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Published on: April 3, 2016
Declines in PDE4B activity promote myopia progression through downregulation of scleral collagen expression
Fuxin Zhao1, Hui Zhou1, Wei Chen2
1School of Optometry and Ophthalmology and Eye Hospital, Wenzhou Medical University, Wenzhou, Zhejiang, China; State Key Laboratory of Optometry, Ophthalmology and Vision Science, Wenzhou, Zhejiang, China.
Abstract:
Myopia is the most common cause of a visual refractive error worldwide. Cyclic adenosine monophosphate (cAMP)-linked signaling pathways contribute to the regulation of myopia development, and increases in cAMP accumulation promote myopia progression. To pinpoint the underlying mechanisms by which cAMP modulates myopia progression, we performed scleral transcriptome sequencing analysis in form-deprived mice, a well-established model of myopia development. Form deprivation significantly inhibited the expression levels of genes in the cAMP catabolic pathway. Quantitative real-time polymerase chain reaction analysis validated that the gene expression level of phosphodiesterase 4B (PDE4B), a cAMP hydrolase, was downregulated in form-deprived mouse eyes. Under visually unobstructed conditions, loss of PDE4B function in Pde4b-knockout mice increased the myopic shift in refraction, -3.661 ± 1.071 diopters, more than that in the Pde4b-wildtype littermates (P < 0.05). This suggests that downregulation and inhibition of PDE4B gives rise to myopia. In guinea pigs, subconjunctival injection of rolipram, a selective inhibitor of PDE4, led to myopia in normal eyes, and it also enhanced form-deprivation myopia (FDM). Subconjunctival injection of dibutyryl-cyclic adenosine monophosphate, a cAMP analog, induced only a myopic shift in the normal visually unobstructed eyes, but it did not enhance FDM. As myopia developed, axial elongation occurred during scleral remodeling that was correlated with changes in collagen fibril thickness and distribution. The median collagen fibril diameter in the FDM + rolipram group, 55.09 ± 1.83 nm, was thinner than in the FDM + vehicle group, 59.33 ± 2.06 nm (P = 0.011). Thus, inhibition of PDE4 activity with rolipram thinned the collagen fibril diameter relative to the vehicle treatment in form-deprived eyes. Rolipram also inhibited increases in collagen synthesis induced by TGF-β2 in cultured human scleral fibroblasts. The current results further support a role for PDE enzymes such as PDE4B in the regulation of normal refractive development and myopia because either loss or inhibition of PDE4B function increased myopia and FDM development through declines in the scleral collagen fibril diameter.
Insights
Decreased levels of phosphodiesterase 4B (PDE4B) and its inhibition promote myopia development. This occurs through reduced collagen fibril diameter in the sclera, impacting refractive error and myopia progression.
Area of Science:
- Ophthalmology
- Molecular Biology
- Genetics
Background:
- Myopia is a leading cause of visual impairment globally.
- Cyclic adenosine monophosphate (cAMP) signaling pathways are implicated in myopia development.
- Elevated cAMP levels are associated with increased myopia progression.
Purpose of the Study:
- To investigate the role of cAMP catabolism in myopia development.
- To identify specific phosphodiesterase (PDE) enzymes involved in myopia regulation.
- To elucidate the mechanisms by which PDE inhibition affects scleral remodeling and refractive error.
Main Methods:
- Scleral transcriptome sequencing in a mouse model of form-deprived myopia (FDM).
- Quantitative real-time polymerase chain reaction (qRT-PCR) to validate gene expression.
- Assessment of refractive error and axial elongation in Pde4b-knockout mice.
- Pharmacological inhibition of PDE4 using rolipram in guinea pigs and cultured human scleral fibroblasts.
- Analysis of scleral collagen fibril diameter and synthesis.
Main Results:
- Form deprivation downregulated genes in the cAMP catabolic pathway, including PDE4B.
- Loss of PDE4B function in knockout mice led to significant myopic shift.
- PDE4 inhibition with rolipram induced myopia in normal eyes and exacerbated FDM.
- Rolipram treatment thinned scleral collagen fibrils and inhibited TGF-β2-induced collagen synthesis.
Conclusions:
- Downregulation or inhibition of PDE4B contributes to myopia development.
- PDE4B plays a crucial role in regulating refractive development.
- Inhibition of PDE4 activity impacts scleral structure, leading to myopia progression via reduced collagen fibril diameter.
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