| Literature DB >> 26798382 |
Hui-Lian Che1, In-Ho Bae2, Kyung Seob Lim2, Saji Uthaman3, In Taek Song4, Haeshin Lee4, Duhwan Lee5, Won Jong Kim5, Youngkeun Ahn2, In-Kyu Park3, Myung-Ho Jeong2.
Abstract
BACKGROUND AND OBJECTIVES: MicroRNA 145 is known to be responsible for cellular prolifeEntities:
Keywords: Drug-eluting stents; Gene delivery; MicroRNA; Nanoparticle; Restenosis
Year: 2016 PMID: 26798382 PMCID: PMC4720846 DOI: 10.4070/kcj.2016.46.1.23
Source DB: PubMed Journal: Korean Circ J ISSN: 1738-5520 Impact factor: 3.243
Fig. 1(A) Fluorescent microscopic image of YOYO1-labeled MSNs immobilized on the HA-coated stent surfaces. (B) The binding efficiency of YOYO1-labeled MSN on an HA-coated stent surface. YOYO1-labeled miR-145 was complexed with ssPEI at N/P ratios of 10 and 20 and was then immobilized on the HA-coated stent surface. The unbound miR-145 was measured by a UV spectrophotometer. HA: hyaluronic acid, MSN: microRNA 145/disulfide cross-linked low molecular polyethylenimine nanoparticles, ssPEI: disulfide cross-linked low molecular polyethylenimine, N/P: nitrogen to phosphate, miR: microribonucleic acid, UV: ultra violet.
Fig. 2SEM images of VSMCs adhering on the MSN-immobilized HA stent surface after overnight culture. SEM: scanning electron microscopy, VSMCs: vascular smooth muscle cells, MSN: microRNA 145/disulfide cross-linked low molecular polyethylenimine nanoparticles, HA: hyaluronic acid.
Fig. 3The uptake of YOYO1-labeled microRNA-145/ssPEI from the HA stent was measured by confocal microscopy from 1 to 12 hours. miR: microRNA, ssPEI: disulfide cross-linked low molecular polyethylenimine, HA: hyaluronic acid.
Fig. 4The cell viability of VSMCs cultured on a luciferase/ssPEI nanoparticle-immobilized, HA stent surface. Different amounts of plasmid-luciferase (1-3 µg) were complexed with ssPEI at a fixed N/P ratio of 10 to 30 and immobilized on the HA-coated surface. The cellular viability of VSMCs on the surface was measured using MTS assay (Promega, Madison, WI, USA). VSMCs: vascular smooth muscle cells, ssPEI: disulfide cross-linked low molecular polyethylenimine, HA: hyaluronic acid, N/P: nitrogen to phosphate.
Fig. 5Confirmation of miR-145 downstream pathway protein (c-Myc) and miR-145-GFP expression silencing after miR-145 treatments using ssPEI and bPEI carrier. Suppression of miR-145-GFP and downstream signaling proteins after the delivery of miR-145-GFP. The protein level was measured using western blotting. miR: microRNA, GFP: green fluorescent protein, ssPEI: disulfide cross-linked low molecular polyethylenimine, bPEI: branched polyethylenimine.
Fig. 6Observation of post-angioplasty restenosis by micro-CT imaging. In MSN/HA-immobilized and HA-coated stents, a thin vascular overgrowth of cells was observed, and the stent linings were visible (n=3). BMS: bare metal stent, miR: microRNA, ISR: in-stent restenosis, CT: computed tomography, MSN: microRNA 145/disulfide cross-linked low molecular polyethylenimine nanoparticles HA: hyaluronic acid.
Fig. 7Measurement of neointima by hematoxylin & eosin (H&E) staining. The iliac arteries were harvested 4 weeks after stent implantation, fixed with paraformaldehyde, embedded in Glycol methacrylate, and stained with hematoxylin & eosin (H&E) staining. The upper panel shows representative arteries from the BMS and HA-coated stent, and MSN/HA-immobilized stent groups. BMS: bare metal stent, HA: hyaluronic acid, miR: microRNA, MSN: microRNA 145/disulfide cross-linked low molecular polyethylenimine nanoparticles.