Literature DB >> 17204911

Mildronate, an inhibitor of carnitine biosynthesis, induces an increase in gamma-butyrobetaine contents and cardioprotection in isolated rat heart infarction.

Edgars Liepinsh1, Reinis Vilskersts, Dagnija Loca, Olga Kirjanova, Osvalds Pugovichs, Ivars Kalvinsh, Maija Dambrova.   

Abstract

The inhibition of gamma-butyrobetaine (GBB) hydroxylase, a key enzyme in the biosynthesis of carnitine, contributes to lay ground for the cardioprotective mechanism of action of mildronate. By inhibiting the biosynthesis of carnitine, mildronate is supposed to induce the accumulation of GBB, a substrate of GBB hydroxylase. This study describes the changes in content of carnitine and GBB in rat plasma and heart tissues during long-term (28 days) treatment of mildronate [i.p. (intraperitoneal) 100 mg/kg/daily]. Obtained data show that in concert with a decrease in carnitine concentration, the administration of mildronate caused a significant increase in GBB concentration. We detected about a 5-fold increase in GBB contents in the plasma and brain and a 7-fold increase in the heart. In addition, we tested the cardioprotective effect of mildronate in isolated rat heart infarction model after 3, 7, and 14 days of administration. We found a statistically significant decrease in necrotic area of infarcted rat hearts after 14 days of treatment with mildronate. The cardioprotective effect of mildronate correlated with an increase in GBB contents. In conclusion, our study, for the first time, provides experimental evidence that the long-term administration of mildronate not only decreases free carnitine concentration, but also causes a significant increase in GBB concentration, which correlates with the cardioprotection of mildronate.

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Year:  2006        PMID: 17204911     DOI: 10.1097/01.fjc.0000250077.07702.23

Source DB:  PubMed          Journal:  J Cardiovasc Pharmacol        ISSN: 0160-2446            Impact factor:   3.105


  11 in total

1.  Inhibition of L-carnitine biosynthesis and transport by methyl-γ-butyrobetaine decreases fatty acid oxidation and protects against myocardial infarction.

Authors:  E Liepinsh; M Makrecka-Kuka; J Kuka; R Vilskersts; E Makarova; H Cirule; E Loza; D Lola; S Grinberga; O Pugovics; I Kalvins; M Dambrova
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Journal:  J Nutr       Date:  2020-09-01       Impact factor: 4.798

3.  Modulating carnitine levels by targeting its biosynthesis pathway - selective inhibition of γ-butyrobetaine hydroxylase.

Authors:  Anna M Rydzik; Rasheduzzaman Chowdhury; Grazyna T Kochan; Sophie T Williams; Michael A McDonough; Akane Kawamura; Christopher J Schofield
Journal:  Chem Sci       Date:  2014-05-01       Impact factor: 9.825

4.  Protective effects of mildronate in an experimental model of type 2 diabetes in Goto-Kakizaki rats.

Authors:  Edgars Liepinsh; Reinis Vilskersts; Liga Zvejniece; Baiba Svalbe; Elina Skapare; Janis Kuka; Helena Cirule; Solveiga Grinberga; Ivars Kalvinsh; Maija Dambrova
Journal:  Br J Pharmacol       Date:  2009-07-07       Impact factor: 8.739

5.  A photoreactive small-molecule probe for 2-oxoglutarate oxygenases.

Authors:  Akane Kawamura; Alexander Wolf; Dante Rotili; Mikael Altun; Roman Fischer; Ivanhoe K H Leung; Mukram M Mackeen; Ya-Min Tian; Peter J Ratcliffe; Antonello Mai; Benedikt M Kessler; Christopher J Schofield
Journal:  Chem Biol       Date:  2011-05-27

6.  Activated peroxisomal fatty acid metabolism improves cardiac recovery in ischemia-reperfusion.

Authors:  Edgars Liepinsh; Elina Skapare; Janis Kuka; Marina Makrecka; Helena Cirule; Edijs Vavers; Eduards Sevostjanovs; Solveiga Grinberga; Osvalds Pugovics; Maija Dambrova
Journal:  Naunyn Schmiedebergs Arch Pharmacol       Date:  2013-03-26       Impact factor: 3.000

7.  Efficacy and safety of mildronate for acute ischemic stroke: a randomized, double-blind, active-controlled phase II multicenter trial.

Authors:  Yi Zhu; Guangyun Zhang; Jun Zhao; Deshuai Li; Xiaodong Yan; Juanfang Liu; Xuedong Liu; Haibo Zhao; Jielai Xia; Xiao Zhang; Zhengyi Li; Baorong Zhang; Zongcheng Guo; Lianyuan Feng; Zhaodong Zhang; Fang Qu; Gang Zhao
Journal:  Clin Drug Investig       Date:  2013-10       Impact factor: 2.859

8.  Muscle carnitine availability plays a central role in regulating fuel metabolism in the rodent.

Authors:  Craig Porter; Dumitru Constantin-Teodosiu; Despina Constantin; Brendan Leighton; Simon M Poucher; Paul L Greenhaff
Journal:  J Physiol       Date:  2017-07-16       Impact factor: 5.182

9.  Inhibited Carnitine Synthesis Causes Systemic Alteration of Nutrient Metabolism in Zebrafish.

Authors:  Jia-Min Li; Ling-Yu Li; Xuan Qin; Pascal Degrace; Laurent Demizieux; Samwel M Limbu; Xin Wang; Mei-Ling Zhang; Dong-Liang Li; Zhen-Yu Du
Journal:  Front Physiol       Date:  2018-05-09       Impact factor: 4.566

10.  Human carnitine biosynthesis proceeds via (2S,3S)-3-hydroxy-Nε-trimethyllysine.

Authors:  Robert K Leśniak; Suzana Markolovic; Kaspars Tars; Christopher J Schofield
Journal:  Chem Commun (Camb)       Date:  2016-12-22       Impact factor: 6.222

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