A new EPOR/CD131 heteroreceptor agonist EP-11-1: a neuroprotective effect in experimental traumatic brain injury
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A. V. Gureeva | M. Korokin | V. Gureev | M. Zatolokina | L. A. Zhilinkova | I. Kolesnik | O. V. Antsiferov | R. F. Cherevatenko | E. V. Avdeyeva
[1] M. Kubekina,et al. STUDY OF THE PHARMACOLOGICAL ACTIVITY OF NOVEL EPOR/CD131 HETERORECEPTOR AGONISTS IN MICE WITH ENDOTHELIAL-SPECIFIC EXPRESSION OF MUTANT POLG GENE , 2021, Pharmacy & Pharmacology.
[2] I. Tyurenkov,et al. Neuroprotective action of Cortexin, Cerebrolysin and Actovegin in acute or chronic brain ischemia in rats , 2021, PloS one.
[3] V. Soldatov,et al. Cerebroprotective Effects of 2-Ethyl-6-methyl-3-hydroxypyridine-2,6-dichlorophenyl(amino)phenylethanoic Acid in the Treatment of Purulent Meningitis , 2021, Biomedicines.
[4] Qing Jun Wang,et al. Differential Leukocyte and Platelet Profiles in Distinct Models of Traumatic Brain Injury , 2021, Cells.
[5] V. Gureev,et al. THE SEARCH FOR NEUROPROTECTIVE COMPOUNDS AMONG NEW ETHYLTHIADIAZOLE DERIVATIVES , 2021, Pharmacy & Pharmacology.
[6] V. Soldatov,et al. STUDY OF ANTIATHEROSCLEROTIC AND ENDOTHELIOPROTECTIVE ACTIVITY OF PEPTIDE AGONISTS OF EPOR/CD131 HETERORECEPTOR , 2020, Pharmacy & Pharmacology.
[7] V. Petit,et al. Application of Citicoline in Neurological Disorders: A Systematic Review , 2020, Nutrients.
[8] V. Soldatov,et al. Erythropoietin Mimetic Peptide (pHBSP) Corrects Endothelial Dysfunction in a Rat Model of Preeclampsia , 2020, International journal of molecular sciences.
[9] A. Kamel,et al. Novel Validated Analytical Method Based on Potentiometric Transduction for the Determination of Citicoline Psychostimulant/Nootropic Agent , 2020, Molecules.
[10] A. V. Gureeva,et al. Preclinical study of innovative peptides mimicking the space structure of the α-helix B of erythropoietin , 2020 .
[11] I. Golubev,et al. Correction of functional disorders in ADMA-like preeclampsia with derivatives of the peptide imitating erythropoietin α-helix B , 2020, Курский научно-практический вестник «Человек и его здоровье».
[12] E. Tremoli,et al. Platelets in Healthy and Disease States: From Biomarkers Discovery to Drug Targets Identification by Proteomics , 2020, International journal of molecular sciences.
[13] M. C. Kenney,et al. Role of Citicoline in an in vitro AMD model , 2020, Aging.
[14] T. Walker,et al. Platelets in Neurodegenerative Conditions—Friend or Foe? , 2020, Frontiers in Immunology.
[15] T. I. Lokteva,et al. Correction of morphofunctional disorders of the cardiovascular system with asialized erythropoietin and arginase II selective inhibitors KUD 974 and KUD 259 in experimental preeclampsia , 2020 .
[16] A. Caporossi,et al. Cytidine 5′-Diphosphocholine (Citicoline): Evidence for a Neuroprotective Role in Glaucoma , 2020, Nutrients.
[17] Bo Peng,et al. Erythropoietin and its derivatives: from tissue protection to immune regulation , 2020, Cell Death & Disease.
[18] J. Simard,et al. Role of Sulfonylurea Receptor 1 and Glibenclamide in Traumatic Brain Injury: A Review of the Evidence , 2020, International journal of molecular sciences.
