轴突初始段的活动依赖转移微调神经元刺激能力
Matthew S Grubb1, Juan Burrone
1MRC Centre for Developmental Neurobiology, King's College London, 4th Floor, New Hunt's House, Guy's Campus, London SE1 1UL, UK. matthew.grubb@kcl.ac.uk
Nature
|June 15, 2010
概括
神经元可以根据电活动改变其轴突初始段 (AIS) 的位置. 这种依赖活动的可塑性,涉及电压通道,可能微调神经元刺激性.
科学领域:
- 神经科学是一个神经科学.
- 细胞生物学 细胞生物学
- 电子生理学 电子生理学
背景情况:
- 轴突初始段 (AIS) 对于神经元中的动作潜能启动至关重要.
- AIS的位置在神经元类型之间有所不同,并影响信息处理.
- 控制AIS在单个神经元中的位置的因素在很大程度上是未知的.
研究的目的:
- 调查神经元电活动是否可以改变AIS的位置.
- 确定依赖于活动的AIS定位背后的机制.
- 为了确定AIS位置的变化是否会影响神经元刺激性.
主要方法:
- 利用分离的海马体培养物.
- 应用慢性去极化使用高细胞外.
- 采用发光二极管 (LED) 光刺激与通道rhodopsin-2.
- 测量AIS组件的移动和动作潜力的触发值.
主要成果:
- 慢性脱极化将AIS组件,包括通道,从 soma 移至17μm.
- AIS的重新定位是可逆的,并且取决于T型和/或L型通道激活.
- 爆发式光刺激诱导远端AIS转移,与常规刺激不同.
- 改变的AIS位置与行动潜力升值变化相关.
结论:
- 神经元的电活动水平和模式动态调节AIS位置.
- 这种活动依赖的可塑性为微调神经元刺激性提供了一个新的机制.
- 这些发现表明神经元中以前未知的亚细胞结构可塑性的形式.
相关概念视频
Neurons: The Axon
Axons are long, cytoplasmic processes of nerve cells capable of propagating electrical impulses known as action potentials. The cytoplasm or axoplasm of an axon contains neurofibrils, neurotubules, small vesicles, lysosomes, mitochondria, and various enzymes, all encased within the axolemma, the plasma membrane of the axon.
The axon attaches to the cell body at a cone-shaped elevation called the axon hillock. The initial part of the axon, closest to the hillock, is known as the initial segment.
The axon attaches to the cell body at a cone-shaped elevation called the axon hillock. The initial part of the axon, closest to the hillock, is known as the initial segment.
The Role of Ion Channels in Neuronal Computation
A postsynaptic neuron usually receives numerous impulses from several other presynaptic neurons. The axon hillock of the postsynaptic neuron integrates all these signals and determines the likelihood of firing an action potential.
Sometimes a single EPSP is strong enough to induce an action potential in the postsynaptic neuron. However, multiple presynaptic inputs must often create EPSPs around the same time for the postsynaptic neuron to be sufficiently depolarized to fire an action potential.
Sometimes a single EPSP is strong enough to induce an action potential in the postsynaptic neuron. However, multiple presynaptic inputs must often create EPSPs around the same time for the postsynaptic neuron to be sufficiently depolarized to fire an action potential.
Action Potential
Neurons communicate by firing action potentials—the electrochemical signal that is propagated along the axon. The signal results in the release of neurotransmitters at axon terminals, thereby transmitting information to the nervous system. An action potential is a specific "all-or-none" change in membrane potential that results in a rapid spike in voltage.
Membrane potential in neurons
Neurons typically have a resting membrane potential of about -70 millivolts (mV). When they receive...
Membrane potential in neurons
Neurons typically have a resting membrane potential of about -70 millivolts (mV). When they receive...
Action Potential
Neurons communicate by firing action potentials—the electrochemical signal that is propagated along the axon. The signal results in the release of neurotransmitters at axon terminals, thereby transmitting information to the nervous system. An action potential is a specific "all-or-none" change in membrane potential that results in a rapid spike in voltage.
Membrane potential in neurons
Neurons typically have a resting membrane potential of about -70 millivolts (mV). When they receive...
Membrane potential in neurons
Neurons typically have a resting membrane potential of about -70 millivolts (mV). When they receive...
Action Potentials
Overview
Propagation of Action Potentials
The propagation of an action potential refers to the process by which a nerve impulse, or "action potential," travels along a neuron.
Neurons (nerve cells) have a resting membrane potential, with a slightly negative charge inside compared to outside. This is maintained by ion channels, such as sodium (Na+) and potassium (K+) channels, which control the flow of ions. When a stimulus, like a touch or a signal from another neuron, triggers the neuron, sodium channels open, allowing sodium ions to...
Neurons (nerve cells) have a resting membrane potential, with a slightly negative charge inside compared to outside. This is maintained by ion channels, such as sodium (Na+) and potassium (K+) channels, which control the flow of ions. When a stimulus, like a touch or a signal from another neuron, triggers the neuron, sodium channels open, allowing sodium ions to...


