Visualization of endothelial cell cycle dynamics in mouse using the Flt-1/eGFP-anillin system

被引:0
作者
Katia Herz
Alexandra Becker
Chenyue Shi
Masatsugo Ema
Satoru Takahashi
Michael Potente
Michael Hesse
Bernd K. Fleischmann
Daniela Wenzel
机构
[1] University of Bonn,Institute of Physiology I, Life and Brain Center, Medical Faculty
[2] Max Planck Institute for Heart and Lung Research,Angiogenesis and Metabolism Laboratory
[3] Shiga University of Medical Science,Department of Stem Cells and Human Disease Models, Research Center for Animal Life Science
[4] University of Tsukuba,Department of Anatomy and Embryology, Institute of Basic Medical Sciences, Graduate School of Comprehensive Human Sciences
[5] International Institute of Molecular and Cell Biology,undefined
[6] DZHK (German Center for Cardiovascular Research),undefined
来源
Angiogenesis | 2018年 / 21卷
关键词
Endothelial cell; Proliferation; Angiogenesis; Anillin; Cell cycle;
D O I
暂无
中图分类号
学科分类号
摘要
Endothelial cell proliferation is a key process during vascular growth but its kinetics could only be assessed in vitro or ex vivo so far. To enable the monitoring and quantification of cell cycle kinetics in vivo, we have generated transgenic mice expressing an eGFP-anillin construct under control of the endothelial-specific Flt-1 promoter. This construct labels the nuclei of endothelial cells in late G1, S and G2 phase and changes its localization during the different stages of M phase, thereby enabling the monitoring of EC proliferation and cytokinesis. In Flt-1/eGFP-anillin mice, we found eGFP+ signals specifically in Ki67+/PECAM+ endothelial cells during vascular development. Quantification using this cell cycle reporter in embryos revealed a decline in endothelial cell proliferation between E9.5 to E12.5. By time-lapse microscopy, we determined the length of different cell cycle phases in embryonic endothelial cells in vivo and found a M phase duration of about 80 min with 2/3 covering karyokinesis and 1/3 cytokinesis. Thus, we have generated a versatile transgenic system for the accurate assessment of endothelial cell cycle dynamics in vitro and in vivo.
引用
收藏
页码:349 / 361
页数:12
相关论文
共 12 条
  • [1] Visualization of endothelial cell cycle dynamics in mouse using the Flt-1/eGFP-anillin system
    Herz, Katia
    Becker, Alexandra
    Shi, Chenyue
    Ema, Masatsugo
    Takahashi, Satoru
    Potente, Michael
    Hesse, Michael
    Fleischmann, Bernd K.
    Wenzel, Daniela
    ANGIOGENESIS, 2018, 21 (02) : 349 - 361
  • [2] RNA activating-double stranded RNA targeting flt-1 promoter inhibits endothelial cell proliferation through soluble FLT-1 upregulation
    Choi, Susie
    Uehara, Hironori
    Wu, Yuanyuan
    Das, Subrata
    Zhang, Xiaohui
    Archer, Bonnie
    Carroll, Lara
    Ambati, Balamurali Krishna
    PLOS ONE, 2018, 13 (03):
  • [3] Molecular mechanism of Flt-1 protein and the regulation of monocytes modulate endothelial cell in wound healing sites via PGF/FLT1 signaling☆
    Lu, Liu
    Wu, Yin
    Lu, Caichun
    Liang, Feiteng
    Gu, Shixing
    Sun, Sheng
    Tang, Qiang
    Tang, Qianli
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2025, 307
  • [4] Flt-1 regulates vascular endothelial cell migration via a protein tyrosine kinase-7-dependent pathway
    Lee, Hyung Keun
    Chauhan, Sunil K.
    Kay, EunDuk
    Dana, Reza
    BLOOD, 2011, 117 (21) : 5762 - 5771
  • [5] Monoclonal Antibodies to Vascular Endothelial Growth Factor (VEGF) And the VEGF Receptor, FLT-1, Inhibit the Growth of C6 Glioma in a Mouse Xenograft
    David F. Stefanik
    Wendy K. Fellows
    Laila R. Rizkalla
    Waheeb M. Rizkalla
    Paulette P. Stefanik
    Albert B. Deleo
    William C. Welch
    Journal of Neuro-Oncology, 2001, 55 : 91 - 100
  • [6] Monoclonal antibodies to vascular endothelial growth factor (VEGF) and the VEGF receptor, FLT-1, inhibit the growth of C6 glioma in a mouse xenograft
    Stefanik, DF
    Fellows, WK
    Rizkalla, LR
    Rizkalla, WM
    Stefanik, PP
    Deleo, AB
    Welch, WC
    JOURNAL OF NEURO-ONCOLOGY, 2001, 55 (02) : 91 - 100
  • [7] Visualization of the cancer cell cycle by tissue-clearing technology using the Fucci reporter system
    Takahashi, Kei
    Tanabe, Ryo
    Ehata, Shogo
    Kubota, Shimpei, I
    Morishita, Yasuyuki
    Ueda, Hiroki R.
    Miyazono, Kohei
    CANCER SCIENCE, 2021, 112 (09) : 3796 - 3809
  • [8] Dynamics of expression of ARID1A and ARID1B subunits in mouse embryos and in cells during the cell cycle
    Flores-Alcantar, Angel
    Gonzalez-Sandoval, Adriana
    Escalante-Alcalde, Diana
    Lomeli, Hilda
    CELL AND TISSUE RESEARCH, 2011, 345 (01) : 137 - 148
  • [9] Dynamics of expression of ARID1A and ARID1B subunits in mouse embryos and in cells during the cell cycle
    Angel Flores-Alcantar
    Adriana Gonzalez-Sandoval
    Diana Escalante-Alcalde
    Hilda Lomelí
    Cell and Tissue Research, 2011, 345 : 137 - 148
  • [10] Overexpression of catalase delays G0/G1- to S-phase transition during cell cycle progression in mouse aortic endothelial cells
    Onumah, Ogbeyalu E.
    Jules, George E.
    Zhao, Yanfeng
    Zhou, LiChun
    Yang, Hong
    Guo, ZhongMao
    FREE RADICAL BIOLOGY AND MEDICINE, 2009, 46 (12) : 1658 - 1667