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  2. Membrane potential - Wikipedia

    en.wikipedia.org/wiki/Membrane_potential

    The large purple structure with an arrow represents a transmembrane potassium channel and the direction of net potassium movement. Membrane potential (also transmembrane potential or membrane voltage) is the difference in electric potential between the interior and the exterior of a biological cell. It equals the interior potential minus the ...

  3. Resting potential - Wikipedia

    en.wikipedia.org/wiki/Resting_potential

    Thus the membrane potential will not be right at E K, but rather depolarized from E K by an amount of approximately 5% of the 140 mV difference between E K and E Na. Thus, the cell's resting potential will be about −73 mV. In a more formal notation, the membrane potential is the weighted average of each contributing ion's equilibrium ...

  4. Potassium channel - Wikipedia

    en.wikipedia.org/wiki/Potassium_channel

    Tandem pore domain potassium channel - are constitutively open or possess high basal activation, such as the "resting potassium channels" or "leak channels" that set the negative membrane potential of neurons. Voltage-gated potassium channel - are voltage-gated ion channels that open or close in response to changes in the transmembrane voltage.

  5. Voltage-gated potassium channel - Wikipedia

    en.wikipedia.org/wiki/Voltage-gated_potassium...

    Voltage-gated potassium channels (VGKCs) are transmembrane channels specific for potassium and sensitive to voltage changes in the cell's membrane potential. During action potentials , they play a crucial role in returning the depolarized cell to a resting state.

  6. Reversal potential - Wikipedia

    en.wikipedia.org/wiki/Reversal_potential

    We can consider as an example a positively charged ion, such as K +, and a negatively charged membrane, as it is commonly the case in most organisms. [4] [5] The membrane voltage opposes the flow of the potassium ions out of the cell and the ions can leave the interior of the cell only if they have sufficient thermal energy to overcome the energy barrier produced by the negative membrane ...

  7. Hyperpolarization (biology) - Wikipedia

    en.wikipedia.org/wiki/Hyperpolarization_(biology)

    Hyperpolarization is a change in a cell's membrane potential that makes it more negative. Cells typically have a negative resting potential, with neuronal action potentials depolarizing the membrane. When the resting membrane potential is made more negative, it increases the minimum stimulus needed to surpass the needed threshold.

  8. Depolarization - Wikipedia

    en.wikipedia.org/wiki/Depolarization

    Potassium ions (K +) begin to move down the electrochemical gradient (in favor of the concentration gradient and the newly established electrical gradient). As potassium moves out of the cell the potential within the cell decreases and approaches its resting potential once more. The sodium potassium pump works continuously throughout this ...

  9. Goldman equation - Wikipedia

    en.wikipedia.org/wiki/Goldman_equation

    The ionic charge determines the sign of the membrane potential contribution. During an action potential, although the membrane potential changes about 100mV, the concentrations of ions inside and outside the cell do not change significantly. They are always very close to their respective concentrations when the membrane is at their resting ...