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The microfibril hypothesis of glaucoma: implications for treatment of elevated intraocular pressure
John Kuchtey1, Rachel W Kuchtey
1Vanderbilt Eye Institute, Vanderbilt University , Nashville, Tennessee.
Abstract:
Microfibrils are macromolecular aggregates located in the extracellular matrix of both elastic and nonelastic tissues that have essential functions in formation of elastic fibers and control of signaling through the transforming growth factor beta (TGFβ) family of cytokines. Elevation of systemic TGFβ and chronic activation of TGFβ signal transduction are associated with diseases caused by mutations in microfibril-associated genes, including FBN1. A role for microfibrils in glaucoma is suggested by identification of risk alleles in LOXL1 for exfoliation glaucoma and mutations in LTBP2 for primary congenital glaucoma, both of which are microfibril-associated genes. Recent identification of a mutation in another microfibril-associated gene, ADAMTS10, in a dog model of primary open-angle glaucoma led us to form the microfibril hypothesis of glaucoma, which in general states that defective microfibrils may be an underlying cause of glaucoma. Microfibril defects could contribute to glaucoma through alterations in biomechanical properties of tissue and/or through effects on signaling through TGFβ, which is well established to be elevated in the aqueous humor of glaucoma patients. Recent work has shown that diseases caused by microfibril defects are associated with increased concentrations of TGFβ protein and chronic activation of TGFβ-mediated signal transduction. In analogy with other microfibril-related diseases, defective microfibrils could provide a mechanism for the elevation of TGFβ2 in glaucomatous aqueous humor. If glaucoma shares mechanisms with other diseases caused by defective microfibrils, such as Marfan syndrome, therapeutic interventions to inhibit chronic activation of TGFβ signaling used in those diseases may be applied to glaucoma.
Insights
Defective microfibrils, crucial for tissue structure and signaling, may cause glaucoma by altering tissue biomechanics or transforming growth factor beta (TGFβ) signaling. This suggests potential new glaucoma treatments targeting TGFβ.
Area of Science:
- Extracellular matrix biology
- Ophthalmology
- Connective tissue disorders
Background:
- Microfibrils are essential extracellular matrix components involved in elastic fiber formation and transforming growth factor beta (TGFβ) signaling.
- Defects in microfibril-associated genes (e.g., FBN1, LOXL1, LTBP2, ADAMTS10) are linked to various diseases, including exfoliation glaucoma and primary congenital glaucoma.
- A mutation in ADAMTS10 in a dog model of primary open-angle glaucoma prompted the microfibril hypothesis of glaucoma.
Purpose of the Study:
- To propose the microfibril hypothesis of glaucoma, suggesting defective microfibrils as an underlying cause.
- To explore potential mechanisms by which microfibril defects contribute to glaucoma pathogenesis.
- To draw parallels with other microfibril-related diseases for potential therapeutic strategies.
Main Methods:
- Review of existing literature on microfibrils, glaucoma, and related genetic disorders.
- Analysis of the role of microfibril-associated genes in glaucoma pathogenesis.
- Comparison of disease mechanisms between glaucoma and other microfibril-associated diseases like Marfan syndrome.
Main Results:
- Microfibril defects can impact tissue biomechanical properties and TGFβ signaling pathways.
- Elevated TGFβ levels and chronic TGFβ signal transduction are observed in microfibril-related diseases and glaucoma.
- Defective microfibrils may explain elevated TGFβ2 in the aqueous humor of glaucoma patients.
Conclusions:
- Defective microfibrils represent a potential underlying cause of glaucoma.
- Alterations in biomechanical properties and TGFβ signaling are plausible mechanisms.
- Therapeutic strategies targeting TGFβ inhibition, successful in other microfibril-related diseases, may be applicable to glaucoma treatment.
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