Electrospun fiber-mediated siRNA delivery and Gene silencing

While substrate topography influences cell responses, RNA interference (RNAi) has also emerged as a potent method for understanding and directing cell fate. In particular, the three dimensional (3D) electrospun fibers can offer biomimicking topographical signal to alter cell phenotypes, while RNAi c...

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Main Author: Long, Hongyan
Other Authors: Chew Sing Yian
Format: Theses and Dissertations
Language:English
Published: 2016
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Online Access:http://hdl.handle.net/10356/69020
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-690202023-03-03T15:57:41Z Electrospun fiber-mediated siRNA delivery and Gene silencing Long, Hongyan Chew Sing Yian School of Chemical and Biomedical Engineering DRNTU::Engineering While substrate topography influences cell responses, RNA interference (RNAi) has also emerged as a potent method for understanding and directing cell fate. In particular, the three dimensional (3D) electrospun fibers can offer biomimicking topographical signal to alter cell phenotypes, while RNAi can guide cell behaviors through regulating gene expression. Herein, we aim to establish platforms to understand and enhance cellular internalization of small interfering RNA (siRNA) and gene silencing by electrospun nanofiber-mediated RNAi. First, we examined the influence of fiber architecture on siRNA-mediated gene silencing in human somatic cells. The model cell, human dermal fibroblasts (HDFs), were cultured onto aligned and randomly oriented electrospun poly(-caprolactone) (PCL) fibers of different average diameters (300 nm, 700 nm and 1.3 m). It is observed that decreasing fiber diameter from 1.3 m to 300 nm, regardless of fiber orientation, significantly improved housekeeping gene Glyceraldehyde 3-phosphate dehydrogenase (GAPDH) and low abundance gene Collagen I silencing efficiencies by ~ 3.8 and ~ 4.4 folds respectively (p<0.05), while the effective siRNA uptake pathway was altered from clathrin-dependent endocytosis to macropinocytosis. Thus, a promising role of fibrous scaffolds in modulating siRNA-mediated gene silencing was illustrated. Second, we furthered our study to establish a RNAi-functionalized nanofibrous platform for translational application by encapsulating siRNA/polymeric micellar complex into electrospun poly(ε-caprolactone)-block-poly(ethyl ethylene phosphate) (PCLEEP) nanofibers. This platform provided cells with the biomimetic environment of natural extracellular matrix, as well as the sustained availability of siRNA for at least 88 days. By using HDFs and mesenchymal stem cells (MSCs) as model somatic and stem cells, we observed that the siRNA/polymeric micellar functionalized PCLEEP fibers significantly enhanced silencing of Collagen I gene expression in HDFs, cyclophilin B gene (CycB) expression in MSCs, and green fluorescent protein (GFP) expression in lentiviral transduced MSCs over-expressing GFP at early time points (Day 3, 7 or 14). Taken together, our results demonstrated that fiber architecture played a significant role in regulating siRNA-mediated gene silencing and we established a novel promising method of delivering siRNA by siRNA/micellar encapsulated nanofibers to efficiently down-regulate gene expression in vitro. Master of Engineering (SCE) 2016-09-05T06:07:17Z 2016-09-05T06:07:17Z 2016 Thesis http://hdl.handle.net/10356/69020 en 85 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering
spellingShingle DRNTU::Engineering
Long, Hongyan
Electrospun fiber-mediated siRNA delivery and Gene silencing
description While substrate topography influences cell responses, RNA interference (RNAi) has also emerged as a potent method for understanding and directing cell fate. In particular, the three dimensional (3D) electrospun fibers can offer biomimicking topographical signal to alter cell phenotypes, while RNAi can guide cell behaviors through regulating gene expression. Herein, we aim to establish platforms to understand and enhance cellular internalization of small interfering RNA (siRNA) and gene silencing by electrospun nanofiber-mediated RNAi. First, we examined the influence of fiber architecture on siRNA-mediated gene silencing in human somatic cells. The model cell, human dermal fibroblasts (HDFs), were cultured onto aligned and randomly oriented electrospun poly(-caprolactone) (PCL) fibers of different average diameters (300 nm, 700 nm and 1.3 m). It is observed that decreasing fiber diameter from 1.3 m to 300 nm, regardless of fiber orientation, significantly improved housekeeping gene Glyceraldehyde 3-phosphate dehydrogenase (GAPDH) and low abundance gene Collagen I silencing efficiencies by ~ 3.8 and ~ 4.4 folds respectively (p<0.05), while the effective siRNA uptake pathway was altered from clathrin-dependent endocytosis to macropinocytosis. Thus, a promising role of fibrous scaffolds in modulating siRNA-mediated gene silencing was illustrated. Second, we furthered our study to establish a RNAi-functionalized nanofibrous platform for translational application by encapsulating siRNA/polymeric micellar complex into electrospun poly(ε-caprolactone)-block-poly(ethyl ethylene phosphate) (PCLEEP) nanofibers. This platform provided cells with the biomimetic environment of natural extracellular matrix, as well as the sustained availability of siRNA for at least 88 days. By using HDFs and mesenchymal stem cells (MSCs) as model somatic and stem cells, we observed that the siRNA/polymeric micellar functionalized PCLEEP fibers significantly enhanced silencing of Collagen I gene expression in HDFs, cyclophilin B gene (CycB) expression in MSCs, and green fluorescent protein (GFP) expression in lentiviral transduced MSCs over-expressing GFP at early time points (Day 3, 7 or 14). Taken together, our results demonstrated that fiber architecture played a significant role in regulating siRNA-mediated gene silencing and we established a novel promising method of delivering siRNA by siRNA/micellar encapsulated nanofibers to efficiently down-regulate gene expression in vitro.
author2 Chew Sing Yian
author_facet Chew Sing Yian
Long, Hongyan
format Theses and Dissertations
author Long, Hongyan
author_sort Long, Hongyan
title Electrospun fiber-mediated siRNA delivery and Gene silencing
title_short Electrospun fiber-mediated siRNA delivery and Gene silencing
title_full Electrospun fiber-mediated siRNA delivery and Gene silencing
title_fullStr Electrospun fiber-mediated siRNA delivery and Gene silencing
title_full_unstemmed Electrospun fiber-mediated siRNA delivery and Gene silencing
title_sort electrospun fiber-mediated sirna delivery and gene silencing
publishDate 2016
url http://hdl.handle.net/10356/69020
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