Microtissues Enhance Smooth Muscle Differentiation and Cell Viability of hADSCs for Three Dimensional Bioprinting

Smooth muscle differentiated human adipose derived stem cells (hADSCs) provide a crucial stem cell source for urinary tissue engineering, but the induction of hADSCs for smooth muscle differentiation still has several issues to overcome, including a relatively long induction time and equipment depen...

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Main Authors: Jin Yipeng, Xu Yongde, Wu Yuanyi, Sun Jilei, Guo Jiaxiang, Gao Jiangping, Yang Yong
Format: Article
Language:English
Published: Frontiers Media S.A. 2017-07-01
Series:Frontiers in Physiology
Subjects:
Online Access:http://journal.frontiersin.org/article/10.3389/fphys.2017.00534/full
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spelling doaj-92e5f9ee971644a7809d7f8c3dcf19862020-11-24T23:55:02ZengFrontiers Media S.A.Frontiers in Physiology1664-042X2017-07-01810.3389/fphys.2017.00534279867Microtissues Enhance Smooth Muscle Differentiation and Cell Viability of hADSCs for Three Dimensional BioprintingJin Yipeng0Xu Yongde1Wu Yuanyi2Sun Jilei3Guo Jiaxiang4Gao Jiangping5Yang Yong6Department of Urology, Chinese PLA General HospitalBeijing, ChinaDepartment of Urology, First Affiliated Hospital of Chinese PLA General HospitalBeijing, ChinaDepartment of Urology, First Affiliated Hospital of Chinese PLA General HospitalBeijing, ChinaDepartment of Urology, First Affiliated Hospital of Chinese PLA General HospitalBeijing, ChinaDepartment of Urology, First Affiliated Hospital of Chinese PLA General HospitalBeijing, ChinaDepartment of Urology, Chinese PLA General HospitalBeijing, ChinaDepartment of Urology, First Affiliated Hospital of Chinese PLA General HospitalBeijing, ChinaSmooth muscle differentiated human adipose derived stem cells (hADSCs) provide a crucial stem cell source for urinary tissue engineering, but the induction of hADSCs for smooth muscle differentiation still has several issues to overcome, including a relatively long induction time and equipment dependence, which limits access to abundant stem cells within a short period of time for further application. Three-dimensional (3D) bioprinting holds great promise in regenerative medicine due to its controllable construction of a designed 3D structure. When evenly mixed with bioink, stem cells can be spatially distributed within a bioprinted 3D structure, thus avoiding drawbacks such as, stem cell detachment in a conventional cell-scaffold strategy. Notwithstanding the advantages mentioned above, cell viability is often compromised during 3D bioprinting, which is often due to pressure during the bioprinting process. The objective of our study was to improve the efficiency of hADSC smooth muscle differentiation and cell viability of a 3D bioprinted structure. Here, we employed the hanging-drop method to generate hADSC microtissues in a smooth muscle inductive medium containing human transforming growth factor β1 and bioprinted the induced microtissues onto a 3D structure. After 3 days of smooth muscle induction, the expression of α-smooth muscle actin and smoothelin was higher in microtissues than in their counterpart monolayer cultured hADSCs, as confirmed by immunofluorescence and western blotting analysis. The semi-quantitative assay showed that the expression of α-smooth muscle actin (α-SMA) was 0.218 ± 0.077 in MTs and 0.082 ± 0.007 in Controls; smoothelin expression was 0.319 ± 0.02 in MTs and 0.178 ± 0.06 in Controls. Induced MTs maintained their phenotype after the bioprinting process. Live/dead and cell count kit 8 assays showed that cell viability and cell proliferation in the 3D structure printed with microtissues were higher at all time points compared to the conventional single-cell bioprinting strategy (mean cell viability was 88.16 ± 3.98 vs. 61.76 ± 15% for microtissues and single-cells, respectively). These results provide a novel way to enhance the smooth muscle differentiation of hADSCs and a simple method to maintain better cell viability in 3D bioprinting.http://journal.frontiersin.org/article/10.3389/fphys.2017.00534/fullhuman adipose derived stem cellsmicrotissuessmooth muscle differentiation3D bioprintingtissue engineeringcell viability
