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Updated: Sep 1, 2025

Author Spotlight: Decoding Mitochondrial Aging
Published on: June 30, 2023
Microbiota mitochondria disorders as hubs for early age-related macular degeneration
János Fehér1, Ágnes Élő2, Lilla István2
1PRIMAVERA Program, Nutripharma Hungaria Ltd., Budapest, Hungary.
Abstract:
Age-related macular degeneration (AMD) is a progressive neurodegenerative disease affecting the central area (macula lutea) of the retina. Research on the pathogenic mechanism of AMD showed complex cellular contribution governed by such risk factors as aging, genetic predisposition, diet, and lifestyle. Recent studies suggested that microbiota is a transducer and a modifier of risk factors for neurodegenerative diseases, and mitochondria may be one of the intracellular targets of microbial signaling molecules. This review explores studies supporting a new concept on the contribution of microbiota-mitochondria disorders to AMD. We discuss metabolic, vascular, immune, and neuronal mechanism in AMD as well as key alterations of photoreceptor cells, retinal pigment epithelium (RPE), Bruch's membrane, choriocapillaris endothelial, immune, and neuronal cells. Special attention was paid to alterations of mitochondria contact sites (MCSs), an organelle network of mitochondria, endoplasmic reticulum, lipid droplets (LDs), and peroxisomes being documented based on our own electron microscopic findings from surgically removed human eyes. Morphometry of Bruch's membrane lipids and proteoglycans has also been performed in early AMD and aged controls. Microbial metabolites (short-chain fatty acids, polyphenols, and secondary bile acids) and microbial compounds (lipopolysaccharide, peptidoglycan, and bacterial DNA)-now called postbiotics-in addition to local effects on resident microbiota and mucous membrane, regulate systemic metabolic, vascular, immune, and neuronal mechanisms in normal conditions and in various common diseases. We also discuss their antioxidant, anti-inflammatory, and metabolic effects as well as experimental and clinical observations on regulating the main processes of photoreceptor renewal, mitophagy, and autophagy in early AMD. These findings support an emerging concept that microbiota-mitochondria disorders may be a crucial pathogenic mechanism of early AMD; and similarly, to other age-related neurodegenerative diseases, new treatment approaches should be targeted at these disorders.
Insights
Microbiota-mitochondria disorders may drive early age-related macular degeneration (AMD). Targeting these disruptions offers a new therapeutic avenue for AMD, a neurodegenerative retinal disease.
Area of Science:
- Ophthalmology and Neuroscience
Background:
- Age-related macular degeneration (AMD) is a progressive neurodegenerative disease impacting retinal central vision.
- Risk factors include aging, genetics, diet, and lifestyle, with emerging evidence implicating microbiota-mitochondria interplay.
Purpose of the Study:
- To explore the novel concept of microbiota-mitochondria disorders contributing to AMD pathogenesis.
- To review mechanisms and cellular alterations in AMD, focusing on mitochondria contact sites (MCSs).
Main Methods:
- Review of existing studies on microbiota, mitochondria, and AMD.
- Analysis of electron microscopic findings from human eye samples.
- Morphometric analysis of Bruch's membrane in early AMD and controls.
Main Results:
- Microbial metabolites and compounds (postbiotics) influence systemic functions and retinal cell processes.
- Alterations in MCSs, photoreceptor cells, RPE, and vasculature are observed in AMD.
- Microbiota-mitochondria axis dysfunction is proposed as a key pathogenic mechanism in early AMD.
Conclusions:
- Microbiota-mitochondria disorders are a crucial pathogenic mechanism in early AMD.
- Targeting these disorders presents a promising new therapeutic strategy for AMD, akin to other neurodegenerative diseases.
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