Literature DB >> 33971955

DPSCs treated by TGF-β1 regulate angiogenic sprouting of three-dimensionally co-cultured HUVECs and DPSCs through VEGF-Ang-Tie2 signaling.

Yuchen Zhang1, Junqing Liu1, Ting Zou1, Yubingqing Qi1, Baicheng Yi1, Waruna Lakmal Dissanayaka2, Chengfei Zhang3.   

Abstract

BACKGROUND: Maintaining the stability and maturation of blood vessels is of paramount importance for the vessels to carry out their physiological function. Smooth muscle cells (SMCs), pericytes, and mesenchymal stem cells (MSCs) are involved in the maturation process of the newly formed vessels. The aim of this study was to investigate whether transforming growth factor beta 1 (TGF-β1) treatment could enhance pericyte-like properties of dental pulp stem cells (DPSCs) and how TGF-β1-treated DPSCs for 7 days (T-DPSCs) stabilize the newly formed blood vessels.
METHODS: We utilized TGF-β1 to treat DPSCs for 1, 3, 5, and 7 days. Western blotting and immunofluorescence were used to analyze the expression of SMC markers. Functional contraction assay was conducted to assess the contractility of T-DPSCs. The effects of T-DPSC-conditioned media (T-DPSC-CM) on human umbilical vein endothelial cell (HUVEC) proliferation and migration were examined by MTT, wound healing, and trans-well migration assay. Most importantly, in vitro 3D co-culture spheroidal sprouting assay was used to investigate the regulating role of vascular endothelial growth factor (VEGF)-angiopoietin (Ang)-Tie2 signaling on angiogenic sprouting in 3D co-cultured spheroids of HUVECs and T-DPSCs. Angiopoietin 2 (Ang2) and VEGF were used to treat the co-cultured spheroids to explore their roles in angiogenic sprouting. Inhibitors for Tie2 and VEGFR2 were used to block Ang1/Tie2 and VFGF/VEGFR2 signaling.
RESULTS: Western blotting and immunofluorescence showed that the expression of SMC-specific markers (α-SMA and SM22α) were significantly increased after treatment with TGF-β1. Contractility of T-DPSCs was greater compared with that of DPSCs. T-DPSC-CM inhibited HUVEC migration. In vitro sprouting assay demonstrated that T-DPSCs enclosed HUVECs, resembling pericyte-like cells. Compared to co-culture with DPSCs, a smaller number of HUVEC sprouting was observed when co-cultured with T-DPSCs. VEGF and Ang2 co-stimulation significantly enhanced sprouting in HUVEC and T-DPSC co-culture spheroids, whereas VEGF or Ang2 alone exerted insignificant effects on HUVEC sprouting. Blocking Tie2 signaling reversed the sprouting inhibition by T-DPSCs, while blocking VEGF receptor (VEGFR) signaling boosted the sprouting inhibition by T-DPSCs.
CONCLUSIONS: This study revealed that TGF-β1 can induce DPSC differentiation into functional pericyte-like cells. T-DPSCs maintain vessel stability through Ang1/Tie2 and VEGF/VEGFR2 signaling.

Entities:  

Keywords:  Ang1/Tie2 signaling; Angiogenesis; Dental pulp stem cells; Smooth muscle cells; Vessel stability

Year:  2021        PMID: 33971955     DOI: 10.1186/s13287-021-02349-y

Source DB:  PubMed          Journal:  Stem Cell Res Ther        ISSN: 1757-6512            Impact factor:   6.832


  55 in total

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Authors:  P Carmeliet
Journal:  Nat Med       Date:  2000-04       Impact factor: 53.440

Review 2.  Dental pulp stem cells: what, where, how?

Authors:  Alastair J Sloan; Rachel J Waddington
Journal:  Int J Paediatr Dent       Date:  2009-01       Impact factor: 3.455

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Journal:  J Clin Invest       Date:  1999-01       Impact factor: 14.808

4.  Endothelial-Initiated Crosstalk Regulates Dental Pulp Stem Cell Self-Renewal.

Authors:  M Oh; Z Zhang; A Mantesso; A E Oklejas; J E Nör
Journal:  J Dent Res       Date:  2020-05-29       Impact factor: 6.116

5.  Coculture of dental pulp stem cells with endothelial cells enhances osteo-/odontogenic and angiogenic potential in vitro.

