Dynamic Control of Contractile Force in Engineered Heart Tissue

被引:5
|
作者
Li, Huate [1 ]
Sundaram, Subramanian [2 ]
Hu, Ruifeng [1 ]
Lou, Lihua [3 ]
Sanchez, Francisco [1 ]
McDonald, William [4 ]
Agarwal, Arvind [3 ]
Chen, Christopher S. [2 ]
Bifano, Thomas G. [5 ]
机构
[1] Boston Univ, Mech Engn Dept, Boston, MA USA
[2] Boston Univ, Biomed Engn Dept, Boston, MA USA
[3] Florida Int Univ, Dept Mech & Mat Engn, Miami, FL USA
[4] Cambridge Rindge & Latin Sch, Cambridge, MA USA
[5] Boston Univ, Mech Engn Dept, Boston, MA 02215 USA
基金
美国国家科学基金会;
关键词
Biomedical imaging; cardiomyocyte; contractility; force control; tissue engineering; PROMOTES MATURATION; STEM; HYPERTROPHY; MANIPULATE; PLATFORM; STRETCH; CELLS;
D O I
10.1109/TBME.2023.3239594
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Three-dimensional engineered heart tissues (EHTs) derived from human induced pluripotent stem cells (iPSCs) have become an important resource for both drug toxicity screening and research on heart disease. A key metric of EHT phenotype is the contractile (twitch) force with which the tissue spontaneously beats. It is well-known that cardiac muscle contractility - its ability to do mechanical work - depends on tissue prestrain (preload) and external resistance (afterload). Objectives: Here, we demonstrate a technique to control afterload while monitoring contractile force exerted by EHTs. Methods: We developed an apparatus that can regulate EHT boundary conditions using real-time feedback control. The system is comprised of a pair of piezoelectric actuators that can strain the scaffold and a microscope that can measure EHT force and length. Closed loop control allows dynamic regulation of effective EHT boundary stiffness. Results: When controlled to switch instantaneously from auxotonic to isometric boundary conditions, EHT twitch force immediately doubled. Changes in EHT twitch force as a function of effective boundary stiffness were characterized and compared to twitch force in auxotonic conditions. Conclusion: EHT contractility can be regulated dynamically through feedback control of effective boundary stiffness. Significance: The capacity to alter the mechanical boundary conditions of an engineered tissue dynamically offers a new way to probe tissue mechanics. This could be used to mimic afterload changes that occur naturally in disease, or to improve mechanical techniques for EHT maturation.
引用
收藏
页码:2237 / 2245
页数:9
相关论文
共 50 条
  • [21] Engineered early embryonic cardiac tissue retains proliferative and contractile properties of developing embryonic myocardium
    Tobita, Kimimasa
    Liu, Li J.
    Janczewski, Andrzej M.
    Tinney, Joseph P.
    Nonemaker, Jill M.
    Augustine, Serena
    Stolz, Donna B.
    Shroff, Sanjeev G.
    Keller, Bradley B.
    AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2006, 291 (04): : H1829 - H1837
  • [22] Prevascularization of self-organizing engineered heart tissue by human umbilical vein endothelial cells abrogates contractile performance
    Sondergaard, Claus Svane
    Witt, Russell
    Mathews, Grant
    Najibi, Skender
    Le, Lisa
    Clift, Tracy
    Si, Ming-Sing
    CELL AND TISSUE RESEARCH, 2012, 350 (03) : 439 - 444
  • [23] Prevascularization of self-organizing engineered heart tissue by human umbilical vein endothelial cells abrogates contractile performance
    Claus Svane Sondergaard
    Russell Witt
    Grant Mathews
    Skender Najibi
    Lisa Le
    Tracy Clift
    Ming-Sing Si
    Cell and Tissue Research, 2012, 350 : 439 - 444
  • [24] Tissue-engineered heart valve prostheses: 'state of the heart'
    Migneco, Francesco
    Hollister, Scott J.
    Birla, Ravi K.
    REGENERATIVE MEDICINE, 2008, 3 (03) : 399 - 419
  • [25] Establishing the Framework for Tissue Engineered Heart Pumps
    Mohamed, Mohamed A.
    Hogan, Matt K.
    Patel, Nikita M.
    Tao, Ze-Wei
    Gutierrez, Laura
    Birla, Ravi K.
    CARDIOVASCULAR ENGINEERING AND TECHNOLOGY, 2015, 6 (03) : 220 - 229
  • [26] Computational Analysis of Contractility in Engineered Heart Tissue
    Mathews, Grant
    Sondergaard, Claus
    Jeffreys, Angela
    Childs, William
    Le, Bao Linh
    Sahota, Amrit
    Najibi, Skender
    Nolta, Jan
    Si, Ming-Sing
    IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2012, 59 (05) : 1429 - 1435
  • [27] Engineered Heart Tissue Model of Diabetic Myocardium
    Song, Hannah
    Zandstra, Peter W.
    Radisic, Milica
    TISSUE ENGINEERING PART A, 2011, 17 (13-14) : 1869 - 1878
  • [28] Engineered heart tissue for regeneration of diseased hearts
    Zimmermann, WH
    Melnychenko, I
    Eschenhagen, T
    BIOMATERIALS, 2004, 25 (09) : 1639 - 1647
  • [29] Establishing the Framework for Tissue Engineered Heart Pumps
    Mohamed A. Mohamed
    Matt K. Hogan
    Nikita M. Patel
    Ze-Wei Tao
    Laura Gutierrez
    Ravi K. Birla
    Cardiovascular Engineering and Technology, 2015, 6 : 220 - 229
  • [30] BIOCOMPATIBILITY ISSUE OF TISSUE ENGINEERED HEART VALVES
    Wilczek, P.
    ARCHIVES OF METALLURGY AND MATERIALS, 2015, 60 (03) : 2261 - 2266