Macrophages enhance contractile force in iPSC-derived human engineered cardiac tissue

被引:4
|
作者
Lock, Roberta I. [1 ]
Graney, Pamela L. [1 ]
Tavakol, Daniel Naveed [1 ]
Nash, Trevor R. [1 ]
Kim, Youngbin [1 ]
Sanchez Jr, Eloy [1 ]
Morsink, Margaretha [1 ]
Ning, Derek [1 ]
Chen, Connie [1 ]
Fleischer, Sharon [1 ]
Baldassarri, Ilaria [1 ]
Vunjak-Novakovic, Gordana [1 ,2 ,3 ]
机构
[1] Columbia Univ, Dept Biomed Engn, New York, NY 10027 USA
[2] Columbia Univ, Dept Med, New York, NY 10032 USA
[3] Columbia Univ, Coll Dent Med, New York, NY 10032 USA
来源
CELL REPORTS | 2024年 / 43卷 / 06期
关键词
PROMOTES MATURATION; CARDIOMYOCYTES; CELLS; MODEL; CATECHOLAMINES; CHIP; DIFFERENTIATION; MICROTISSUES; GENERATION; MONOCYTES;
D O I
10.1016/j.celrep.2024.114302
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Resident cardiac macrophages are critical mediators of cardiac function. Despite their known importance to cardiac electrophysiology and tissue maintenance, there are currently no stem -cell -derived models of human engineered cardiac tissues (hECTs) that include resident macrophages. In this study, we made an induced pluripotent stem cell (iPSC)-derived hECT model with a resident population of macrophages (iM0) to better recapitulate the native myocardium and characterized their impact on tissue function. Macrophage retention within the hECTs was confirmed via immunofluorescence after 28 days of cultivation. The inclusion of iM0s significantly impacted hECT function, increasing contractile force production. A potential mechanism underlying these changes was revealed by the interrogation of calcium signaling, which demonstrated the modulation of b-adrenergic signaling in +iM0 hECTs. Collectively, these findings demonstrate that macrophages significantly enhance cardiac function in iPSC-derived hECT models, emphasizing the need to further explore their contributions not only in healthy hECT models but also in the contexts of disease and injury.
引用
收藏
页数:21
相关论文
共 50 条
  • [41] A Tissue Engineered Blood Vessel Model of Hutchinson-Gilford Progeria Syndrome Using Human iPSC-derived Smooth Muscle Cells
    Atchison, Leigh
    Zhang, Haoyue
    Cao, Kan
    Truskey, George A.
    SCIENTIFIC REPORTS, 2017, 7
  • [42] M. tuberculosis infection of human iPSC-derived macrophages reveals complex membrane dynamics during xenophagy evasion
    Bernard, Elliott M.
    Fearns, Antony
    Bussi, Claudio
    Santucci, Pierre
    Peddie, Christopher J.
    Lai, Rachel J.
    Collinson, Lucy M.
    Gutierrez, Maximiliano G.
    JOURNAL OF CELL SCIENCE, 2021, 134 (05)
  • [43] Bioreactor-based mass production of human iPSC-derived macrophages enables immunotherapies against bacterial airway infections
    Ackermann, Mania
    Kempf, Henning
    Hetzel, Miriam
    Hesse, Christina
    Hashtchin, Anna Rafiei
    Brinkert, Kerstin
    Schott, Juliane Wilhelmine
    Haake, Kathrin
    Kuehnel, Mark Philipp
    Glage, Silke
    Figueiredo, Constanca
    Jonigk, Danny
    Sewald, Katherina
    Schambach, Axel
    Wronski, Sabine
    Moritz, Thomas
    Martin, Ulrich
    Zweigerdt, Robert
    Munder, Antje
    Lachmann, Nico
    NATURE COMMUNICATIONS, 2018, 9
  • [44] In vitro Differentiation of Human iPSC-derived Retinal Pigment Epithelium Cells (iPSC-RPE)
    D'Antonio-Chronowska, Agnieszka
    D'Antonio, Matteo
    Frazer, Kelly A.
    BIO-PROTOCOL, 2019, 9 (24):
  • [45] Sarcomere Disassembly and Transfection Efficiency in Proliferating Human iPSC-Derived Cardiomyocytes
    Yuan, Qianliang
    Maas, Renee G. C.
    Brouwer, Ellen C. J.
    Pei, Jiayi
    Blok, Christian Snijders
    Popovic, Marko A.
    Paauw, Nanne J.
    Bovenschen, Niels
    Hjortnaes, Jesper
    Harakalova, Magdalena
    Doevendans, Pieter A.
    Sluijter, Joost P. G.
    van der Velden, Jolanda
    Buikema, Jan W.
    JOURNAL OF CARDIOVASCULAR DEVELOPMENT AND DISEASE, 2022, 9 (02)
  • [46] Myosin light chain 2-based selection of human iPSC-derived early ventricular cardiac myocytes
    Bizy, Alexandra
    Guerrero-Serna, Guadalupe
    Hu, Bin
    Ponce-Balbuena, Daniela
    Willis, B. Cicero
    Zarzoso, Manuel
    Ramirez, Rafael J.
    Sener, Michelle F.
    Mundada, Lakshmi V.
    Klos, Matthew
    Devaney, Eric J.
    Vikstrom, Karen L.
    Herron, Todd J.
    Jalife, Jose
    STEM CELL RESEARCH, 2013, 11 (03) : 1335 - 1347
  • [47] An Impedance-Based Cellular Assay Using Human iPSC-Derived Cardiomyocytes to Quantify Modulators of Cardiac Contractility
    Scott, Clay W.
    Zhang, Xiaoyu
    Abi-Gerges, Najah
    Lamore, Sarah D.
    Abassi, Yama A.
    Peters, Matthew F.
    TOXICOLOGICAL SCIENCES, 2014, 142 (02) : 331 - 338
  • [48] Neurotoxicity of phenylalanine on human iPSC-derived cerebral organoids
    Kim, Jieun
    Lee, Seungbok
    Lee, Jaemeun
    Park, Jong-Chan
    Kim, Kyung Hyun
    Ko, Jung Min
    Park, Sun-Hyun
    Kim, Seung-Ki
    Mook-Jung, Inhee
    Lee, Ji Yeoun
    MOLECULAR GENETICS AND METABOLISM, 2022, 136 (02) : 132 - 144
  • [49] A human iPSC-Derived myelination model for investigating fetal brain injuries
    Hiraiwa, Tsuyoshi
    Yoshii, Shoko
    Kawada, Jiro
    Sugawara, Tohru
    Kawasaki, Tomoyuki
    Shibata, Shinsuke
    Shindo, Tomoko
    Fujimori, Keiya
    Umezawa, Akihiro
    Akutsu, Hidenori
    REGENERATIVE THERAPY, 2025, 29 : 100 - 107
  • [50] Recapitulation of NOD/RIPK2 signaling in iPSC-derived macrophages
    Harati, Mozhgan Dehghan
    King, Jim
    Langer, Simon
    Binder, Florian
    Heilker, Ralf
    SLAS DISCOVERY, 2024, 29 (07)