[19] J. Martí-Fàbregas,et al. Citicoline for treating people with acute ischemic stroke , 2018, Cochrane Database of Systematic Reviews.
[20] V. Soldatov,et al. STUDY OF ANTI-AGGREGATE AND ANTITHROMBOTIC EFFECTS OF 11-AMINO ACID DERIVATIVES OF ERYTHROPOETIN OBTAINED USING BLAST SCREENING , 2020, Современные проблемы науки и образования (Modern Problems of Science and Education).
[21] V. Soldatov,et al. Peptides mimicking the spatial structure of erythropoietin α-chain B — new possibilities for the treatment and prevention of hyperhomocysteine-induced endothelial dysfunction , 2020 .
[22] O. Martynova,et al. The study of neurodynamic disturbances in rats with cranial injury , 2019, Research Results in Biomedicine.
[23] D. Atochin,et al. Protective Effects of a New C-Jun N-terminal Kinase Inhibitor in the Model of Global Cerebral Ischemia in Rats , 2019, Molecules.
[24] Hongming Zhang,et al. Trimetazidine Attenuates Exhaustive Exercise-Induced Myocardial Injury in Rats via Regulation of the Nrf2/NF-κB Signaling Pathway , 2019, Front. Pharmacol..
[25] B. Vissel,et al. L-Carnitine and extendin-4 improve outcomes following moderate brain contusion injury , 2018, Scientific Reports.
[26] N. Pons,et al. Indole, a Signaling Molecule Produced by the Gut Microbiota, Negatively Impacts Emotional Behaviors in Rats , 2018, Front. Neurosci..
[27] Chitu Iulia,et al. Citicoline – a neuroprotector with proven effects on glaucomatous disease , 2017, Romanian journal of ophthalmology.
[28] Hayder M Al-Kuraishy,et al. Central Beneficial Effects of Trimetazidine on Psychomotor Performance in Normal Healthy Volunteers , 2017, Advanced biomedical research.
[29] O. Martynova,et al. THE FEATURES OF NEUROLOGICAL STATUS WHEN PLAYING TWO-AND FOUR- VASCULAR MODELS OF CEREBRAL ISCHEMIA IN RATS , 2016 .
[30] M. Chopp,et al. Investigational agents for treatment of traumatic brain injury , 2015, Expert opinion on investigational drugs.
[31] Albert Dahan,et al. ARA 290, a Nonerythropoietic Peptide Engineered from Erythropoietin, Improves Metabolic Control and Neuropathic Symptoms in Patients with Type 2 Diabetes , 2015, Molecular medicine.
[32] M. Brines. Discovery of a Master Regulator of Injury and Healing: Tipping the Outcome from Damage toward Repair , 2014, Molecular medicine.
[33] D. Hermann,et al. Effects of neural progenitor cells on post-stroke neurological impairment—a detailed and comprehensive analysis of behavioral tests , 2014, Front. Cell. Neurosci..
[34] C. Robertson,et al. Endothelial Nitric Oxide Synthase Mediates the Cerebrovascular Effects of Erythropoietin in Traumatic Brain Injury , 2014, Front. Immunol..
[35] J Mocco,et al. Journal of Central Nervous System Disease , 2022 .
[36] T. Watkins,et al. Traumatic brain injury-associated coagulopathy. , 2012, Journal of neurotrauma.
[37] J. Szmydynger-Chodobska,et al. Blood–Brain Barrier Pathophysiology in Traumatic Brain Injury , 2011, Translational Stroke Research.
[38] B. Turgut,et al. Trimetazidine for prevention of induced ischemia and reperfusion of guinea pig retina , 2009, Clinical ophthalmology.
[39] B. Testa,et al. [3H]‐Trimetazidine mitochondrial binding sites: regulation by cations, effect of trimetazidine derivatives and other agents and interaction with an endogenous substance , 2000, British journal of pharmacology.