Forced aggregation and defined factors allow highly uniform-sized embryoid bodies and functional cardiomyocytes from human embryonic and induced pluripotent stem cells
Jazyk angličtina Země Japonsko Médium print-electronic
Typ dokumentu časopisecké články, práce podpořená grantem
- MeSH
- buněčná diferenciace MeSH
- buněčné linie MeSH
- embryoidní tělíska fyziologie MeSH
- indukované pluripotentní kmenové buňky fyziologie MeSH
- kardiomyocyty * cytologie fyziologie MeSH
- lidé MeSH
- reprodukovatelnost výsledků MeSH
- ryanodinový receptor vápníkového kanálu metabolismus MeSH
- sarkoplazmatické retikulum metabolismus MeSH
- těžké řetězce myosinu metabolismus MeSH
- troponin T metabolismus MeSH
- tvar buňky MeSH
- vápník metabolismus MeSH
- velikost buňky MeSH
- Check Tag
- lidé MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
- Názvy látek
- ryanodinový receptor vápníkového kanálu MeSH
- těžké řetězce myosinu MeSH
- troponin T MeSH
- vápník MeSH
In vitro human embryonic stem cells (hESCs) and human induced pluripotent stem cells (hiPSCs) can differentiate into functional cardiomyocytes (CMs). Protocols for cardiac differentiation of hESCs and hiPSCs include formation of the three-dimensional cell aggregates called embryoid bodies (EBs). The traditional suspension method for EB formation from clumps of cells results in an EB population heterogeneous in size and shape. In this study we show that forced aggregation of a defined number of single cells on AggreWell plates gives a high number of homogeneous EBs that can be efficiently differentiated into functional CMs by application of defined growth factors in the media. For cardiac differentiation, we used three hESC lines and one hiPSC line. Our contracting EBs and the resulting CMs express cardiac markers, namely myosin heavy chain α and β, cardiac ryanodine receptor/calcium release channel, and cardiac troponin T, shown by real-time polymerase chain reaction and immunocytochemistry. Using Ca(2+) imaging and atomic force microscopy, we demonstrate the functionality of RyR2 to release Ca(2+) from the sarcoplasmic reticulum as well as reliability in contractile and beating properties of hESC-EBs and hiPSC-EBs upon the stimulation or inhibition of the β-adrenergic pathway.
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Nature. 2008 May 22;453(7194):524-8 PubMed
Cryobiology. 1990 Oct;27(5):539-46 PubMed
Stem Cells. 2008 Aug;26(8):1961-72 PubMed
J Embryol Exp Morphol. 1985 Jun;87:27-45 PubMed
Tissue Cell. 2013 Feb;45(1):54-60 PubMed
J Pharmacol Exp Ther. 1965 May;148:202-14 PubMed
Differentiation. 2008 Nov;76(9):958-70 PubMed
PLoS One. 2011 Apr 08;6(4):e18293 PubMed
Nat Rev Mol Cell Biol. 2012 Nov;13(11):713-26 PubMed
Acta Physiol Scand. 1958 Oct 28;44(1):55-66 PubMed
Stem Cells. 2008 Sep;26(9):2300-10 PubMed
PLoS One. 2012;7(5):e37559 PubMed
Eur Heart J. 2013 Jun;34(21):1575-86 PubMed
Biomaterials. 2010 Mar;31(7):1885-93 PubMed
Heart Vessels. 1997;Suppl 12:53-7 PubMed
Biophys J. 2005 Oct;89(4):2533-41 PubMed
Stem Cells. 2007 Apr;25(4):929-38 PubMed
Heart Vessels. 1997;Suppl 12:18-22 PubMed
Methods Mol Biol. 2013;946:523-33 PubMed
J Mol Cell Cardiol. 2011 Sep;51(3):280-7 PubMed
Biotechnol Prog. 2009 Jan-Feb;25(1):43-51 PubMed
Heart Vessels. 2013 Nov;28(6):785-94 PubMed
J Gen Physiol. 1968 Nov;52(5):750-9 PubMed
Stem Cells. 2010 Apr;28(4):661-73 PubMed
Biochem Biophys Res Commun. 2011 Dec 9;416(1-2):51-7 PubMed
Cell Stem Cell. 2011 Feb 4;8(2):228-40 PubMed
Int J Dev Biol. 2008;52(4):353-63 PubMed
Cryobiology. 1997 Nov;35(3):193-200 PubMed
Experientia. 1967 Jul 15;23(7):559 PubMed
Heart Vessels. 2014 May;29(3):396-403 PubMed
Stem Cell Rev Rep. 2011 Nov;7(4):976-86 PubMed
Stem Cells. 2005 Sep;23(8):1200-11 PubMed
PLoS One. 2011 Apr 01;6(4):e18037 PubMed
Nat Biotechnol. 2011 Oct 23;29(11):1011-8 PubMed
DMD Pluripotent Stem Cell Derived Cardiac Cells Recapitulate in vitro Human Cardiac Pathophysiology
HIF-1alpha Deficiency Attenuates the Cardiomyogenesis of Mouse Embryonic Stem Cells
Human pluripotent stem cell-derived cardiomyocytes as research and therapeutic tools