Literature DB >> 14680136

Circadian rhythms, oxidative stress, and antioxidative defense mechanisms.

Rüdiger Hardeland1, Ana Coto-Montes, Burkhard Poeggeler.   

Abstract

Endogenous circadian and exogenously driven daily rhythms of antioxidative enzyme activities and of low molecular weight antioxidants (LMWAs) are described in various phylogenetically distant organisms. Substantial amplitudes are detected in several cases, suggesting the significance of rhythmicity in avoiding excessive oxidative stress. Mammalian and/or avian glutathione peroxidase and, as a consequence, glutathione reductase activities follow the rhythm of melatonin. Another hint for an involvement of melatonin in the control of redox processes is seen in its high-affinity binding to cytosolic quinone reductase 2, previously believed to be a melatonin receptor. Although antioxidative protection by pharmacological doses of melatonin is repeatedly reported, explanations of these findings are still insufficient and their physiological and chronobiological relevance is not yet settled. Recent data indicate a role of melatonin in the avoidance of mitochondrial radical formation, a function which may prevail over direct scavenging. Rhythmic changes in oxidative damage of protein and lipid molecules are also reported. Enhanced oxidative protein modification accompanied by a marked increase in the circadian amplitude of this parameter is detected in the Drosophila mutant rosy, which is deficient in the LMWA urate. Preliminary evidence for the significance of circadian rhythmicity in diminishing oxidative stress comes from clock mutants. In Drosophila, moderately enhanced protein damage is described for the arrhythmic and melatonin null mutant per0, but even more elevated, periodic damage is found in the short-period mutant per(s), synchronized to LD 12:12. Remarkably large increases in oxidative protein damage, along with impairment of tissue integrity and--obviously insufficient--compensatory elevations in protective enzymes are observed in a particularly vulnerable organ, the Harderian gland, of another short-period mutant tau, in the Syrian hamster. Mice deficient in the per2 gene homolog are reported to be cancer-prone, a finding which might also relate to oxidative stress. In the dinoflagellate Lingulodinium polyedrum [Gonyaulax polyedra], various treatments that cause oxidative stress result in strong suppressions of melatonin and its metabolite 5-methoxytryptamine (5-MT) and to secondary effects on overt rhythmicity. The glow maximum, depending on the presence of elevated 5-MT at the end of subjective night, decreases in a dose-dependent manner already under moderate, non-lethal oxidative stress, but is restored by replenishing melatonin. Therefore, a general effect of oxidative stress may consist in declines of easily oxidizable signaling molecules such as melatonin, and this can have consequences on the circadian intraorganismal organization and expression of overt rhythms. Recent findings on a redox-sensitive input into the core oscillator via modulation of NPAS2/BMAL1 or CLK/BMAL1 heterodimer binding to DNA indicate a direct influence of cellular redox balance, including oxidative stress, on the circadian clock.

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Year:  2003        PMID: 14680136     DOI: 10.1081/cbi-120025245

Source DB:  PubMed          Journal:  Chronobiol Int        ISSN: 0742-0528            Impact factor:   2.877


  80 in total

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2.  How to fix a broken clock.

Authors:  Analyne M Schroeder; Christopher S Colwell
Journal:  Trends Pharmacol Sci       Date:  2013-10-10       Impact factor: 14.819

Review 3.  Skin, reactive oxygen species, and circadian clocks.

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Review 4.  Transcriptional control of antioxidant defense by the circadian clock.

Authors:  Sonal A Patel; Nikkhil S Velingkaar; Roman V Kondratov
Journal:  Antioxid Redox Signal       Date:  2014-01-03       Impact factor: 8.401

5.  Dietary supplementation with melatonin: influence on growth performance, oxidative stress status, and amelioration of silver nanoparticles-induced toxicity in Nile tilapia (Oreochromis niloticus).

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Review 6.  Cellular Timekeeping: It's Redox o'Clock.

Authors:  Nikolay B Milev; Sue-Goo Rhee; Akhilesh B Reddy
Journal:  Cold Spring Harb Perspect Biol       Date:  2018-05-01       Impact factor: 10.005

Review 7.  Melatonin, clock genes and mitochondria in sepsis.

Authors:  Darío Acuña-Castroviejo; Ibtissem Rahim; Carlos Acuña-Fernández; Marisol Fernández-Ortiz; Jorge Solera-Marín; Ramy K A Sayed; María E Díaz-Casado; Iryna Rusanova; Luis C López; Germaine Escames
Journal:  Cell Mol Life Sci       Date:  2017-08-07       Impact factor: 9.261

Review 8.  Circadian rhythm connections to oxidative stress: implications for human health.

Authors:  Melissa Wilking; Mary Ndiaye; Hasan Mukhtar; Nihal Ahmad
Journal:  Antioxid Redox Signal       Date:  2013-04-24       Impact factor: 8.401

Review 9.  Circadian dysfunction may be a key component of the non-motor symptoms of Parkinson's disease: insights from a transgenic mouse model.

Authors:  L David Willison; Takashi Kudo; Dawn H Loh; Dika Kuljis; Christopher S Colwell
Journal:  Exp Neurol       Date:  2013-01-24       Impact factor: 5.330

10.  Circadian (about 24-hour) variation in malondialdehyde content and catalase activity of mouse erythrocytes.

Authors:  Mamane Sani; Hichem Sebai; Néziha Ghanem-Boughanmi; Naceur A Boughattas; Mossadok Ben-Attia
Journal:  Redox Rep       Date:  2014-08-21       Impact factor: 4.412

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