Fibroblast activation in response to TGFβ1 is modulated by co-culture with endothelial cells in a vascular organ-on-chip platform

被引:5
|
作者
Luu, Rebeccah J. [1 ]
Hoefler, B. Christopher [1 ]
Gard, Ashley L. [1 ]
Ritenour, Casey R. [2 ]
Rogers, Miles T. [1 ]
Kim, Ernest S. [1 ]
Coppeta, Jonathan R. [1 ]
Cain, Brian P. [1 ]
Isenberg, Brett C. [1 ]
Azizgolshani, Hesham [1 ]
Fajardo-Ramirez, Oscar R. [3 ]
Garcia-Cardena, Guillermo [3 ]
Lech, Matthew P. [4 ]
Tomlinson, Lindsay [4 ]
Charest, Joseph L. [1 ]
Williams, Corin [1 ]
机构
[1] Charles Stark Draper Lab Inc, Bioengn Div, Cambridge, MA 02139 USA
[2] Pfizer Inc, Groton, CT USA
[3] Harvard Med Sch, Brigham & Womens Hosp, Ctr Excellence Vasc Biol, Dept Pathol,Ctr Excellence Vasc Biol, Boston, MA USA
[4] Pfizer Inc, Cambridge, MA USA
关键词
co-culture; organ-on-chip; vascular; transforming growth factor beta 1; myofibroblast; fluid shear stress; fibrosis; FLUID SHEAR-STRESS; GENE-EXPRESSION; EXTRACELLULAR-MATRIX; PULMONARY-FIBROSIS; MECHANISMS; FLOW; PECAM-1; BETA; RNA; DIFFERENTIATION;
D O I
10.3389/fmolb.2023.1160851
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Background: Tissue fibrosis is a major healthcare burden that affects various organs in the body for which no effective treatments exist. An underlying, emerging theme across organs and tissue types at early stages of fibrosis is the activation of pericytes and/or fibroblasts in the perivascular space. In hepatic tissue, it is well known that liver sinusoidal endothelial cells (EC) help maintain the quiescence of stellate cells, but whether this phenomenon holds true for other endothelial and perivascular cell types is not well studied. Methods: The goal of this work was to develop an organ-on-chip microvascular model to study the effect of EC co-culture on the activation of perivascular cells perturbed by the pro-fibrotic factor TGF beta 1. A high-throughput microfluidic platform, PREDICT96, that was capable of imparting physiologically relevant fluid shear stress on the cultured endothelium was utilized. Results: We first studied the activation response of several perivascular cell types and selected a cell source, human dermal fibroblasts, that exhibited medium-level activation in response to TGF beta 1. We also demonstrated that the PREDICT96 high flow pump triggered changes in select shear-responsive factors in human EC. We then found that the activation response of fibroblasts was significantly blunted in co-culture with EC compared to fibroblast mono-cultures. Subsequent studies with conditioned media demonstrated that EC-secreted factors play at least a partial role in suppressing the activation response. A Luminex panel and single cell RNA-sequencing study provided additional insight into potential EC-derived factors that could influence fibroblast activation. Conclusion: Overall, our findings showed that EC can reduce myofibroblast activation of perivascular cells in response to TGF beta 1. Further exploration of ECderived factors as potential therapeutic targets in fibrosis is warranted.
引用
收藏
页数:19
相关论文
共 50 条
  • [31] Uraemia disrupts the vascular niche in a 3D co-culture system of human mesenchymal stem cells and endothelial cells
    Kramann, Rafael
    Couson, Simone K.
    Neuss, Sabine
    Floege, Juergen
    Knuechel, Ruth
    Schneider, Rebekka K.
    NEPHROLOGY DIALYSIS TRANSPLANTATION, 2012, 27 (07) : 2693 - 2702
  • [32] Influence of TGF-β1 expression in endothelial cells on smooth muscle cell phenotypes and MMP production under shear stress in a co-culture model
    Xiaobo Han
    Naoya Sakamoto
    Noriko Tomita
    Hui Meng
    Masaaki Sato
    Makoto Ohta
    Cytotechnology, 2019, 71 : 489 - 496
  • [33] Influence of TGF-β1 expression in endothelial cells on smooth muscle cell phenotypes and MMP production under shear stress in a co-culture model
    Han, Xiaobo
    Sakamoto, Naoya
    Tomita, Noriko
    Meng, Hui
    Sato, Masaaki
    Ohta, Makoto
    CYTOTECHNOLOGY, 2019, 71 (02) : 489 - 496
  • [34] Direct-contact co-culture between smooth muscle and endothelial cells inhibits TNF-α-mediated endothelial cell activation
    Wallace, Charles S.
    Truskey, George A.
    AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2010, 299 (02): : H338 - H346
  • [35] Liver sinusoid on a chip: Long-term layered co-culture of primary rat hepatocytes and endothelial cells in microfluidic platforms
    Kang, Young Bok
    Sodunke, Temitope R.
    Lamontagne, Jason
    Cirillo, Joseph
    Rajiv, Caroline
    Bouchard, Michael J.
    Noh, Moses
    BIOTECHNOLOGY AND BIOENGINEERING, 2015, 112 (12) : 2571 - 2582
  • [36] Role of endothelin-1 and VEGF in a co-culture model of microvascular endothelial cells and fetal rat calvarial cells
    Weyand, B
    Von Schroeder, H
    BONE, 2005, 36 : S286 - S286
  • [37] A self-assembled fibroblast-endothelial cell co-culture system that supports in vitro vasculogenesis by both human umbilical vein endothelial cells and human dermal microvascular endothelial cells
    Sorrell, J. Michael
    Baber, Marilyn A.
    Caplan, Arnold I.
    CELLS TISSUES ORGANS, 2007, 186 (03) : 157 - 168
  • [38] In vitro 3D co-culture model of human endothelial and smooth muscle cells to study pathological vascular remodeling
    San Sebastian-Jaraba, Irene
    Fernandez-Gomez, Maria Jose
    Blazquez-Serra, Rafael
    Sanz-Andrea, Sandra
    Blanco-Colio, Luis Miguel
    Mendez-Barbero, Nerea
    CLINICA E INVESTIGACION EN ARTERIOSCLEROSIS, 2024, 36 (06): : 356 - 363
  • [39] Hepatic stellate cells display a functional vascular smooth muscle cell phenotype in a three-dimensional co-culture model with endothelial cells
    Wirz, W.
    Antoine, M.
    Tag, C. G.
    Gressner, A. M.
    Kor, T.
    Hellerbrand, C.
    Kiefer, P.
    DIFFERENTIATION, 2008, 76 (07) : 784 - 794
  • [40] TGFβ signalling pathway regulates angiogenesis by endothelial cells, in an adipose-derived stromal cell/ endothelial cell co-culture 3D gel model
    Lin, Shiyu
    Xie, Jing
    Gong, Tao
    Shi, Sirong
    Zhang, Tao
    Fu, Na
    Ye, Ling
    Wang, Min
    Lin, Yunfeng
    CELL PROLIFERATION, 2015, 48 (06) : 729 - 737