エントルヒナル皮質における3D空間の局所的な表現
Gily Ginosar1, Johnatan Aljadeff1,2, Yoram Burak3,4
1Department of Neurobiology, Weizmann Institute of Science, Rehovot, Israel.
Nature
|August 12, 2021
まとめ
2Dのグリッド細胞とは違って 局所的な空間的秩序だけを示す 3Dのグリッド細胞を発見しました 統合モデルでは,中枢内皮質の2Dと3Dのグリッド細胞組織の両方について説明します.
科学分野:
- 神経科学
- 空間的認知
背景:
- 中枢内皮質 (MEC) のグリッド細胞は2次元空間で六角格子を形成する.
- MECニューロンによる3D空間の表現は,ほとんど不明のままである.
研究 の 目的:
- 自由に飛ぶコウモリにおける3D空間のMECニューラル表現を調査する.
- 3Dグリッドの空間的組織を記述する.
主な方法:
- 飛行中のMEC細胞からの電気生理学的記録
- 3D環境におけるニューロン発射場の分析
- ネットワーク細胞の相互作用の計算モデル化
主要な成果:
- 3Dの境界細胞, 3Dのヘッド・ディレクション細胞, 多領域の神経細胞を特定した.
- 局所的な秩序を持つ3D格子細胞が発見されましたが,グローバル格子構造は欠けています.
- 2Dの六角格子と3Dのローカル・オーダーを説明した.
結論:
- MECは2Dと3Dの空間ナビゲーションに 異なるニューラルコードを使用しています
- 3Dグリッドセルは3Dスペースの 局所的にオーダーされたメトリックを提供します.
- 単一のモデルは,次元を超えたグリッドセル機能を記述できます.
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