Literature DB >> 10988238

Synthetic strands of neonatal mouse cardiac myocytes: structural and electrophysiological properties.

S P Thomas1, L Bircher-Lehmann, S A Thomas, J Zhuang, J E Saffitz, A G Kléber.   

Abstract

The aim of the present study was to morphologically and electrically characterize synthetic strands of mouse ventricular myocytes. Linear strands of mouse ventricular myocytes with widths of 34.7+/-4.4 microm (W(1)), 57.9+/-2.5 microm (W(2)), and 86.4+/-3. 6 microm (W(3)) and a length of 10 mm were produced on glass coverslips with a photolithographic technique. Action potentials (APs) were measured from individual cells within the strands with cell-attached microelectrodes. Impulse propagation and AP upstrokes were measured with multisite optical mapping (RH237). Immunostaining was performed to assess cell-cell connections and myofibril arrangement with polyclonal antisera against connexin43 and N-cadherins and monoclonal antibodies against cardiac myosin. Light microscopy and myosin staining showed dense growth of well-developed elongated myocytes with lengths of 34.2+/-4.2 microm (W(1)), 36. 9+/-5.8 microm (W(2)), and 43.7+/-6.9 microm (W(3)), and length/width ratios of 3.9+/-0.2. Gap junctions were distributed around the cell borders (3 to 4 junctions/microm(2) cell area). Each cell was connected by gap junctions to 6.5+/-1.1 neighboring cells. AP duration shortened with time in culture (action potential duration at 50% repolarization: day 4, 103+/-34 ms; day 8, 16+/-3 ms; P:<0.01). Minimum diastolic potential and AP amplitude were 71+/-5 and 97.2+/-7.6 mV, respectively. Conduction velocity and the maximum dV/dt of the AP upstroke were 43.9+/-13.6 cm/s and 196+/-67 V/s, respectively. Thus, neonatal ventricular mouse myocytes can be grown in continuous synthetic strands. Gap junction distribution is similar to the neonatal pattern observed in the hearts of larger mammals. Conduction velocity is in the range observed in adult mice and in the higher range for mammalian species probably due to the higher dV/dt(max). This technique will permit the study of propagation, AP, and structure-function relations at cellular resolution in genetically modified mice.

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Year:  2000        PMID: 10988238     DOI: 10.1161/01.res.87.6.467

Source DB:  PubMed          Journal:  Circ Res        ISSN: 0009-7330            Impact factor:   17.367


  30 in total

1.  Ensembles of engineered cardiac tissues for physiological and pharmacological study: heart on a chip.

Authors:  Anna Grosberg; Patrick W Alford; Megan L McCain; Kevin Kit Parker
Journal:  Lab Chip       Date:  2011-11-10       Impact factor: 6.799

Review 2.  Biology on a chip: microfabrication for studying the behavior of cultured cells.

Authors:  Nianzhen Li; Anna Tourovskaia; Albert Folch
Journal:  Crit Rev Biomed Eng       Date:  2003

3.  Cell-to-cell coupling in engineered pairs of rat ventricular cardiomyocytes: relation between Cx43 immunofluorescence and intercellular electrical conductance.

Authors:  Megan L McCain; Thomas Desplantez; Nicholas A Geisse; Barbara Rothen-Rutishauser; Helene Oberer; Kevin Kit Parker; Andre G Kleber
Journal:  Am J Physiol Heart Circ Physiol       Date:  2011-11-11       Impact factor: 4.733

4.  Connexin43 ablation in foetal atrial myocytes decreases electrical coupling, partner connexins, and sodium current.

Authors:  Thomas Desplantez; Megan L McCain; Philippe Beauchamp; Ghislaine Rigoli; Barbara Rothen-Rutishauser; Kevin Kit Parker; Andre G Kleber
Journal:  Cardiovasc Res       Date:  2012-01-27       Impact factor: 10.787

5.  Controlling the contractile strength of engineered cardiac muscle by hierarchal tissue architecture.

Authors:  Adam W Feinberg; Patrick W Alford; Hongwei Jin; Crystal M Ripplinger; Andreas A Werdich; Sean P Sheehy; Anna Grosberg; Kevin Kit Parker
Journal:  Biomaterials       Date:  2012-05-15       Impact factor: 12.479

6.  Cdon deficiency causes cardiac remodeling through hyperactivation of WNT/β-catenin signaling.

Authors:  Myong-Ho Jeong; Hyun-Ji Kim; Jung-Hoon Pyun; Kyu-Sil Choi; Dong I Lee; Soroosh Solhjoo; Brian O'Rourke; Gordon F Tomaselli; Dong Seop Jeong; Hana Cho; Jong-Sun Kang
Journal:  Proc Natl Acad Sci U S A       Date:  2017-02-02       Impact factor: 11.205

7.  Organotypic heart slices for cell transplantation and physiological studies.

Authors:  Walter Habeler; Marc Peschanski; Christelle Monville
Journal:  Organogenesis       Date:  2009-04       Impact factor: 2.500

Review 8.  In vitro models of the cardiac microenvironment to study myocyte and non-myocyte crosstalk: bioinspired approaches beyond the polystyrene dish.

Authors:  Celinda M Kofron; Ulrike Mende
Journal:  J Physiol       Date:  2017-02-27       Impact factor: 5.182

9.  Heterogeneity of adult masseter muscle satellite cells with cardiomyocyte differentiation potential.

Authors:  Wei Huang; Jialiang Liang; Yuliang Feng; Zhanfeng Jia; Lin Jiang; Wenfeng Cai; Christian Paul; Jianguo G Gu; Peter J Stambrook; Ronald W Millard; Xiao-Lan Zhu; Ping Zhu; Yigang Wang
Journal:  Exp Cell Res       Date:  2018-05-26       Impact factor: 3.905

10.  Impulse propagation in synthetic strands of neonatal cardiac myocytes with genetically reduced levels of connexin43.

Authors:  Stuart P Thomas; Jan P Kucera; Lilly Bircher-Lehmann; Yoram Rudy; Jeffrey E Saffitz; André G Kléber
Journal:  Circ Res       Date:  2003-05-01       Impact factor: 17.367

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