TY - JOUR
T1 - Multiphasic protein condensation governed by shape and valency
AU - Pandey, Vikas
AU - Hosokawa, Tomohisa
AU - Hayashi, Yasunori
AU - Urakubo, Hidetoshi
N1 - Publisher Copyright:
© 2025 The Author(s)
PY - 2025/4/22
Y1 - 2025/4/22
N2 - Liquid-liquid phase separation (LLPS) of biological macromolecules leads to the formation of various membraneless organelles. The multilayered and multiphasic form of LLPS can mediate complex cellular functions; however, the determinants of its topological features are not fully understood. