Age-Related Decline of Male Fertility: Mitochondrial Dysfunction and the Antioxidant Interventions
Abstract
:1. Introduction
2. Mitochondria in Spermatozoa
3. Sperm Mitochondrial Dysfunction, Male Infertility, and Aging
3.1. Bioenergetic Roles of Mitochondria in Sperm and Male Fertility
3.2. Sperm ROS Content and Male Fertility
3.3. Sperm Mitochondrial Membrane Potential and Male Fertility
3.4. Calcium Homeostasis and Male Fertility
3.5. Mitophagy and Male Fertility
3.6. Mitochondria-Mediated Apoptosis and Male Fertility
3.7. Age-Related Male Infertility and the Changes of Sperm Mitochondria
4. The Application of Antioxidants in the Treatment of Male Infertility
4.1. Enzymatic Antioxidants
4.2. Non-Enzyme Antioxidants
Type | Function | Administration | Common Dosages | References |
---|---|---|---|---|
Glutathione | Enhances enzymatic antioxidant activity | Intramuscular Oral | 600 mg every other day 100 mg/day | [68,69] [70] |
N-acetylcysteine | Enhances enzymatic antioxidant activity and scavenges free radical | Oral | 600 mg/day | [71,72] |
Melatonin | Activates the production of antioxidant enzyme and scavenges free radicals | Oral | 6 mg/day 400 mg/day | [75] [76] |
Coenzyme Q10 | Scavenges free radicals in a reduced form in the mitochondrial electron transport system | Oral | 200 mg/day | [78,79] |
Vitamin C | Neutralizes free radicals | Oral | 500–1000 mg/day | [67,81] |
Vitamin E | Neutralizes free radicals | Oral | 200–1000 mg/day | [17,67] |
Folic acid (vitamin B9) | Scavenges free radicals | Oral | 5 mg/day | [83,84] |
Carnitines | Neutralize free radicals and serve as an energy source | Oral | 500–1000 mg/day | [20,67] |
Zinc | Inhibits NADPH oxidase | Oral | 30–500 mg/day | [83,84,89] |
Selenium | Enhances enzymatic antioxidant activity | Oral | 50–200 μg/day | [2,67] |
Lycopene | Neutralizes free radicals | Oral | 6–25 mg/day | [2,67] |
4.3. Antioxidants in the Treatment of Aging Infertile Men
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Antioxidant Treatment | Sample | Findings | References |
---|---|---|---|
Zinc and folate | Aged men (>40 years), 57 cases | No improvement in semen quality | [100] |
Vitamins C, E and beta-carotene | Aged men (>40 years), 57 cases | Improvement in sperm numbers and motility | [100] |
Vitamin C and E, zinc | Aged men (>44 years), 34 cases | 20% less sperm DNA damage. | [101] |
Idebenone | Aged men (>40 years), 7 cases | In vitro addition of 5 µM and 50 µM idebenone reduced sperm ROS concentration and increased fertilization rates | [102] |
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Wang, J.-J.; Wang, S.-X.; Tehmina; Feng, Y.; Zhang, R.-F.; Li, X.-Y.; Sun, Q.; Ding, J. Age-Related Decline of Male Fertility: Mitochondrial Dysfunction and the Antioxidant Interventions. Pharmaceuticals 2022, 15, 519. https://doi.org/10.3390/ph15050519
Wang J-J, Wang S-X, Tehmina, Feng Y, Zhang R-F, Li X-Y, Sun Q, Ding J. Age-Related Decline of Male Fertility: Mitochondrial Dysfunction and the Antioxidant Interventions. Pharmaceuticals. 2022; 15(5):519. https://doi.org/10.3390/ph15050519
Chicago/Turabian StyleWang, Jing-Jing, Shu-Xia Wang, Tehmina, Yan Feng, Rui-Fen Zhang, Xin-Yue Li, Qiong Sun, and Jian Ding. 2022. "Age-Related Decline of Male Fertility: Mitochondrial Dysfunction and the Antioxidant Interventions" Pharmaceuticals 15, no. 5: 519. https://doi.org/10.3390/ph15050519
APA StyleWang, J. -J., Wang, S. -X., Tehmina, Feng, Y., Zhang, R. -F., Li, X. -Y., Sun, Q., & Ding, J. (2022). Age-Related Decline of Male Fertility: Mitochondrial Dysfunction and the Antioxidant Interventions. Pharmaceuticals, 15(5), 519. https://doi.org/10.3390/ph15050519