Fluid forces control endothelial sprouting

被引:368
|
作者
Song, Jonathan W.
Munn, Lance L. [1 ]
机构
[1] Massachusetts Gen Hosp, Dept Radiat Oncol, Edwin L Steele Lab Tumor Biol, Charlestown, MA 02129 USA
关键词
3D angiogenesis on a chip; collagen gel; structural remodeling; alternative to animal model; vessel analog; SHEAR-STRESS; CELL PROLIFERATION; INTERSTITIAL FLOW; TIP CELLS; IN-VITRO; GROWTH; VEGF; MORPHOGENESIS; ANGIOGENESIS; MECHANISM;
D O I
10.1073/pnas.1105316108
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
During angiogenesis, endothelial cells (ECs) from intact blood vessels quickly infiltrate avascular regions via vascular sprouting. This process is fundamental to many normal and pathological processes such as wound healing and tumor growth, but its initiation and control are poorly understood. Vascular endothelial cell growth factor (VEGF) can promote vessel dilation and angiogenic sprouting, but given the complex nature of vascular morphogenesis, additional signals are likely necessary to determine, for example, which vessel segments sprout, which dilate, and which remain quiescent. Fluid forces exerted by blood and plasma are prime candidates that might codirect these processes, but it is not known whether VEGF cooperates with mechanical fluid forces to mediate angiogenesis. Using a microfluidic tissue analog of angiogenic sprouting, we found that fluid shear stress, such as exerted by flowing blood, attenuates EC sprouting in a nitric oxide-dependent manner and that interstitial flow, such as produced by extravasating plasma, directs endothelial morphogenesis and sprout formation. Furthermore, positive VEGF gradients initiated sprouting but negative gradients inhibited sprouting, promoting instead sheet-like migration analogous to vessel dilation. These results suggest that ECs integrate signals from fluid forces and local VEGF gradients to achieve such varied goals as vessel dilation and sprouting.
引用
收藏
页码:15342 / 15347
页数:6
相关论文
共 50 条
  • [31] Signals that control angiogenic sprouting
    Pedrosa, Ana Rita P. A. A.
    Trindade, Alexandre
    Fernandes, Ana Carina
    Carvalho, Catarina
    Gigante, Joana V. Q. G. C.
    Hurtado, Rodrigo D.
    Gill, Parkash S.
    Adams, Ralf H.
    Duarte, Antonio F.
    ANGIOGENESIS, 2014, 17 (01) : 294 - 295
  • [32] Control of potato tuber sprouting
    Sonnewald, U
    TRENDS IN PLANT SCIENCE, 2001, 6 (08) : 333 - 335
  • [33] Sprouting control for potato storage
    Guo, Yufang
    NATURE FOOD, 2021, 2 (05): : 319 - 319
  • [34] Sprouting control for potato storage
    Yufang Guo
    Nature Food, 2021, 2 : 319 - 319
  • [35] Optimal control of fluid forces using second order automatic differentiation
    Kamikawa, Ayako
    Kawahara, Mutsuto
    JOURNAL OF ALGORITHMS & COMPUTATIONAL TECHNOLOGY, 2009, 3 (01) : 59 - 74
  • [36] Vimentin as an Integral Regulator of Cell Adhesion and Endothelial Sprouting
    Dave, Jui M.
    Bayless, Kayla J.
    MICROCIRCULATION, 2014, 21 (04) : 333 - 344
  • [37] Biomechanical Determinants of Endothelial Cell Sprouting in a Microfluidic Device
    Song, Jonathan W.
    Munn, Lance L.
    FASEB JOURNAL, 2011, 25
  • [38] Angiogenic sprouting is regulated by endothelial cell expression of Slug
    Welch-Reardon, Katrina M.
    Ehsan, Seema M.
    Wang, Kehui
    Wu, Nan
    Newman, Andrew C.
    Romero-Lopez, Monica
    Fong, Ashley H.
    George, Steven C.
    Edwards, Robert A.
    Hughes, Christopher C. W.
    JOURNAL OF CELL SCIENCE, 2014, 127 (09) : 2017 - 2028
  • [39] Incorporating Pericytes into an Endothelial Cell Bead Sprouting Assay
    Azam, Salma H.
    Smith, Mitchell
    Somasundaram, Vivek
    Pecot, Chad V.
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2018, (132):
  • [40] Roles of cell confluency and fluid shear in 3-dimensional intracellular forces in endothelial cells
    Hur, Sung Sik
    del Alamo, Juan C.
    Park, Joon Seok
    Li, Yi-Shuan
    Nguyen, Hong A.
    Teng, Dayu
    Wang, Kuei-Chun
    Flores, Leona
    Alonso-Latorre, Baldomero
    Lasheras, Juan C.
    Chien, Shu
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2012, 109 (28) : 11110 - 11115