Authors:  Waruna Lakmal Dissanayaka; Xuan Zhan; Chengfei Zhang; Kenneth M Hargreaves; Lijian Jin; Edith H Y Tong
Journal:  J Endod       Date:  2012-01-28       Impact factor: 4.171

6.  EphrinB2/EphB4 Signaling Regulates DPSCs to Induce Sprouting Angiogenesis of Endothelial Cells.

Authors:  T Gong; J Xu; B Heng; S Qiu; B Yi; Y Han; E C M Lo; C Zhang
Journal:  J Dent Res       Date:  2019-04-24       Impact factor: 6.116

7.  VEGFR2-dependent angiogenic capacity of pericyte-like dental pulp stem cells.

Authors:  K Janebodin; Y Zeng; W Buranaphatthana; N Ieronimakis; M Reyes
Journal:  J Dent Res       Date:  2013-04-22       Impact factor: 6.116

8.  The interplay of dental pulp stem cells and endothelial cells in an injectable peptide hydrogel on angiogenesis and pulp regeneration in vivo.

Authors:  Waruna Lakmal Dissanayaka; Kenneth M Hargreaves; Lijian Jin; Lakshman P Samaranayake; Chengfei Zhang
Journal:  Tissue Eng Part A       Date:  2014-10-14       Impact factor: 3.845

9.  Enhancing microvascular formation and vessel maturation through temporal control over multiple pro-angiogenic and pro-maturation factors.

Authors:  Yevgeny Brudno; Alessandra B Ennett-Shepard; Ruth R Chen; Michael Aizenberg; David J Mooney
Journal:  Biomaterials       Date:  2013-08-22       Impact factor: 12.479

10.  TGF-β1-induced differentiation of SHED into functional smooth muscle cells.

Authors:  Jian Guang Xu; Shao Yue Zhu; Boon Chin Heng; Waruna Lakmal Dissanayaka; Cheng Fei Zhang
Journal:  Stem Cell Res Ther       Date:  2017-01-23       Impact factor: 6.832

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  5 in total

1.  Pulpbow: A Method to Study the Vasculogenic Potential of Mesenchymal Stem Cells from the Dental Pulp.

Authors:  Andrea Mantesso; Zhaocheng Zhang; Kristy A Warner; Alexandra E Herzog; Ajai J Pulianmackal; Jacques E Nör
Journal:  Cells       Date:  2021-10-20       Impact factor: 6.600

2.  LIM Mineralization Protein-1 Enhances the Committed Differentiation of Dental Pulp Stem Cells through the ERK1/2 and p38 MAPK Pathways and BMP Signaling.

Authors:  Rui Mu; Bo Chen; Bo Bi; Hongchuan Yu; Juan Liu; Junxia Li; Maodian He; Liang Rong; Bingyao Liu; Ke Liu; Lei Zhu; Xiaolei Shi; Yi Shuai; Lei Jin
Journal:  Int J Med Sci       Date:  2022-07-18       Impact factor: 3.642

3.  Combination stem cell therapy using dental pulp stem cells and human umbilical vein endothelial cells for critical hindlimb ischemia.

Authors:  Chung Kwon Kim; Ji-Yoon Hwang; Tae Hee Hong; Du Man Lee; Kyunghoon Lee; Hyun Nam; Kyeung Min Joo
Journal:  BMB Rep       Date:  2022-07       Impact factor: 5.041

4.  Dental pulp stem cells-based therapy for the oviduct injury via immunomodulation and angiogenesis in vivo.

Authors:  Lihua Luo; Zhenjie Xing; Xiangyan Liao; Yejian Li; Yu Luo; Yilong Ai; Yan He; Qingsong Ye
Journal:  Cell Prolif       Date:  2022-07-12       Impact factor: 8.755

Review 5.  Heterotypic Multicellular Spheroids as Experimental and Preclinical Models of Sprouting Angiogenesis.

Authors:  Igor V Vakhrushev; Elizaveta K Nezhurina; Pavel A Karalkin; Anastasia V Tsvetkova; Nataliya S Sergeeva; Alexander G Majouga; Konstantin N Yarygin
Journal:  Biology (Basel)       Date:  2021-12-23
  5 in total

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