TY - JOUR
T1 - Nonlinear Decoding and Asymmetric Representation of Neuronal Input Information by CaMKIIα and Calcineurin
AU - Fujii, Hajime
AU - Inoue, Masatoshi
AU - Okuno, Hiroyuki
AU - Sano, Yoshikazu
AU - Takemoto-Kimura, Sayaka
AU - Kitamura, Kazuo
AU - Kano, Masanobu
AU - Bito, Haruhiko
PY - 2013/4/25
Y1 - 2013/4/25
N2 - How information encoded in glutamate release rates at individual synapses is converted into biochemical activation patterns of postsynaptic enzymes remains unexplored. To address this, we developed a dual fluorescence resonance energy transfer (FRET) imaging platform and recorded CaMKIIα and calcineurin activities in hippocampal neurons while varying glutamate uncaging frequencies. With little spine morphological change, 5Hz spine glutamate uncaging strongly stimulated calcineurin, but not CaMKIIα. In contrast, 20Hz spine glutamate uncaging, which induced spine growth, activated both CaMKIIα and calcineurin with distinct spatiotemporal kinetics. Higher temporal resolution recording in the soma revealed that CaMKIIα activity summed supralinearly and sensed both higher frequency and input number, thus acting as an input frequency/number decoder. In contrast, calcineurin activity summated sublinearly with increasing input number and showed little frequency dependence, thus functioning as an input number counter. These results provide evidence that CaMKIIα and calcineurin are fine-tuned to unique bandwidths and compute input variables in an asymmetric manner.
AB - How information encoded in glutamate release rates at individual synapses is converted into biochemical activation patterns of postsynaptic enzymes remains unexplored. To address this, we developed a dual fluorescence resonance energy transfer (FRET) imaging platform and recorded CaMKIIα and calcineurin activities in hippocampal neurons while varying glutamate uncaging frequencies. With little spine morphological change, 5Hz spine glutamate uncaging strongly stimulated calcineurin, but not CaMKIIα. In contrast, 20Hz spine glutamate uncaging, which induced spine growth, activated both CaMKIIα and calcineurin with distinct spatiotemporal kinetics. Higher temporal resolution recording in the soma revealed that CaMKIIα activity summed supralinearly and sensed both higher frequency and input number, thus acting as an input frequency/number decoder. In contrast, calcineurin activity summated sublinearly with increasing input number and showed little frequency dependence, thus functioning as an input number counter. These results provide evidence that CaMKIIα and calcineurin are fine-tuned to unique bandwidths and compute input variables in an asymmetric manner.
UR - http://www.scopus.com/inward/record.url?scp=84876952581&partnerID=8YFLogxK
U2 - 10.1016/j.celrep.2013.03.033
DO - 10.1016/j.celrep.2013.03.033
M3 - 記事
C2 - 23602566
AN - SCOPUS:84876952581
SN - 2639-1856
VL - 3
SP - 978
EP - 987
JO - Cell Reports
JF - Cell Reports
IS - 4
ER -