collection DOAJ
language English
format Article
sources DOAJ
author Jin Yipeng
Xu Yongde
Wu Yuanyi
Sun Jilei
Guo Jiaxiang
Gao Jiangping
Yang Yong
spellingShingle Jin Yipeng
Xu Yongde
Wu Yuanyi
Sun Jilei
Guo Jiaxiang
Gao Jiangping
Yang Yong
Microtissues Enhance Smooth Muscle Differentiation and Cell Viability of hADSCs for Three Dimensional Bioprinting
Frontiers in Physiology
human adipose derived stem cells
microtissues
smooth muscle differentiation
3D bioprinting
tissue engineering
cell viability
author_facet Jin Yipeng
Xu Yongde
Wu Yuanyi
Sun Jilei
Guo Jiaxiang
Gao Jiangping
Yang Yong
author_sort Jin Yipeng
title Microtissues Enhance Smooth Muscle Differentiation and Cell Viability of hADSCs for Three Dimensional Bioprinting
title_short Microtissues Enhance Smooth Muscle Differentiation and Cell Viability of hADSCs for Three Dimensional Bioprinting
title_full Microtissues Enhance Smooth Muscle Differentiation and Cell Viability of hADSCs for Three Dimensional Bioprinting
title_fullStr Microtissues Enhance Smooth Muscle Differentiation and Cell Viability of hADSCs for Three Dimensional Bioprinting
title_full_unstemmed Microtissues Enhance Smooth Muscle Differentiation and Cell Viability of hADSCs for Three Dimensional Bioprinting
title_sort microtissues enhance smooth muscle differentiation and cell viability of hadscs for three dimensional bioprinting
publisher Frontiers Media S.A.
series Frontiers in Physiology
issn 1664-042X
publishDate 2017-07-01
description Smooth muscle differentiated human adipose derived stem cells (hADSCs) provide a crucial stem cell source for urinary tissue engineering, but the induction of hADSCs for smooth muscle differentiation still has several issues to overcome, including a relatively long induction time and equipment dependence, which limits access to abundant stem cells within a short period of time for further application. Three-dimensional (3D) bioprinting holds great promise in regenerative medicine due to its controllable construction of a designed 3D structure. When evenly mixed with bioink, stem cells can be spatially distributed within a bioprinted 3D structure, thus avoiding drawbacks such as, stem cell detachment in a conventional cell-scaffold strategy. Notwithstanding the advantages mentioned above, cell viability is often compromised during 3D bioprinting, which is often due to pressure during the bioprinting process. The objective of our study was to improve the efficiency of hADSC smooth muscle differentiation and cell viability of a 3D bioprinted structure. Here, we employed the hanging-drop method to generate hADSC microtissues in a smooth muscle inductive medium containing human transforming growth factor β1 and bioprinted the induced microtissues onto a 3D structure. After 3 days of smooth muscle induction, the expression of α-smooth muscle actin and smoothelin was higher in microtissues than in their counterpart monolayer cultured hADSCs, as confirmed by immunofluorescence and western blotting analysis. The semi-quantitative assay showed that the expression of α-smooth muscle actin (α-SMA) was 0.218 ± 0.077 in MTs and 0.082 ± 0.007 in Controls; smoothelin expression was 0.319 ± 0.02 in MTs and 0.178 ± 0.06 in Controls. Induced MTs maintained their phenotype after the bioprinting process. Live/dead and cell count kit 8 assays showed that cell viability and cell proliferation in the 3D structure printed with microtissues were higher at all time points compared to the conventional single-cell bioprinting strategy (mean cell viability was 88.16 ± 3.98 vs. 61.76 ± 15% for microtissues and single-cells, respectively). These results provide a novel way to enhance the smooth muscle differentiation of hADSCs and a simple method to maintain better cell viability in 3D bioprinting.
topic human adipose derived stem cells
microtissues
smooth muscle differentiation
3D bioprinting
tissue engineering
cell viability
url http://journal.frontiersin.org/article/10.3389/fphys.2017.00534/full
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