Suspended Micro/Nanofiber Hierarchical Scaffolds for Studying Cell Mechanobiology

Extracellular matrix (ECM) is a fibrous natural cell environment, possessing complicated micro-and nano- architectures, which provides signaling cues and influences cell behavior. Mimicking this three dimensional environment in vitro is a challenge in developmental and disease biology. Here, suspend...

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Main Author: Wang, Ji
Other Authors: Macromolecular Science and Engineering
Format: Others
Language:en_US
Published: Virginia Tech 2017
Subjects:
Online Access:http://hdl.handle.net/10919/76884
http://scholar.lib.vt.edu/theses/available/etd-02202015-113826/
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-768842020-09-29T05:46:47Z Suspended Micro/Nanofiber Hierarchical Scaffolds for Studying Cell Mechanobiology Wang, Ji Macromolecular Science and Engineering Nain, Amrinder S. Turner, S. Richard Riffle, Judy S. single cell forces nanofiber manufacturing cell geometry hierarchical scaffolds Extracellular matrix (ECM) is a fibrous natural cell environment, possessing complicated micro-and nano- architectures, which provides signaling cues and influences cell behavior. Mimicking this three dimensional environment in vitro is a challenge in developmental and disease biology. Here, suspended multilayer hierarchical nanofiber assemblies fabricated using the non-electrospinning STEP (Spinneret based Tunable Engineered Parameter) fiber manufacturing technique with controlled fiber diameter (microns to less than 100 nm), orientation and spacing in single and multiple layers are demonstrated as biological scaffolds. Hierarchical nanofiber assemblies were developed to control single cell shape (shape index from 0.15 to 0.57), nuclei shape (shape index 0.75 to 0.99) and focal adhesion cluster length (8-15 micrometer). To further investigate single cell-ECM biophysical interactions, nanofiber nets fused in crisscross patterns were manufactured to measure the "inside out" contractile forces of single mesenchymal stem cells (MSCs). The contractile forces (18-320 nano Newton) were found to scale with fiber structural stiffness (2 -100 nano Newton/micrometer). Cells were observed to shed debris on fibers, which were found to exert forces (15-20 nano Newton). Upon CO? deprivation, cells were observed to monotonically reduce cell spread area and contractile forces. During the apoptotic process, cells exerted both expansive and contractile forces. The platform developed in this study allows a wide parametric investigation of biophysical cues which influence cell behaviors with implications in tissue engineering, developmental biology, and disease biology. Master of Science 2017-04-04T19:49:58Z 2017-04-04T19:49:58Z 2015-02-11 2015-02-20 2016-10-18 2015-03-27 Thesis Text etd-02202015-113826 http://hdl.handle.net/10919/76884 http://scholar.lib.vt.edu/theses/available/etd-02202015-113826/ en_US In Copyright http://rightsstatements.org/vocab/InC/1.0/ application/pdf Virginia Tech
collection NDLTD
language en_US
format Others
sources NDLTD
topic single cell forces
nanofiber manufacturing
cell geometry
hierarchical scaffolds
spellingShingle single cell forces
nanofiber manufacturing
cell geometry
hierarchical scaffolds
Wang, Ji
Suspended Micro/Nanofiber Hierarchical Scaffolds for Studying Cell Mechanobiology
description Extracellular matrix (ECM) is a fibrous natural cell environment, possessing complicated micro-and nano- architectures, which provides signaling cues and influences cell behavior. Mimicking this three dimensional environment in vitro is a challenge in developmental and disease biology. Here, suspended multilayer hierarchical nanofiber assemblies fabricated using the non-electrospinning STEP (Spinneret based Tunable Engineered Parameter) fiber manufacturing technique with controlled fiber diameter (microns to less than 100 nm), orientation and spacing in single and multiple layers are demonstrated as biological scaffolds. Hierarchical nanofiber assemblies were developed to control single cell shape (shape index from 0.15 to 0.57), nuclei shape (shape index 0.75 to 0.99) and focal adhesion cluster length (8-15 micrometer). To further investigate single cell-ECM biophysical interactions, nanofiber nets fused in crisscross patterns were manufactured to measure the "inside out" contractile forces of single mesenchymal stem cells (MSCs). The contractile forces (18-320 nano Newton) were found to scale with fiber structural stiffness (2 -100 nano Newton/micrometer). Cells were observed to shed debris on fibers, which were found to exert forces (15-20 nano Newton). Upon CO? deprivation, cells were observed to monotonically reduce cell spread area and contractile forces. During the apoptotic process, cells exerted both expansive and contractile forces. The platform developed in this study allows a wide parametric investigation of biophysical cues which influence cell behaviors with implications in tissue engineering, developmental biology, and disease biology. === Master of Science
author2 Macromolecular Science and Engineering
author_facet Macromolecular Science and Engineering
Wang, Ji
author Wang, Ji
author_sort Wang, Ji
title Suspended Micro/Nanofiber Hierarchical Scaffolds for Studying Cell Mechanobiology
title_short Suspended Micro/Nanofiber Hierarchical Scaffolds for Studying Cell Mechanobiology
title_full Suspended Micro/Nanofiber Hierarchical Scaffolds for Studying Cell Mechanobiology
title_fullStr Suspended Micro/Nanofiber Hierarchical Scaffolds for Studying Cell Mechanobiology
title_full_unstemmed Suspended Micro/Nanofiber Hierarchical Scaffolds for Studying Cell Mechanobiology
title_sort suspended micro/nanofiber hierarchical scaffolds for studying cell mechanobiology
publisher Virginia Tech
publishDate 2017
url http://hdl.handle.net/10919/76884
http://scholar.lib.vt.edu/theses/available/etd-02202015-113826/
work_keys_str_mv AT wangji suspendedmicronanofiberhierarchicalscaffoldsforstudyingcellmechanobiology
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