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March 1, 1989Circulation Research257 citationsOpen Access

Distribution and three-dimensional structure of intercellular junctions in canine myocardium.

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RHRobert HoytMCMatthew L. CohenJSJeffrey E. Saffitz

Key Result

Morphometric analysis of canine myocardium showed 80% of gap junctional membrane occurs in large, transverse ribbon-like junctions, with myocytes connected to an average of 9.1 other cells.

Key Points

  • To analyze the three-dimensional structure and distribution of intercellular junctions in canine myocardium.
  • Used transmission electron microscopy and scanning electron microscopy on ultrathin sections of myocardium.
  • Conducted morphometric analysis of left ventricular myocardium in three orthogonal planes.
  • Examined serial plastic sections with light microscopy.
  • 80% of total gap junction membrane occurred in large, ribbon-like structures at cell end processes.
  • The remaining 20% was found in small junctions within intercalated disks' plicate segments.
  • Myocytes connected at intercalated disks to an average of 9.1 ± 2.2 other myocytes.

Structured PICO

P
Population
Canine left ventricular myocardium and disaggregated myocytes
I
Intervention
Transmission electron microscopy, scanning electron microscopy, and morphometric analysis
O
Outcome
Three-dimensional structure and distribution of intercellular junctions (gap junctions)surrogate

This study maps the 3D structure of canine myocardial gap junctions, showing they are primarily located at cell end processes, which informs models of cardiac conduction.

Abstract

Electrotonic coupling of cardiac myocytes at gap junctions may influence patterns of conduction in myocardium. To delineate the three-dimensional structure and distribution of intercellular junctions, we analyzed serial ultrathin sections of canine myocardium with transmission electron microscopy and disaggregated myocytes with scanning electron microscopy. Morphometric analysis of left ventricular myocardium sectioned in three orthogonal planes revealed that 80% of total gap junctional membrane occurred in large, ribbon-like gap junctions oriented transversely at cell end processes. The remaining 20% of gap junctional membrane was contained in small gap junctions located within plicate segments (interdigitating regions of cell-to-cell adhesion) of intercalated disks. In serial ultrathin sections, all gap junctions were contiguous with plicate segments. Thus, true "lateral" gap junctions do not exist in working ventricular myocytes and would not likely be able to withstand shear forces created by laterally sliding cells. Examination of serial plastic sections with light microscopy revealed complex overlapping of myocytes such that individual myocytes were connected at intercalated disks to an average of 9.1 +/- 2.2 other myocytes. These observations provide an improved understanding of the extent and distribution of cell junctions and should facilitate experimental and model studies of conduction in myocardium.

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Cite This Study

Hoyt et al. (1989) studied Canine myocardium. Morphometric analysis of canine myocardium showed 80% of gap junctional membrane occurs in large, transverse ribbon-like junctions, with myocytes connected to an average of 9.1 other cells.

synapsesocial.com/papers/6a081c6e280cd4e998e8a6cfhttps://doi.org/10.1161/01.res.64.3.563
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