长时程增强
神经科学
突触后电位
蛋白激酶A
神经传递
突触后密度
生物
兴奋性突触后电位
细胞生物学
激酶
受体
生物化学
抑制性突触后电位
作者
Panayiotis Tsokas,Changchi Hsieh,Rafael E. Flores‐Obando,Matteo Bernabo,Andrew Tcherepanov,A. Iván Hernández,Christian Thomas,Peter J. Bergold,James E. Cottrell,Joachim Kremerskothen,Harel Z. Shouval,Karim Nader,André A. Fenton,Todd Charlton Sacktor
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2024-06-26
卷期号:10 (26)
被引量:10
标识
DOI:10.1126/sciadv.adl0030
摘要
How can short-lived molecules selectively maintain the potentiation of activated synapses to sustain long-term memory? Here, we find kidney and brain expressed adaptor protein (KIBRA), a postsynaptic scaffolding protein genetically linked to human memory performance, complexes with protein kinase Mzeta (PKMζ), anchoring the kinase’s potentiating action to maintain late-phase long-term potentiation (late-LTP) at activated synapses. Two structurally distinct antagonists of KIBRA-PKMζ dimerization disrupt established late-LTP and long-term spatial memory, yet neither measurably affects basal synaptic transmission. Neither antagonist affects PKMζ-independent LTP or memory that are maintained by compensating PKCs in ζ-knockout mice; thus, both agents require PKMζ for their effect. KIBRA-PKMζ complexes maintain 1-month-old memory despite PKMζ turnover. Therefore, it is not PKMζ alone, nor KIBRA alone, but the continual interaction between the two that maintains late-LTP and long-term memory.
科研通智能强力驱动
Strongly Powered by AbleSci AI