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Published on: September 16, 2020
Nutraceuticals/Drugs Promoting Mitophagy and Mitochondrial Biogenesis May Combat the Mitochondrial Dysfunction
Lidianys María Lewis Luján1, Mark F McCarty2, James J Di Nicolantonio3
1Department of Research and Postgraduate in Food, University of Sonora, Blvd. Luis Encinas y Rosales S/N, Col. Centro, Hermosillo 83000, Mexico.
Abstract:
In patients with age-related macular degeneration (AMD), the crucial retinal pigment epithelial (RPE) cells are characterized by mitochondria that are structurally and functionally defective. Moreover, deficient expression of the mRNA-editing enzyme Dicer is noted specifically in these cells. This Dicer deficit up-regulates expression of Alu RNA, which in turn damages mitochondria-inducing the loss of membrane potential, boosting oxidant generation, and causing mitochondrial DNA to translocate to the cytoplasmic region. The cytoplasmic mtDNA, in conjunction with induced oxidative stress, triggers a non-canonical pathway of NLRP3 inflammasome activation, leading to the production of interleukin-18 that acts in an autocrine manner to induce apoptotic death of RPE cells, thereby driving progression of dry AMD. It is proposed that measures which jointly up-regulate mitophagy and mitochondrial biogenesis (MB), by replacing damaged mitochondria with "healthy" new ones, may lessen the adverse impact of Alu RNA on RPE cells, enabling the prevention or control of dry AMD. An analysis of the molecular biology underlying mitophagy/MB and inflammasome activation suggests that nutraceuticals or drugs that can activate Sirt1, AMPK, Nrf2, and PPARα may be useful in this regard. These include ferulic acid, melatonin urolithin A and glucosamine (Sirt1), metformin and berberine (AMPK), lipoic acid and broccoli sprout extract (Nrf2), and fibrate drugs and astaxanthin (PPARα). Hence, nutraceutical regimens providing physiologically meaningful doses of several or all of the: ferulic acid, melatonin, glucosamine, berberine, lipoic acid, and astaxanthin, may have potential for control of dry AMD.
Insights
Defective retinal cells in age-related macular degeneration (AMD) lead to vision loss. Activating specific cellular pathways with compounds like ferulic acid may help prevent or control dry AMD progression.
Area of Science:
- Ophthalmology
- Cell Biology
- Molecular Biology
Background:
- Age-related macular degeneration (AMD) involves defective retinal pigment epithelial (RPE) cells with damaged mitochondria.
- Reduced Dicer enzyme in RPE cells increases Alu RNA, leading to mitochondrial dysfunction and oxidative stress.
- This triggers inflammasome activation, causing RPE cell death and driving dry AMD progression.
Purpose of the Study:
- To explore molecular mechanisms driving dry AMD.
- To identify potential therapeutic targets for controlling dry AMD progression.
- To investigate the role of mitophagy, mitochondrial biogenesis, and inflammasome pathways.
Main Methods:
- Analysis of molecular pathways involved in mitophagy, mitochondrial biogenesis, and inflammasome activation.
- Review of potential therapeutic agents targeting Sirt1, AMPK, Nrf2, and PPARα pathways.
- Identification of specific nutraceuticals and drugs with potential therapeutic benefits.
Main Results:
- Dicer deficiency in RPE cells leads to Alu RNA upregulation, mitochondrial damage, and oxidative stress.
- Activation of the NLRP3 inflammasome pathway results in interleukin-18 production and RPE cell apoptosis.
- Nutraceuticals and drugs targeting Sirt1, AMPK, Nrf2, and PPARα show potential for mitigating AMD pathology.
Conclusions:
- Combined upregulation of mitophagy and mitochondrial biogenesis may counteract Alu RNA's detrimental effects in RPE cells.
- Compounds like ferulic acid, melatonin, berberine, and astaxanthin show promise for dry AMD management.
- Nutraceutical regimens containing these compounds could offer a novel strategy for controlling dry AMD.
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