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関連する概念動画

The Resting Membrane Potential01:21

The Resting Membrane Potential

Overview
Resting Membrane Potential01:24

Resting Membrane Potential

The relative difference in electrical charge, or voltage, between the inside and the outside of a cell membrane, is called the membrane potential. It is generated by differences in permeability of the membrane to various ions and the concentrations of these ions across the membrane.
The Inside of a Neuron is More Negative
The membrane potential of a cell can be measured by inserting a microelectrode into a cell and comparing the charge to a reference electrode in the extracellular fluid. The...
Resting Potential Decay01:15

Resting Potential Decay

The resting membrane potential of a neuron (-70mV) is sustained due to the selective ion permeability of the membrane. At the resting potential, the membrane is slightly permeable to ions like sodium (Na+) and chloride (Cl−) and highly permeable to potassium ions (K+). Differences in the ions' concentration inside the cell compared to the outside are maintained by membrane transport proteins like channels and pumps.
At rest, the K+ is the main ion that moves across the membrane through...
Potentiometry: Membrane Electrodes01:15

Potentiometry: Membrane Electrodes

Membrane electrodes, also known as p-ion electrodes, use membranes that selectively interact with free analyte ions, generating a potential difference across the membrane. The resulting membrane potential, known as the asymmetry potential, is not zero even when analyte concentrations on both sides of the membrane are equal. The membrane's response is typically not selective to a single analyte but proportional to the concentration of all ions in the sample solution capable of interacting at the...
Graded Potential01:19

Graded Potential

Graded potentials are localized fluctuations in the cell membrane's electrical charge, commonly found in the dendrites of neurons. The magnitude of these potential changes depends on the strength of the initiating stimulus. In a membrane at its resting potential, a graded potential signifies a voltage shift either above -70 mV or below -70 mV.
Graded potentials fall into two categories: depolarizing and hyperpolarizing. Depolarizing graded potentials typically occur when sodium (Na+) or calcium...
Junction Potentials in Galvanic Cells01:21

Junction Potentials in Galvanic Cells

The Nernst equation, derived under the assumption of thermodynamic equilibrium, calculates the electromotive force (emf) as the sum of potential differences at phase boundaries in a reversible cell without a liquid junction. However, in irreversible cells such as the Daniell cell, an additional potential difference named the liquid-junction potential (EJ) arises across the interface of two electrolyte solutions due to different ion diffusion rates. This EJ represents the potential difference...

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関連する実験動画

Updated: May 11, 2026

Measuring the Induced Membrane Voltage with Di-8-ANEPPS
05:52

Measuring the Induced Membrane Voltage with Di-8-ANEPPS

Published on: November 20, 2009

格子細胞の膜ポテンシャルダイナミクス

Cristina Domnisoru1, Amina A Kinkhabwala, David W Tank

  • 1Princeton Neuroscience Institute, Princeton University, Princeton, New Jersey 08544, USA.

Nature
|February 12, 2013
PubMed
まとめ

脳のグリッド細胞は,発射場を定義するために,テータ振幅調節ではなく,脱極化ランプを使用して空間地図を作成します. しかし,テータ振動は,神経のピークの正確なタイミングを調節するために非常に重要です.

科学分野:

  • 神経科学は神経科学である.
  • 計算神経科学とは
  • システム神経科学 システム神経科学

背景:

  • 格子細胞は,空間ナビゲーションに不可欠な発射フィールドの三角格子を形成します.
  • 主な2つのモデルが存在します:振動干渉 (テータ振幅調節を予測する) とアトラクターネットワーク (遅い去極化ランプを予測する).

研究 の 目的:

  • 格子細胞機能の振動干渉とアトラクターネットワークモデルを区別する.
  • 格子細胞発火と空間表現の基礎となる細胞内メカニズムを調査する.

主な方法:

  • 仮想現実の線形軌道をナビゲートするマウスの体内で,体内全細胞の記録を行いました.
  • 格子細胞の細胞内膜ポテンシャルは,射撃場を横断する過程で直接測定されました.

主要な成果:

  • 格子細胞は,射撃場と強く相関する,大きく,再現可能なデポラライジングのランプを示した.
  • 細胞内テータ振動はグリッド細胞のピークタイミングに影響を与えた.
  • テータ振幅調節は,一貫して射撃場の位置を決定しなかった.

結論:

  • 発見は,ゆっくりとデポラライズするランプがグリッドフィールドを生成するアトラクターネットワークモデルをサポートしています.

さらに関連する動画

Simultaneous Whole-cell Recordings from Photoreceptors and Second-order Neurons in an Amphibian Retinal Slice Preparation
11:39

Simultaneous Whole-cell Recordings from Photoreceptors and Second-order Neurons in an Amphibian Retinal Slice Preparation

Published on: June 1, 2013

Micropatterning Transmission Electron Microscopy Grids to Direct Cell Positioning within Whole-Cell Cryo-Electron Tomography Workflows
09:53

Micropatterning Transmission Electron Microscopy Grids to Direct Cell Positioning within Whole-Cell Cryo-Electron Tomography Workflows

Published on: September 13, 2021

関連する実験動画

Last Updated: May 11, 2026

Measuring the Induced Membrane Voltage with Di-8-ANEPPS
05:52

Measuring the Induced Membrane Voltage with Di-8-ANEPPS

Published on: November 20, 2009

Simultaneous Whole-cell Recordings from Photoreceptors and Second-order Neurons in an Amphibian Retinal Slice Preparation
11:39

Simultaneous Whole-cell Recordings from Photoreceptors and Second-order Neurons in an Amphibian Retinal Slice Preparation

Published on: June 1, 2013

Micropatterning Transmission Electron Microscopy Grids to Direct Cell Positioning within Whole-Cell Cryo-Electron Tomography Workflows
09:53

Micropatterning Transmission Electron Microscopy Grids to Direct Cell Positioning within Whole-Cell Cryo-Electron Tomography Workflows

Published on: September 13, 2021

  • テータ振動は,発射場の位置を定義するのではなく,主にピークのタイミングを制御します.