Investigation of electrical stimulation on phenotypic vascular smooth muscle cells differentiation in tissue-engineered small-diameter vascular graft

被引:8
|
作者
Derhambakhsh, Sara [1 ]
Mohammadi, Javad [1 ]
Shokrgozar, Mohammad Ali [2 ]
Rabbani, Hodjattallah [3 ]
Sadeghi, Niloufar [3 ]
Nekounam, Houra [4 ]
Mohammadi, Sotoudeh [5 ]
Lee, Ki-Bum [6 ]
Khakbiz, Mehrdad [1 ]
机构
[1] Univ Tehran, Fac New Sci & Technol, Dept Life Sci, Div Biomed Engn, Tehran 439957131, Iran
[2] Pasteur Inst Iran, Natl Cell Bank Iran, Tehran, Iran
[3] ACECR, Avicenna Res Inst, Monoclonal Antibody Res Ctr, Tehran, Iran
[4] Univ Tehran Med Sci, Sch Adv Technol Med, Dept Med Nanotechnol, Tehran, Iran
[5] Shahid Beheshti Univ Med Sci, Sch Med, Tehran, Iran
[6] State Univ New Jersey, Dept Chem & Chem Biol Rutgers, Piscataway, NJ 08854 USA
来源
TISSUE & CELL | 2023年 / 81卷
关键词
Cell migration; Decellularized scaffold; Electrical stimulation; Phenotype change; Tissue engineering; Vascular smooth muscle cells; VIMENTIN PHOSPHORYLATION; INTERMEDIATE-FILAMENTS; P21-ACTIVATED KINASE; MOLECULAR REGULATION; CONTRACTILE; EXPRESSION; MIGRATION; MODULATE; MARKER; GROWTH;
D O I
10.1016/j.tice.2022.101996
中图分类号
R602 [外科病理学、解剖学]; R32 [人体形态学];
学科分类号
100101 ;
摘要
In the development of vascular tissue engineering, particularly in the case of small diameter vessels, one of the key obstacles is the blockage of these veins once they enter the in vivo environment. One of the contributing factors to this problem is the aberrant proliferation and migration of vascular smooth muscle cells (VSMCs) from the media layer of the artery to the interior of the channel. Two distinct phenotypes have been identified for smooth muscle cells, namely synthetic and contractile. Since the synthetic phenotype plays an essential role in the unusual growth and migration, the aim of this study was to convert the synthetic phenotype into the contractile one, which is a solution to prevent the abnormal growth of VSMCs. To achieve this goal, these cells were subjected to electrical signals, using a 1000 mu A sinusoidal stimulation at 10 Hz for four days, with 20 min duration per 24 h. The morphological transformations and changes in the expression of vimentin, nestin, and beta-actin proteins were then studied using ICC and flow cytometry assays. Also, the expression of VSMC specific markers such as smooth muscle myosin heavy chain (SMMHC) and smooth muscle alpha-actin (alpha-SMA) were evaluated using RT-PCR test. In the final phase of this study, the sheep decellularized vessel was employed as a scaffold for seeding these cells. Based on the results, electrical stimulation resulted in some morphological alterations in VSMCs. Furthermore, the observed reductions in the expression levels of vimentin, nestin and beta-actin proteins and increase in the expression of SMMHC and alpha-SMA markers showed that it is possible to convert the synthetic phenotype to the contractile one using the studied regime of electrical stimulation. Finally, it can be concluded that electrical stimulation can significantly affect the phenotype of VSMCs, as demonstrated in this study.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Small-diameter vascular tissue engineering
    Dawit G. Seifu
    Agung Purnama
    Kibret Mequanint
    Diego Mantovani
    Nature Reviews Cardiology, 2013, 10 : 410 - 421
  • [32] In vivo regeneration of small-diameter arteries using a novel tissue-engineered biodegradable vascular graft without ex vivo cell seeding
    Yokota, Takenori
    Ichikawa, Hajime
    Matsumiya, Gorou
    Torikai, Kei
    Kitabayasi, Katsukiyo
    Hirakawa, Kouichirou
    Sawa, Yoshiki
    CIRCULATION, 2006, 114 (18) : 34 - 34
  • [33] Fabrication of multilayered tissue-engineered vascular grafts with aligned smooth muscle and endothelial cells
    Alkazemi, Hazem
    Mail, Matt
    Tomkins, Zerina Lokmic
    Heath, Daniel Edward
    O'connor, Andrea Janet
    TISSUE ENGINEERING PART A, 2023, 29 (13-14)
  • [34] Construction and characterization of an electrospun tubular scaffold for small-diameter tissue-engineered vascular grafts: A scaffold membrane approach
    Hu, Jin-Jia
    Chao, Wei-Chih
    Lee, Pei-Yuan
    Huang, Chih-Hao
    JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2012, 13 : 140 - 155
  • [35] The development and translation of the tissue-engineered vascular graft
    Breuer, Christopher K.
    JOURNAL OF PEDIATRIC SURGERY, 2011, 46 (01) : 8 - 17
  • [36] Concise Review: Patency of Small-Diameter Tissue-Engineered Vascular Grafts: A Meta-Analysis of Preclinical Trials
    Skovrind, Ida
    Harvald, Eva Bang
    Belling, Helene Juul
    Jorgensen, Christian Damsgaard
    Lindholt, Jes Sanddal
    Andersen, Ditte Caroline
    STEM CELLS TRANSLATIONAL MEDICINE, 2019, 8 (07) : 671 - 680
  • [37] Biomimetic control of vascular smooth muscle cell morphology and phenotype for functional tissue-engineered small-diameter blood vessels (vol 88a, pg 1104, 2009)
    Chan-Park, Mary B.
    Shen, Jin Ye
    Cao, Ye
    Xiong, Yun
    Liu, Yunxiao
    Rayatpisheh, Shahrzad
    Kang, Gavin Chun-Wei
    Greisler, Howard P.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2009, 91A (02) : 629 - 634
  • [38] Decellularized ureter for tissue-engineered small-caliber vascular graft
    Yuji Narita
    Hideaki Kagami
    Hiroshi Matsunuma
    Yosuke Murase
    Minoru Ueda
    Yuichi Ueda
    Journal of Artificial Organs, 2008, 11 : 91 - 99
  • [39] Decellularized ureter for tissue-engineered small-caliber vascular graft
    Narita, Yuji
    Kagami, Hideaki
    Matsunuma, Hiroshi
    Murase, Yosuke
    Ueda, Minoru
    Ueda, Yuichi
    JOURNAL OF ARTIFICIAL ORGANS, 2008, 11 (02) : 91 - 99
  • [40] An Integrated Micro-nano-fibrous Bilayered Small-Diameter Vascular Graft Simultaneously Supporting Endothelial and Smooth Muscle Cells
    Zhang, Quanchao
    Zhang, Mengna
    Wang, Ming
    Song, Zhiqiang
    Luo, Honglin
    Yang, Zhiwei
    Wan, Yizao
    FIBERS AND POLYMERS, 2023, 24 (04) : 1211 - 1223