2つの阻害性ニューロンのクラスは,脊髄感覚運動適応の獲得とリコールを制御する
Simon Lavaud1,2, Charlotte Bichara1,2, Mattia D'Andola1,2
1VIB-Neuroelectronics Research Flanders (NERF), 3001 Leuven, Belgium.
まとめ
脊髄抑制ニューロンは 運動学習の鍵です 背中のニューロンは 肢体の動きに適応し 腹部のレンショウ細胞は 脳とは独立して 学習した行動を維持します
科学分野:
- 神経科学
- モーター コントロール
- 脊髄 生理学
背景:
- 脊髄回路は 運動適応と学習に不可欠です
- 脊髄内の運動行動の獲得と維持のための正確な神経機構は完全に理解されていません.
研究 の 目的:
- 脊髄阻害性ニューロン集団が運動適応と保持に果たす役割を調査する.
- 脳の制御から独立した感覚運動適応の回路の基礎を明らかにする.
主な方法:
- モデルシステムで単純なコンディショニングパラダイムを使用した.
- 背中の阻害性ニューロンと内側の阻害性レンショー細胞の運動適応の機能を研究した.
- 特定のニューロンの集団を操作して 行動の習得と表現への影響を評価する
主要な成果:
- 脊椎阻害ニューロンは,体感覚情報を調節することによって,保護的肢体離脱行動に適応するために不可欠です.
- 前もって獲得した運動適応を維持するために必要である.
- レンショウ細胞の操作は 表現に影響を及ぼしたが 適応行動の獲得には影響しなかった
結論:
- 脊髄阻害ニューロンの2つの異なる集団 (背中と内側) が感覚運動適応を媒介する.
- この脊髄回路の仕組みは 脊髄上 (脳) の入力から独立して 永続的な運動学習と行動適応を可能にします
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