Literature DB >> 36056163

Taurine protects R28 cells from hypoxia/re-oxygenation-induced damage via regulation of mitochondrial energy metabolism.

Wei Lu1, Yuting Yang1, Shunxiang Gao1, Jihong Wu1, Xinghuai Sun2,3,4.   

Abstract

Oxidative-induced damage and hypoxia/re-oxygenation (H/R) injury are common causes of irreversible visual impairment. The goals of this study were to explore the effects of taurine on R28 cells under the two damage models and the underlying mechanisms. Low doses of taurine supplementation promoted cell viability, mitochondrial membrane potential (MMP), SOD levels, ATP contents and attenuated cytotoxicity and intracellular ROS generation of the R28 cells under the two kinds of damage. The expression level of GTPBP3, a mitochondrial-tRNA (mt-tRNA) modification enzyme that catalyzes the taurine involved modification, was decreased under the two damage and taurine could reverse the reduction. After knocking down GTPBP3, the R28 cells become vulnerable to damage. The viability, cytotoxicity, MMP and intracellular ROS level of knockdown cells changed more obviously under the H/R injury than those of control cell. We also found that knockdown of GTPBP3 significantly decreased mitochondrial energy metabolism by measuring the oxidative respiration rate by the Seahorse XFe24 extracellular flux analyzer. The protection of low doses of taurine disappeared on knockdown R28 cells, indicating that GTPBP3 is crucial in the protection mechanisms of taurine. However, the impacts of the reduction of GTPBP3 level can be reversed by relatively high doses of taurine, implying the protection effects of taurine were dose-dependent, and there were more complicated mechanisms remain to be explored. This study explored a new mechanism of the neuroprotective effects of taurine, which depend on the GTPBP3-mediated taurine modification of mt-tRNAs and the promotion of mitochondrial energy metabolism.
© 2022. The Author(s).

Entities:  

Keywords:  GTPBP3; Hypoxia/re-oxygenation; Mitochondrial energy metabolism; Seahorse; Taurine

Year:  2022        PMID: 36056163     DOI: 10.1007/s00726-022-03199-5

Source DB:  PubMed          Journal:  Amino Acids        ISSN: 0939-4451            Impact factor:   3.789


  33 in total

Review 1.  Mitochondria, oxidants, and aging.

Authors:  Robert S Balaban; Shino Nemoto; Toren Finkel
Journal:  Cell       Date:  2005-02-25       Impact factor: 41.582

2.  Defective Mitochondrial tRNA Taurine Modification Activates Global Proteostress and Leads to Mitochondrial Disease.

Authors:  Md Fakruddin; Fan-Yan Wei; Takeo Suzuki; Kana Asano; Takashi Kaieda; Akiko Omori; Ryoma Izumi; Atsushi Fujimura; Taku Kaitsuka; Keishi Miyata; Kimi Araki; Yuichi Oike; Luca Scorrano; Tsutomu Suzuki; Kazuhito Tomizawa
Journal:  Cell Rep       Date:  2018-01-09       Impact factor: 9.423

3.  Identification of p58IPK as a novel neuroprotective factor for retinal neurons.

Authors:  Evgenii Boriushkin; Joshua J Wang; Junhua Li; Guangjun Jing; Gail M Seigel; Sarah X Zhang
Journal:  Invest Ophthalmol Vis Sci       Date:  2015-02-05       Impact factor: 4.799

4.  The defective expression of gtpbp3 related to tRNA modification alters the mitochondrial function and development of zebrafish.

Authors:  Danni Chen; Feng Li; Qingxian Yang; Miao Tian; Zengming Zhang; Qinghai Zhang; Ye Chen; Min-Xin Guan
Journal:  Int J Biochem Cell Biol       Date:  2016-05-13       Impact factor: 5.085

5.  The antioxidant action of taurine, hypotaurine and their metabolic precursors.

Authors:  O I Aruoma; B Halliwell; B M Hoey; J Butler
Journal:  Biochem J       Date:  1988-11-15       Impact factor: 3.857

Review 6.  Significance of taurine transporter (TauT) in homeostasis and its layers of regulation (Review).

Authors:  Stella Baliou; Anthony M Kyriakopoulos; Maria Goulielmaki; Michalis I Panayiotidis; Demetrios A Spandidos; Vassilios Zoumpourlis
Journal:  Mol Med Rep       Date:  2020-07-09       Impact factor: 2.952

7.  Matching tRNA modifications in humans to their known and predicted enzymes.

Authors:  Valérie de Crécy-Lagard; Pietro Boccaletto; Carl G Mangleburg; Puneet Sharma; Todd M Lowe; Sebastian A Leidel; Janusz M Bujnicki
Journal:  Nucleic Acids Res       Date:  2019-03-18       Impact factor: 16.971

8.  Deletion of Gtpbp3 in zebrafish revealed the hypertrophic cardiomyopathy manifested by aberrant mitochondrial tRNA metabolism.

Authors:  Danni Chen; Zengming Zhang; Chao Chen; Shihao Yao; Qingxian Yang; Feng Li; Xiao He; Cheng Ai; Meng Wang; Min-Xin Guan
Journal:  Nucleic Acids Res       Date:  2019-06-04       Impact factor: 16.971

9.  Taurine provides neuroprotection against retinal ganglion cell degeneration.

Authors:  Nicolas Froger; Lucia Cadetti; Henri Lorach; Joao Martins; Alexis-Pierre Bemelmans; Elisabeth Dubus; Julie Degardin; Dorothée Pain; Valérie Forster; Laurent Chicaud; Ivana Ivkovic; Manuel Simonutti; Stéphane Fouquet; Firas Jammoul; Thierry Léveillard; Ryad Benosman; José-Alain Sahel; Serge Picaud
Journal:  PLoS One       Date:  2012-10-24       Impact factor: 3.240

10.  Metabolic and chemical regulation of tRNA modification associated with taurine deficiency and human disease.

Authors:  Kana Asano; Takeo Suzuki; Ayaka Saito; Fan-Yan Wei; Yoshiho Ikeuchi; Tomoyuki Numata; Ryou Tanaka; Yoshihisa Yamane; Takeshi Yamamoto; Takanobu Goto; Yoshihito Kishita; Kei Murayama; Akira Ohtake; Yasushi Okazaki; Kazuhito Tomizawa; Yuriko Sakaguchi; Tsutomu Suzuki
Journal:  Nucleic Acids Res       Date:  2018-02-28       Impact factor: 16.971

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