Welcome to our exploration of neurons and their resting state!At rest, neurons maintain a precise electrical balance across their cell membrane.The cell membrane separates two different ionic environments. Outside the cell, we find a high concentration of sodium ions.Inside the cell, we find a high concentration of potassium ions.A special protein called the sodium-potassium pump actively maintains these ion concentrations.This pump continuously moves three sodium ions out of the cell for every two potassium ions it brings in.This creates an ion gradient across the membrane, with different concentrations inside and outside the cell.The result is an electrical difference across the membrane called the resting potential, measuring negative seventy millivolts.This electrical difference acts like a charged battery, storing potential energy that can be used to generate nerve impulses.This resting state is essential for the neuron's ability to generate and transmit signals.When a stimulus reaches the neuron, it triggers a response in the cell membrane.The stimulus can come from various sources like touch, heat, or signals from other neurons.This stimulus causes special gates in the membrane, called sodium channels, to begin opening.As the channels open, sodium ions begin to flow into the cell.If enough sodium enters to reach a critical threshold of negative fifty-five millivolts, it triggers a chain reaction.This is the crucial moment when a nerve impulse begins, similar to a row of dominoes starting to fall.Once the threshold is reached, the process becomes self-sustaining, leading to rapid sodium entry.When the membrane voltage reaches threshold, a dramatic series of events begins.Thousands of voltage-gated sodium channels snap open in sequence along the nerve fiber.This triggers a massive influx of sodium ions, causing a rapid spike in the positive charge inside the cell.This creates what we call an action potential - a rapid change in voltage that follows a characteristic pattern.The entire process happens in distinct phases, each lasting only fractions of a millisecond.Immediately after the spike, sodium channels close and potassium channels open to restore the original charge difference.Let's review the key points about action potentials.Thanks for learning about action potentials with Spark.E!
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