Intraocular Pressure-Lowering and Retina-Protective Effects of Exosome-Rich Conditioned Media from Human Amniotic Membrane Stem Cells in a Rat Model of Glaucoma

Author:

Seong Hye-Rim12,Noh Chan Ho12,Park Sangryong2,Cho Sumin1,Hong Seok-Jin2,Lee Ah-young2,Geum Dongho3,Hong Soon-Cheol4ORCID,Park Dongsun5,Kim Tae Myoung2,Choi Ehn-Kyoung2,Kim Yun-Bae12ORCID

Affiliation:

1. College of Veterinary Medicine, Chungbuk National University, Cheongju 28644, Republic of Korea

2. Central Research Institute, Designed Cells Co., Ltd., Cheongju 28576, Republic of Korea

3. Department of Biomedical Science, Korea University College of Medicine, Seoul 02841, Republic of Korea

4. Department of Obstetrics and Gynecology, Korea University College of Medicine, Seoul 02841, Republic of Korea

5. Department of Biology Education, Korea National University of Education, Cheongju 28173, Republic of Korea

Abstract

Glaucoma is one of the most devastating eye diseases, since the disease can develop into blindness and no effective therapeutics are available. Although the exact mechanisms and causes of glaucoma are unknown, increased intraocular pressure (IOP) has been demonstrated to be an important risk factor. Exosomes are lipid nanoparticles secreted from functional cells, including stem cells, and have been found to contain diverse functional molecules that control body function, inhibit inflammation, protect and regenerate cells, and restore damaged tissues. In the present study, exosome-rich conditioned media (ERCMs) were attained via hypoxic culture (2% O2) of human amniotic membrane mesenchymal stem cells (AMMSCs) and amniotic membrane epithelial stem cells (AMESCs) containing 50 times more exosome particles than normoxic culture (20% O2) medium (NCM). The exosome particles in ERCM were confirmed to be 77 nm in mean size and contain much greater amounts of growth factors (GFs) and neurotrophic factors (NFs) than those in NCM. The glaucoma-therapeutic effects of ERCMs were assessed in retinal cells and a hypertonic (1.8 M) saline-induced high-IOP animal model. CM-DiI-labeled AMMSC exosomes were found to readily penetrate the normal and H2O2-damaged retinal ganglion cells (RGCs), and AMMSC-ERCM not only facilitated retinal pigment epithelial cell (RPEC) proliferation but also protected against H2O2- and hypoxia-induced RPEC insults. The IOP of rats challenged with 1.8 M saline increased twice the normal IOP (12–17 mmHg) in a week. However, intravitreal injection of AMMSC-ERCM or AMESC-ERCM (3.9–4.5 × 108 exosomes in 10 μL/eye) markedly recovered the IOP to normal level in 2 weeks, similar to the effect achieved with platelet-derived growth factor-AB (PDGF-AB, 1.5 μg), a reference material. In addition, AMMSC-ERCM, AMESC-ERCM, and PDGF-AB significantly reversed the shrinkage of retinal layers, preserved RGCs, and prevented neural injury in the glaucoma eyes. It was confirmed that stem cell ERCMs containing large numbers of functional molecules such as GFs and NFs improved glaucoma by protecting retinal cells against oxidative and hypoxic injuries in vitro and by recovering IOP and retinal degeneration in vivo. Therefore, it is suggested that stem cell ERCMs could be a promising candidate for the therapy of glaucoma.

Funder

Chungbuk National University

Korea Health Industry Development Institute

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

Reference51 articles.

1. Causes of vision loss worldwide. 1990–2010: A systematic analysis;Bourne;Lancet Glob. Health,2013

2. Global prevalence of glaucoma and projections of glaucoma burden through 2040: A systematic review and meta-analysis;Tham;Ophthalmology,2014

3. Glaucoma;Jonas;Lancet,2017

4. Glaucoma;Quigley;Lancet,2011

5. Kolb, H., Fernandez, E., and Nelson, R. (2019). The Organization of the Retina and Visual System, University of Utah Health Sciences Center.

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