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Roles of transmembrane protein 135 in mitochondrial and peroxisomal functions - implications for age-related retinal
Michael Landowski1,2, Purnima Gogoi1, Sakae Ikeda1,2
1Department of Medical Genetics, University of Wisconsin-Madison, Madison, WI, United States.
Abstract:
Aging is the most significant risk factor for age-related diseases in general, which is true for age-related diseases in the eye including age-related macular degeneration (AMD). Therefore, in order to identify potential therapeutic targets for these diseases, it is crucial to understand the normal aging process and how its mis-regulation could cause age-related diseases at the molecular level. Recently, abnormal lipid metabolism has emerged as one major aspect of age-related symptoms in the retina. Animal models provide excellent means to identify and study factors that regulate lipid metabolism in relation to age-related symptoms. Central to this review is the role of transmembrane protein 135 (TMEM135) in the retina. TMEM135 was identified through the characterization of a mutant mouse strain exhibiting accelerated retinal aging and positional cloning of the responsible mutation within the gene, indicating the crucial role of TMEM135 in regulating the normal aging process in the retina. Over the past decade, the molecular functions of TMEM135 have been explored in various models and tissues, providing insights into the regulation of metabolism, particularly lipid metabolism, through its action in multiple organelles. Studies indicated that TMEM135 is a significant regulator of peroxisomes, mitochondria, and their interaction. Here, we provide an overview of the molecular functions of TMEM135 which is crucial for regulating mitochondria, peroxisomes, and lipids. The review also discusses the age-dependent phenotypes in mice with TMEM135 perturbations, emphasizing the importance of a balanced TMEM135 function for the health of the retina and other tissues including the heart, liver, and adipose tissue. Finally, we explore the potential roles of TMEM135 in human age-related retinal diseases, connecting its functions to the pathobiology of AMD.
Insights
Transmembrane protein 135 (TMEM135) is vital for healthy retinal aging and lipid metabolism. Its dysfunction accelerates aging and impacts tissues like the heart and liver, potentially linking to age-related macular degeneration (AMD).
Area of Science:
- Molecular biology
- Gerontology
- Ophthalmology
Background:
- Aging is the primary risk factor for age-related diseases, including retinal conditions like age-related macular degeneration (AMD).
- Dysregulated lipid metabolism is increasingly recognized as a key factor in retinal aging.
- Understanding molecular mechanisms of aging is crucial for identifying therapeutic targets.
Purpose of the Study:
- To review the molecular functions of transmembrane protein 135 (TMEM135) in regulating retinal aging and lipid metabolism.
- To discuss the impact of TMEM135 dysfunction on age-dependent phenotypes in various tissues.
- To explore the potential role of TMEM135 in the pathobiology of human age-related retinal diseases, particularly AMD.
Main Methods:
- Review of existing literature on TMEM135 function in various models and tissues.
- Analysis of studies characterizing mutant mouse strains with accelerated retinal aging.
- Positional cloning to identify the genetic basis of TMEM135-related phenotypes.
Main Results:
- TMEM135 is identified as a crucial regulator of normal retinal aging.
- TMEM135 influences lipid metabolism by acting on peroxisomes, mitochondria, and their interactions.
- TMEM135 perturbations lead to age-dependent phenotypes in the retina, heart, liver, and adipose tissue.
Conclusions:
- TMEM135 plays a critical role in maintaining metabolic homeostasis and preventing accelerated aging.
- Balanced TMEM135 function is essential for the health of the retina and other vital organs.
- TMEM135 represents a potential therapeutic target for age-related retinal diseases like AMD.
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