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November 1, 1993Circulation Research158 citationsOpen Access

Microscopic conduction in cultured strands of neonatal rat heart cells measured with voltage-sensitive dyes.

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VFVladimir G. FastAKAndré G. Kléber

Key Result

In cultured neonatal rat myocytes, lateral cell-to-cell connections in two-dimensional strands smoothed the excitation wave front, reducing mean junctional conduction delay to 32 microseconds.

Key Points

  • The research investigates how electrical activation propagates in cultured strands of neonatal rat heart cells.
  • Recorded membrane potential changes using voltage-sensitive dye RH-237 and photodiode technique.
  • Measured cytoplasmic conduction time and junctional conduction time in one-dimensional and two-dimensional cell strands.
  • Utilized mathematical modeling to analyze conduction dynamics in cell connections.
  • Cytoplasmic conduction time in one-dimensional strands was 38 microseconds; junctional conduction time was 118 microseconds (P < 0.0001).
  • In two-dimensional strands, cytoplasmic conduction time was 57 microseconds; junctional conduction time was 89 microseconds (P < 0.0001).
  • Mean junctional conduction delays were 80 and 32 microseconds, constituting 51% and 22% of conduction time in one-dimensional and two-dimensional strands, respectively.

Structured PICO

P
Population
Synthetic strands of neonatal rat myocytes cultured on a growth-directing matrix
I
Intervention
Optical mapping using voltage-sensitive dye (RH-237) and a photodiode technique
C
Comparator
One-dimensional cell chains (end-to-end connections only) versus two-dimensional strands (lateral and end-to-end connections)
O
Outcome
Cytoplasmic conduction time and junctional conduction timesurrogate

Current flow through lateral cell-to-cell connections smooths the excitation wave front during longitudinal conduction in myocardial tissue.

Main Result

p-value: p=<.0001

Abstract

Microscopic discontinuities in electrical activation were assessed in synthetic strands of neonatal rat myocytes cultured on a growth-directing matrix. An optical method using voltage-sensitive dye (RH-237) and a photodiode technique was used for recordings of membrane potential changes with subcellular resolution. Spatial resolution of the method (diameter of measurement area, 5.5 microns; interdiode distance, 30 microns) allowed for simultaneous measurements of cytoplasmic conduction time within a single cell and junctional conduction time across the cell border. In one-dimensional cell chains, where cells were juxtaposed by end-to-end connections but devoid of lateral connections, propagation of the excitation wave was strongly nonuniform: cytoplasmic conduction time was 38 +/- 30 (mean +/- SD) microseconds (n = 37), whereas junctional conduction time was 118 +/- 40 microseconds (n = 27, P < .0001). A mean delay introduced by a single junction was 80 microseconds, or 51% of conduction time. In two-dimensional strands consisting of several cells in width, which exhibited lateral as well as end-to-end connections, inhomogeneity of conduction was smaller: the cytoplasmic and junctional conduction times were 57 +/- 30 (n = 46) and 89 +/- 40 (n = 48) microseconds, respectively (P < .0001); mean junctional conduction delay was 32 microseconds (22% of conduction time). Mathematical modeling suggested that the averaging effect of lateral connections is caused by lateral convergence of local excitatory current beyond and lateral divergence before end-to-end connections. Our results demonstrate that the current flow through lateral cell-to-cell connections smooth the excitation wave front during longitudinal conduction in myocardial tissue.

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Cite This Study

Fast et al. (1993) studied Cultured strands of neonatal rat heart cells. Two-dimensional strands with lateral connections vs. One-dimensional cell chains without lateral connections was evaluated on Cytoplasmic and junctional conduction times (p=<.0001). In cultured neonatal rat myocytes, lateral cell-to-cell connections in two-dimensional strands smoothed the excitation wave front, reducing mean junctional conduction delay to 32 microseconds.

synapsesocial.com/papers/6a0f8d8e01be78fe815fd2cdhttps://doi.org/10.1161/01.res.73.5.914
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