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Published on: April 3, 2016
mTOR/HIF-1α-associated scleral metabolic reprogramming by Mingshi formula in form-deprivation myopia
Yixue Yin1,2,3,4, Xiuyan Zhang1,2,3,4, Yibo Han2
1Affiliated Eye Hospital of Shandong University of Traditional Chinese Medicine, Jinan, 250002, China.
Abstract:
Focusing on the mTOR-HIF-1α signaling pathway, this study investigated the mechanism through which the traditional Chinese medicine compound Mingshi Formula delays the progression of form-deprivation myopia (FDM) in guinea pigs. The guinea pigs were divided into the normal control group (NC), FDM group, Mingshi Formula low-dose group (FDM + Low), medium-dose group (FDM + Medium), high-dose group (FDM + High), and MTOR inhibitor group (FDM + RapaLink-1). The guinea pig model of FDM was established by applying 3D-printed hoods modified by a latex balloon with 60% light transmission for 4 weeks. Refractive error changes were monitored using a refractometer. Axial length was quantitatively analyzed using A-scan ultrasound, choroidal thickness was measured with SD-OCT, and structural changes of the choroid and sclera were observed after hematoxylin-eosin (HE) staining. At the molecular level, the expression levels of the mammalian target of rapamycin (mTOR), phosphorylated mTOR (p-mTOR), HIF-1α, LDHA, PKM2, MMP2, Collagen I, and α-SMA in the sclera were measured by RT-qPCR and Western blotting. The spatial distribution characteristics of mTOR, p-mTOR, HIF-1α, and Collagen I were verified via immunofluorescence techniques. The results demonstrated that the Mingshi Formula significantly decreased myopic refractive error and axial length (p < 0.01), increased choroidal thickness (p < 0.05), downregulated the gene and protein expression of mTOR, p-mTOR, HIF-1α, LDHA, PKM2, MMP2, and α-SMA in response to hypoxia, and upregulated the expression of Collagen I compared to the FDM group. We demonstrated that MingShi formula modulates the mTOR/HIF-1α signaling axis to ameliorate scleral hypoxic metabolic homeostasis, regulate Collagen synthesis, inhibit aberrant extracellular matrix remodeling, and ultimately delay myopia progression.
Insights
Mingshi Formula, a traditional Chinese medicine, effectively delays myopia progression in guinea pigs by modulating the mTOR/HIF-1α pathway. It improves scleral homeostasis, collagen synthesis, and reduces extracellular matrix remodeling.
Area of Science:
- Ophthalmology
- Pharmacology
- Molecular Biology
Background:
- Form-deprivation myopia (FDM) is a significant vision disorder.
- The mTOR-HIF-1α signaling pathway is implicated in myopia development.
- Traditional Chinese Medicine (TCM) offers potential therapeutic strategies for myopia.
Purpose of the Study:
- To investigate the mechanism of Mingshi Formula in delaying FDM progression in guinea pigs.
- To elucidate the role of the mTOR-HIF-1α signaling pathway in Mingshi Formula's efficacy.
- To evaluate the effects of Mingshi Formula on scleral structure and molecular changes.
Main Methods:
- Establishment of a guinea pig model of form-deprivation myopia.
- Administration of Mingshi Formula at varying doses and an mTOR inhibitor (RapaLink-1).
- Assessment of refractive error, axial length, choroidal thickness, and scleral structure.
- Molecular analysis of mTOR, HIF-1α, and related gene/protein expression using RT-qPCR, Western blotting, and immunofluorescence.
Main Results:
- Mingshi Formula significantly reduced myopic refractive error and axial length.
- Increased choroidal thickness and improved scleral structure were observed.
- Downregulation of mTOR, p-mTOR, HIF-1α, LDHA, PKM2, MMP2, and α-SMA expression.
- Upregulation of Collagen I expression in the sclera.
Conclusions:
- Mingshi Formula effectively delays myopia progression by targeting the mTOR/HIF-1α signaling pathway.
- The formula ameliorates scleral hypoxic metabolic homeostasis and regulates collagen synthesis.
- Mingshi Formula inhibits aberrant extracellular matrix remodeling, offering a therapeutic potential for myopia.

