Structural basis of substrate selectivity of E. coli prolidase.

Authors:  Jeremy Weaver; Tylan Watts; Pingwei Li; Hays S Rye
Journal:  PLoS One       Date:  2014-10-29       Impact factor: 3.240

8.  Pleiotropic genes for metabolic syndrome and inflammation.

Authors:  Aldi T Kraja; Daniel I Chasman; Kari E North; Alexander P Reiner; Lisa R Yanek; Tuomas O Kilpeläinen; Jennifer A Smith; Abbas Dehghan; Josée Dupuis; Andrew D Johnson; Mary F Feitosa; Fasil Tekola-Ayele; Audrey Y Chu; Ilja M Nolte; Zari Dastani; Andrew Morris; Sarah A Pendergrass; Yan V Sun; Marylyn D Ritchie; Ahmad Vaez; Honghuang Lin; Symen Ligthart; Letizia Marullo; Rebecca Rohde; Yaming Shao; Mark A Ziegler; Hae Kyung Im; Renate B Schnabel; Torben Jørgensen; Marit E Jørgensen; Torben Hansen; Oluf Pedersen; Ronald P Stolk; Harold Snieder; Albert Hofman; Andre G Uitterlinden; Oscar H Franco; M Arfan Ikram; J Brent Richards; Charles Rotimi; James G Wilson; Leslie Lange; Santhi K Ganesh; Mike Nalls; Laura J Rasmussen-Torvik; James S Pankow; Josef Coresh; Weihong Tang; W H Linda Kao; Eric Boerwinkle; Alanna C Morrison; Paul M Ridker; Diane M Becker; Jerome I Rotter; Sharon L R Kardia; Ruth J F Loos; Martin G Larson; Yi-Hsiang Hsu; Michael A Province; Russell Tracy; Benjamin F Voight; Dhananjay Vaidya; Christopher J O'Donnell; Emelia J Benjamin; Behrooz Z Alizadeh; Inga Prokopenko; James B Meigs; Ingrid B Borecki
Journal:  Mol Genet Metab       Date:  2014-05-09       Impact factor: 4.797

9.  Host Protein Biomarkers Identify Active Tuberculosis in HIV Uninfected and Co-infected Individuals.

Authors:  Jacqueline M Achkar; Laetitia Cortes; Pascal Croteau; Corey Yanofsky; Marija Mentinova; Isabelle Rajotte; Michael Schirm; Yiyong Zhou; Ana Paula Junqueira-Kipnis; Victoria O Kasprowicz; Michelle Larsen; René Allard; Joanna Hunter; Eustache Paramithiotis
Journal:  EBioMedicine       Date:  2015-07-30       Impact factor: 8.143

10.  Genetic architecture of 11 organ traits derived from abdominal MRI using deep learning.

Authors:  E Louise Thomas; Madeleine Cule; Yi Liu; Nicolas Basty; Brandon Whitcher; Jimmy D Bell; Elena P Sorokin; Nick van Bruggen
Journal:  Elife       Date:  2021-06-15       Impact factor: 8.140

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