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May 1, 1985AJP Heart and Circulatory Physiology9 citations

Passive membrane properties of isolated feline ventricular myocytes

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SHS. R. HouserABAnthony BahinskiLSLester Silver

Key Points

  • The aim is to define the relationship between passive potassium fluxes and membrane properties in isolated feline ventricular myocytes.
  • Isolated feline myocytes were studied to measure unidirectional potassium fluxes with 42K.

Structured PICO

P
Population
Isolated feline ventricular myocytes
I
Intervention
Varying extracellular potassium concentrations (K+o)
C
Comparator
Normal K+o (5 mM) vs lowered or increased K+o
O
Outcome
Functional relationship between passive unidirectional transmembrane potassium (K+) fluxes, membrane permeability to K+ (PK), and membrane K+ (Ko) dependencysurrogate

In isolated feline ventricular myocytes, unidirectional K+ fluxes do not obey the independence principle, and membrane permeability to K+ is significantly greater than to other ions.

Abstract

Membrane properties of adult mammalian cardiac muscle are difficult to define mainly because of experimental complications arising from complex packing of myocytes in the tissue matrix. Isolated feline myocytes were used in the present study to avoid these complications. The objectives of this study were to define the functional relationship between passive unidirectional transmembrane potassium (K+) fluxes, membrane permeability to K+ (PK), and membrane K+ (Ko) dependency of this relationship. Passive (ouabain-insensitive) components of unidirectional K+ fluxes were measured with 42K, and membrane potential (Em) and membrane (slope) conductance (gm) were measured with electrophysiological techniques. Myocytes studied in solutions with 5 mM K+o had normal resting potentials (-81 +/- 1 mV). The input resistance and membrane time constant were 2.72 +/- 0.47 X 10(-7) omega and 7.01 +/- 1.0 ms, respectively. When K+o was lowered Em hyperpolarized, input resistance (Ri) increased, and K+ fluxes decreased. When K+o was increased Em depolarized, Ri decreased, and K+ fluxes increased. These data were combined to determine whether K+ fluxes obey the independence principle and to calculate PK and gK. The results obtained support the idea that 1) unidirectional K+ fluxes do not obey the independence principle, 2) PK is much greater than the membrane permeability to other ions, and 3) the gK calculated from passive K+ fluxes was similar to the gm measured electrically (at all K+o's tested).

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Cite This Study

Houser et al. (1985) studied this question.

synapsesocial.com/papers/6a12a051375951284434bbb4https://doi.org/10.1152/ajpheart.1985.248.5.h622
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