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Swimming Improves Memory and Antioxidant Defense in an Animal Model of Duchenne Muscular Dystrophy.

Nocetti, PM ; Alberti, A ; et al.
In: Molecular neurobiology, Jg. 58 (2021-10-01), Heft 10, S. 5067-5077
Online academicJournal

Titel:
Swimming Improves Memory and Antioxidant Defense in an Animal Model of Duchenne Muscular Dystrophy.
Autor/in / Beteiligte Person: Nocetti, PM ; Alberti, A ; Freiberger, V ; Ventura, L ; Grigollo, LR ; Andreau, CS ; Júnior, RJN ; Martins, DF ; Comim, CM
Link:
Zeitschrift: Molecular neurobiology, Jg. 58 (2021-10-01), Heft 10, S. 5067-5077
Veröffentlichung: Clifton, NJ : Humana Press, c1987-, 2021
Medientyp: academicJournal
ISSN: 1559-1182 (electronic)
DOI: 10.1007/s12035-021-02482-y
Schlagwort:
  • Animals
  • Brain metabolism
  • Male
  • Memory Disorders genetics
  • Memory Disorders metabolism
  • Memory Disorders therapy
  • Mice
  • Mice, Inbred C57BL
  • Mice, Inbred mdx
  • Muscular Dystrophy, Duchenne psychology
  • Oxidative Stress physiology
  • Physical Conditioning, Animal methods
  • Physical Conditioning, Animal psychology
  • Swimming psychology
  • Antioxidants metabolism
  • Memory physiology
  • Muscular Dystrophy, Duchenne metabolism
  • Muscular Dystrophy, Duchenne therapy
  • Physical Conditioning, Animal physiology
  • Swimming physiology
Sonstiges:
  • Nachgewiesen in: MEDLINE
  • Sprachen: English
  • Publication Type: Journal Article
  • Language: English
  • [Mol Neurobiol] 2021 Oct; Vol. 58 (10), pp. 5067-5077. <i>Date of Electronic Publication: </i>2021 Jul 10.
  • MeSH Terms: Antioxidants / *metabolism ; Memory / *physiology ; Muscular Dystrophy, Duchenne / *metabolism ; Muscular Dystrophy, Duchenne / *therapy ; Physical Conditioning, Animal / *physiology ; Swimming / *physiology ; Animals ; Brain / metabolism ; Male ; Memory Disorders / genetics ; Memory Disorders / metabolism ; Memory Disorders / therapy ; Mice ; Mice, Inbred C57BL ; Mice, Inbred mdx ; Muscular Dystrophy, Duchenne / psychology ; Oxidative Stress / physiology ; Physical Conditioning, Animal / methods ; Physical Conditioning, Animal / psychology ; Swimming / psychology
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(PMID: 10.1016/j.freeradbiomed.2015.01.023) ; Mazzardo-Martins L, Martins DF, Marcon R, Santos UD, Speckhann B, Gadotti VM et al (2010) High-intensity extended swimming exercise reduces pain-related behavior in mice: involvement of endogenous opioids and the serotonergic system. J Pain 11:1384–1393. (PMID: 10.1016/j.jpain.2010.03.015) ; Ishii H, Nishida Y (2013) Effect of lactate accumulation during exercise-induced muscle fatigue on the sensorimotor cortex. J Phys Ther Sci 25:1637–1642. (PMID: 10.1589/jpts.25.1637) ; Leussis MP, Bolivar VJ (2006) Habituation in rodents: a review of behavior, neurobiology, and genetics. Neurosc and Biobehav Rev 30:1045–1064. (PMID: 10.1016/j.neubiorev.2006.03.006) ; Ogihara CA, Schoorlemmer GH, Lazari MF, Giannocco G, Lopes OU, Colombari E, Sato MA (2014) Swimming exercise changes hemodynamic responses evoked by blockade of excitatory amino receptors in the rostral ventrolateral medulla in spontaneously hypertensive rats. BioMed Res Int 2014:1–9. ; Levine A, Tenhaken R, Dixon R, Lamb C (1994) H2O2 from the oxidative burst orchestrates the plant hypersensitive disease resistance response. Cell 79:583–593. (PMID: 10.1016/0092-8674(94)90544-4) ; Schubert MM, Washburn RA, Honas JJ, Lee J, Donnelly JE (2015) Exercise volume and aerobic fitness in young adults: the Midwest Exercise Trial-2. Springerplus 5:183. (PMID: 10.1186/s40064-016-1850-0) ; Gaesser GA, Poole DC (1996) The slow component of oxygen uptake kinetics in humans. Exerc Sport Sci Rev 24:35–71. (PMID: 10.1249/00003677-199600240-00004) ; Comim CM, Tuon L, Stertz L, Vainzof M, Kapczinski F (2009) Quevedo J (2009) Striatum brain-derived neurotrophic factor levels are decreased in dystrophin-deficient mice. Neurosci Lett 459:66–68. (PMID: 10.1016/j.neulet.2009.04.065) ; Araujo GG, Papoti M, Reis IG, Mello MA, Gobatto CA (2012) Physiological responses during linear periodized training in rats. 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(PMID: 10.1179/1351000214Y.0000000112) ; Kozakowska M, Pietraszek-Gremplewicz K, Jozkowicz A, Dulak J (2015) The role of oxidative stress in skeletal muscle injury and regeneration: focus on antioxidant enzymes. J Muscle Res Cell Motil 36:377–393. (PMID: 10.1007/s10974-015-9438-9) ; Gomez-Cabrera MC, Domenech E, Viña J (2008) Moderate exercise is an antioxidant: upregulation of antioxidant genes by training. Free Radic Biol Med 44:126–131. (PMID: 10.1016/j.freeradbiomed.2007.02.001) ; Antoncic-Svetina M, Sentija D, Cipak A, Milicic D, Meinitzer A, Tatzber F (2010) Ergometry induces systemic oxidative stress in healthy human subjects. Tohoku J Exp Med 221:43–48. (PMID: 10.1620/tjem.221.43) ; Jia B, Wang X, Kang A, Wang X, Wen Z, Yao W et al (2012) The effects of long term aerobic exercise. Clin Hemorheol Microcirc 51:117–127. (PMID: 10.3233/CH-2011-1519) ; Halliwell B (1992) (1992) Reactive oxygen species and the central nervous system. J Neurochem 59:609–623. (PMID: 10.1111/j.1471-4159.1992.tb10990.x)
  • Contributed Indexing: Keywords: Animal; Duchenne muscular dystrophy; Mice; Oxidative stress; Swimming
  • Substance Nomenclature: 0 (Antioxidants)
  • Entry Date(s): Date Created: 20210710 Date Completed: 20220203 Latest Revision: 20220203
  • Update Code: 20240513

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