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関連する概念動画

Spin–Spin Coupling: Two-Bond Coupling (Geminal Coupling)01:20

Spin–Spin Coupling: Two-Bond Coupling (Geminal Coupling)

1.7K
Two NMR-active nuclei bonded to a central atom can be involved in geminal or two-bond coupling. Geminal coupling is commonly seen between diastereotopic protons in chiral molecules and unsymmetrical alkenes, among others.
The central atom need not be NMR-active because its electrons are affected by the electron polarization of the spin-active atoms. However, spin information is transmitted less effectively than in one-bond coupling, and 2J values are usually weaker than 1J values. The energy of...
1.7K
Spin–Spin Coupling: Three-Bond Coupling (Vicinal Coupling)01:22

Spin–Spin Coupling: Three-Bond Coupling (Vicinal Coupling)

1.5K
Vicinal or three-bond coupling is commonly observed between protons attached to adjacent carbons. Here, nuclear spin information is primarily transferred via electron spin interactions between adjacent C‑H bond orbitals. This generally favors the antiparallel arrangement of spins, so 3J values are usually positive.
The extent of coupling depends on the C‑C bond length, the two H‑C‑C angles, any electron-withdrawing substituents, and the dihedral angle between the involved orbitals. The...
1.5K
Second-Order Circuits01:17

Second-Order Circuits

3.6K
Integrating two fundamental energy storage elements in electrical circuits results in second-order circuits, encompassing RLC circuits and circuits with dual capacitors or inductors (RC and RL circuits). Second-order circuits are identified by second-order differential equations that link input and output signals.
Input signals typically originate from voltage or current sources, with the output often representing voltage across the capacitor and/or current through the inductor. For example, in...
3.6K
Neurogenesis and Regeneration of Nervous Tissue01:15

Neurogenesis and Regeneration of Nervous Tissue

1.8K
In the CNS, neurogenesis, the birth of new neurons from stem cells, is limited to the hippocampus in adults. In other regions of the brain and spinal cord, neurogenesis is almost non-existent due to inhibitory influences from neuroglia, especially oligodendrocytes, and the absence of growth-stimulating cues. The myelin produced by oligodendrocytes in the CNS inhibits neuronal regeneration. Furthermore, astrocytes proliferate rapidly after neuronal damage, forming scar tissue that physically...
1.8K
G-protein Coupled Receptors01:21

G-protein Coupled Receptors

132.2K
G-protein coupled receptors are ligand binding receptors that indirectly affect changes in the cell. The actual receptor is a single polypeptide that transverses the cell membrane seven times creating intracellular and extracellular loops. The extracellular loops create a ligand specific pocket which binds to neurotransmitters or hormones. The intracellular loops holds onto the G-protein.
132.2K
Spin–Spin Coupling: One-Bond Coupling01:17

Spin–Spin Coupling: One-Bond Coupling

1.5K
Coupling interactions are strongest between NMR-active nuclei bonded to each other, where spin information can be transmitted directly through the pair of bonding electrons. While nuclei polarize their electrons to the opposite spins, the bonding electron pair has opposite spins. Configurations with antiparallel nuclear spins are expected to be lower in energy. When coupling makes antiparallel states more favorable, J is considered to have a positive value. The one-bond coupling constant, 1J,...
1.5K

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Updated: Feb 12, 2026

Cortical Neurogenesis: Transitioning from Advances in the Laboratory to Cell-Based Therapies
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神経生成と回路形成の結合

Ki-Jun Yoon1, Guo-Li Ming2, Hongjun Song3

  • 1Department of Neuroscience and Mahoney Institute for Neurosciences, Perelman School for Medicine, University of Pennsylvania, Philadelphia, PA 19104, USA.

Cell
|April 7, 2018
PubMed
まとめ

神経科学の研究者は 脳の発達を制御する 単純なルールを発見しました このルールは 果物ハエ (ドロソフィラ) の視覚系で 精密な神経回路と視覚マップがどのように形成されているかを説明します

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The Mouse Hindbrain As a Model for Studying Embryonic Neurogenesis

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Cortical Neurogenesis: Transitioning from Advances in the Laboratory to Cell-Based Therapies

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科学分野:

  • 神経科学
  • 発達生物学
  • コンピュータ生物学

背景:

  • 複雑な神経回路の形成には 発達中の正確な時間的,空間的,数学的制御が必要です
  • 基礎となる発達プログラムを理解することは 神経科学の中心的な問題です

研究 の 目的:

  • ニューロゲネシスを支配する 単純な発達ルールを明らかにする
  • この規則がドロソフィラの視覚系で 組織化された網膜の地図を確立する方法を理解する.

主な方法:

  • この研究では,ドロソフィラの視覚系における神経生成を分析した.
  • 連続的な細胞形成を制御する発達ルールを調査した.

主要な成果:

  • 連続神経生成を決定する 単純な発達ルールを特定した
  • これらの規則は同時に高度に組織されたレチノトピックマップを確立することを示した.

結論:

  • 複雑な神経回路の正確な形成を説明できるのです
  • この発見は視覚系組織の発達メカニズムに洞察を与えます