| Literature DB >> 36105130 |
Hang Liu1,2, Fan Wu2, Renwei Chen1,2, Yanan Chen1,2, Kai Yao3, Zengping Liu4, Bhav Harshad Parikh4, Linzhi Jing1,2, Tiange Liu2, Xinyi Su4, Jie Sun3, Dejian Huang1,2.
Abstract
Age-related macular degeneration (AMD) is the leading cause of visual loss and affects millions of people worldwide. Dysfunction of the retinal pigment epithelium (RPE) is associated with the pathogenesis of AMD. The purpose of this work is to build and evaluate the performance of ultrathin scaffolds with an electrohydrodynamic jet (EHDJ) printing method for RPE cell culture. We printed two types of ultrathin (around 7 μm) polycaprolactone scaffolds with 20 μm and 50 μm pores, which possess mechanical properties resembling that of native human Bruch's membrane and are biodegradable. Light microscopy and cell proliferation assay showed that adult human retinal pigment epithelial (ARPE-19) cells adhered and proliferated to form a monolayer on the scaffolds. The progress of culture matured on the scaffolds was demonstrated by immunofluorescence (actin, ZO-1, and Na+/K+-ATPase) and Western blot analysis of the respective proteins. The RPE cells cultured on EHDJ-printed scaffolds with 20 μm pores presented higher permeability, higher transepithelial potential difference, and higher expression level of Na+/K+-ATPase than those cultured on Transwell inserts. These findings suggest that the EHDJ printing can fabricate scaffolds that mimic Bruch's membrane by promoting maturation of RPE cells to form a polarized and functional monolayered epithelium with potential as an in vitro model for studying retinal diseases and treatment methods. Copyright:Entities:
Keywords: Electrohydrodynamic jet printing; Polycaprolactone; Retinal pigment epithelium; Ultrathin scaffolds
Year: 2022 PMID: 36105130 PMCID: PMC9468949 DOI: 10.18063/ijb.v8i3.550
Source DB: PubMed Journal: Int J Bioprint ISSN: 2424-8002
Quantified physical properties of the PET membrane and EHDJ-printed ultrathin scaffolds (n=3)
| Thickness (μm) | Pore size (μm) | Pore density (pores/cm2) | Porosity (%) | Fiber diameter (μm) | TEER (Ω·cm2) | |
|---|---|---|---|---|---|---|
| PET membrane | 13.63±1.37 | 0.34±0.15 | 4.0×106[ | 1.85±0.55 | - | 73.70±0.71 |
| S20 | 7.88±0.92 | 22.91±2.16 | 6.25×104 | 33.00±4.74 | 20.50±0.88 | 63.14±1.44 |
| S50 | 7.96 ± 0.74 | 52.17 ± 1.27 | 2.04 × 104 | 55.04 ± 3.46 | 21.23 ± 1.27 | 50.26 ± 1.17 |
Mechanical properties of the EHDJ-printed ultrathin scaffolds
| Young’s modulus (MPa) | Ultimate stress (MPa) | Ultimate strain (%) | Yield stress (MPa) | Yield strain (%) | |
|---|---|---|---|---|---|
| S20 | 45.70±5.50 | 5.46±0.31 | 871.41±19.03 | 2.13±0.32 | 3.63±0.55 |
| S50 | 8.94±1.88 | 3.97±0.25 | 934.88±31.82 | 0.57±0.20 | 5.01±0.28 |
n=3,
P<0.05,
P<0.001,
P<0.0001.