寡类细胞中 postsynaptic密度蛋白是活动依赖的髓膜生长所需的
Mary-Amélie Masson1, Mariana Graciarena1, Marion Porte1
1Sorbonne Université, Paris Brain Institute - ICM, Inserm, CNRS, APHP, Hôpital de la Pitié Salpêtrière, Paris, France.
iScience
|October 27, 2025
概括
从轴突中释放的谷氨酸囊泡调节了斑马鱼的髓膜生长. 在寡头质细胞中,后突触密度蛋白95 (PSD-95) 对于这种轴突-寡头质细胞通信和髓化至关重要.
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
- 发展生物学 发展生物学
背景情况:
- 神经元活动对于中枢神经系统的髓化至关重要.
- 轴突-基细胞的沟通对于髓生理和功能至关重要.
研究的目的:
- 调查谷氨酸囊泡释放在调节髓化中的作用.
- 描述后突触密度蛋白95 (PSD-95) 在轴突-寡 dendrocyte信号传递和髓生长中的参与.
主要方法:
- 在斑马鱼脊髓中对寡头细胞前体细胞 (OPC) 和髓化寡头细胞 (mOL) 的比较分析.
- 使用Synaptophysin:GFP和PSD-95-GFP记者来可视化突触结构.
- 采用了CRISPR-Cas9基因编辑来删除基因中的dlg4a基因.
主要成果:
- 突触:GFP点点,表明突触前部位,在髓内部节延长期间在mOL上增加.
- 寡头质细胞表达PSD-95在沿着过程和的点点域中,形成后突触类微域.
- 删除dlg4a (编码PSD-95) 在寡头质中损害了髓盖的生长.
结论:
- PSD-95是从轴突到寡干细胞的神经传递的一个关键组成部分.
- 这种信号通路调节了髓盖的生长,强调了它在髓化中的重要性.
相关概念视频
Nervous Tissue: Myelin
5.3K
The myelin sheath is a multilayered lipid and protein covering that insulates the axon of a neuron, enhancing the speed of nerve impulse conduction. Axons without this sheath are referred to as unmyelinated. Two types of neuroglia, Schwann cells in the peripheral nervous system (PNS) and oligodendrocytes in the central nervous system (CNS) are responsible for producing myelin sheaths.
Schwann cells begin to form myelin sheaths around axons during fetal development. They wrap around a small...
Schwann cells begin to form myelin sheaths around axons during fetal development. They wrap around a small...
5.3K
Assembly of Complex Microtubule Structures
2.4K
Complex microtubule structures are present in resting cells and in dividing cells. In resting cells, they are responsible for maintaining the cellular architecture, tracks for intracellular transport, positioning of organelles, assembly of cilia and flagella. They mediate the bipolar spindle assembly for chromosomal segregation and positioning of the cell division plate in dividing cells. The formation of microtubule complex structures depends on the cell type, cell stage, and cell function.
2.4K
Action Potentials
141.1K
Overview
141.1K
Action Potential
10.7K
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...
10.7K
Action Potential
4.3K
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...
4.3K
Long-term Potentiation
3.4K
Long-term potentiation, or LTP, is one of the ways by which synaptic plasticity—changes in the strength of chemical synapses—can occur in the brain. LTP is the process of synaptic strengthening that occurs over time between pre and postsynaptic neuronal connections. The synaptic strengthening of LTP works in opposition to the synaptic weakening of long-term depression (LTD) and together are the main mechanisms that underlie learning and memory.
Hebbian LTP
LTP can occur when...
Hebbian LTP
LTP can occur when...
3.4K


