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Reactive oxygen and nitrogen species and cellular and organismal decline: amelioration with melatonin
Russel J Reiter1, Dun-xian Tan, Susanne Burkhardt
1Department of Cellular and Structural Biology, The University of Texas Health Science Center, Mail Code 7762, 7703 Floyd Curl Drive, San Antonio, TX 78229-3900, USA. reiter@uthscsa.edu
Abstract:
Cellular and organismal decline is, in part, believed to be a consequence of oxygen and nitrogen-based reactants which persistently damage macromolecules throughout a lifetime. The resulting accumulation of damaged molecules eventually seriously compromises essential functions of cells leading to their death. Excessive cellular loss causes deterioration of organ function and inevitably to the demise of the organism. The sequence of events, known as the free radical theory of aging, is widely espoused by biological gerontologists. Antioxidants are commonly employed to combat molecular damage mediated by oxygen and nitrogen-based reactants. One of these protective agents is melatonin. Melatonin has several distinct advantages as a preserver of organelle structure and function. It is widely distributed in organisms and within cells. It works via a number of mechanisms to reduce oxidative damage. Thus, melatonin scavenges a number of reactants including the hydroxyl radical (*OH), hydrogen peroxide (H(2)O(2)), nitric acid (NO*), peroxynitrite (ONOO(-)) and peroxynitrous acid (ONOOH). One of the products of melatonin's interaction with H(2)O(2), i.e., N(1)-acetyl-N(2)-formyl-5-methoxykynuramine (AFMK), is also a highly efficient radical scavenger. The cascade of reactions where the secondary metabolites are also effective scavenges is believed to contribute to melatonin's high efficacy in reducing oxidative damage. Besides its direct scavenging actions, melatonin stimulates several antioxidative enzymes including superoxide dismutase, glutathione peroxidase and glutathione reductase in addition to inhibiting a proxidative enzyme, nitric oxide synthase. This combination of actions assists melatonin in protecting cells from the degenerative changes normally associated with aging and age-related diseases.
Insights
Melatonin, an antioxidant, combats cellular damage from oxygen and nitrogen reactants, slowing aging. Its metabolites and enzyme stimulation further protect cells from age-related decline.
Area of Science:
- Gerontology
- Biochemistry
- Molecular Biology
Background:
- Cellular and organismal aging is linked to macromolecular damage by reactive oxygen and nitrogen species.
- Accumulated molecular damage impairs cell function, leading to organ deterioration and organism demise.
- The free radical theory of aging posits that cumulative oxidative stress drives the aging process.
Purpose of the Study:
- To investigate the role of melatonin as a protective agent against oxidative damage.
- To elucidate the mechanisms by which melatonin mitigates cellular damage and aging.
- To highlight melatonin's potential in combating age-related diseases.
Main Methods:
- Melatonin's direct radical scavenging activities were assessed.
- The radical scavenging capacity of melatonin's metabolite, AFMK, was evaluated.
- Melatonin's effects on key antioxidative and pro-oxidative enzymes were examined.
Main Results:
- Melatonin effectively scavenges various reactive oxygen and nitrogen species, including hydroxyl radical, hydrogen peroxide, nitric oxide, peroxynitrite, and peroxynitrous acid.
- A metabolite of melatonin, N(1)-acetyl-N(2)-formyl-5-methoxykynuramine (AFMK), also exhibits potent radical scavenging properties.
- Melatonin stimulates antioxidative enzymes like superoxide dismutase, glutathione peroxidase, and glutathione reductase, while inhibiting nitric oxide synthase.
Conclusions:
- Melatonin offers significant protection against cellular damage associated with aging.
- Its multifaceted mechanisms, including direct scavenging and enzyme modulation, contribute to its efficacy.
- Melatonin shows promise in preventing age-related cellular degeneration and diseases.