NMDA受容体活性化によるタンパク質チロシンリン酸化の刺激
1Department of Microbiology and Molecular Genetics, Harvard Medical School, Boston, MA 02115.
まとめ
NMDA受容体の活性化により,ニューロン内のカルシウム流入と,その後のタンパク質 (p39) のチロシンリン酸化が引き起こされます. これは,NMDA受容体シグナル伝達のための連続したタンパク質キナーゼ活性化経路を示唆しています.
科学分野:
- 神経科学は神経科学である.
- セルラー・シグナリング
- 分子生物学は分子生物学である.
背景:
- N-メチル-D-アスパルテート (NMDA) 受容体は,シナプス可塑性にとって極めて重要です.
- NMDA受容体の活性化により,カルシウムの流入が起こりますが,下流のシグナリングは不明です.
研究 の 目的:
- NMDA受容体の活性化後のシグナル伝達機構を調査する.
- NMDA受容体信号の処理に関与するタンパク質を特定する.
主な方法:
- ネズミのヒポカンプス細胞をグルタミン酸で刺激した.
- タンパク質のチロシンリン酸化を分析した.
- カルシウムの流入依存性が評価されました.
主要な成果:
- グルタミン酸刺激により,39キロダルトンのタンパク質 (p39) の一時的なチロシンリン酸化が急速に誘発された.
- NMDA受容体活性化と細胞外カルシウム流入は,p39リン酸化のために必要であった.
- p39はマイクロチューブル関連タンパク質2キナーゼと密接に関連しています.
結論:
- NMDA受容体のシグナル伝達には,タンパク質キナーゼの連続的な活性化が含まれます.
- p39のリン酸化は,NMDA受容体信号伝導の初期のイベントである.
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