18.8
"“ 细胞膜内外电荷或电压的相对差称为膜电位。这是由于膜对各种离子的渗透性不同以及这些离子在膜上的浓度不同而产生的。”"
将微电极插入细胞内,并将电荷与细胞外液中的参比电极进行比较,可以测量细胞膜电位静止神经元的膜电位为负,通常为-70毫伏(mV)。这叫做静息膜电位。负值表…
[静息膜电位] - 静息膜电位 是神经元细胞膜 内部和外部之间电位差 当神经元静止且没有受刺激时。 通常,该值约为负70毫伏 意思是内部有更多负电荷。 细胞膜是选择性渗透的 因为大多数离子和分子 不能被动地扩散到它们之间 它们通常需要跨膜蛋白 例如离子通道,以允许它们通过 当神经元休息时 钾通道是一种主要的 打开离子的通道 另一种跨膜蛋白 钠钾泵 利用能量连续移动钠 使钠离开细胞,使钾进入。 此操作会产生浓度梯度 较高浓度的钾 在细胞里面,而不是在外面。 然后扩散力引起钾离子 浓度梯度向下移动 通过开放的钾通道 并离开细胞 这些正离子的运动与 细胞内带负电荷的蛋白质结合 在膜内产生负电荷 即在神经元处于静止状态时的负电位。
View the full transcript and gain access to JoVE Core videos
Q1: What is the resting membrane potential and why is it negative?
The resting membrane potential is the electrical potential difference between the inside and outside of a neuron at rest, typically around negative 70 millivolts. The inside is more negative because positive potassium ions move out of the cell through open potassium channels, while negatively charged proteins remain trapped inside, creating a polarized state essential for neural signaling.
Q2: How does the sodium-potassium pump establish ion concentration gradients?
The sodium-potassium pump is a transmembrane protein that continuously pumps three sodium ions out of the cell for every two potassium ions pumped in. This active transport process uses energy to create concentration gradients, establishing higher sodium concentrations outside the neuron and higher potassium concentrations inside, which drives the resting membrane potential.
Q3: Why is the membrane selectively permeable to potassium at rest?
At rest, potassium channels are the main type of ion channel open in the neuron membrane. Most ions cannot passively diffuse through the lipid bilayer because charged ions cannot cross its hydrophobic interior. Potassium channels allow potassium ions to move down their concentration gradient, making the resting membrane potential primarily determined by potassium movement.
Q4: What role do negatively charged proteins play in the resting membrane potential?
Negatively charged proteins are trapped inside the neuron and cannot cross the cell membrane. Combined with the outward movement of positive potassium ions, these internal negative charges create the relative negativity inside the membrane. This accumulation of negative charge inside contributes directly to the negative resting potential of approximately negative 70 millivolts.
Q5: How does tetrodotoxin affect the resting membrane potential?
Tetrodotoxin is a neurotoxin that selectively blocks voltage-gated sodium channels, preventing sodium ions from entering the cell. However, it does not disrupt the resting membrane potential because the resting state depends primarily on potassium permeability and the sodium-potassium pump, not sodium channel activity. It disrupts action potentials instead.
Q6: What happens when potassium ions reach electrochemical equilibrium?
As potassium ions diffuse out of the cell, positive charges accumulate outside the membrane, creating electrostatic repulsion that opposes further outward movement. Eventually, outward diffusion of potassium is balanced by this electrostatic repulsion, reaching electrochemical equilibrium. This balance produces the stable negative resting potential observed in neurons.
Q7: How is the resting membrane potential measured in neurons?
The resting membrane potential is measured by inserting a microelectrode into a neuron and comparing the electrical charge to a reference electrode in the extracellular fluid. This technique reveals the voltage difference between the inside and outside of the cell membrane, typically showing a negative value around negative 70 millivolts in resting neurons.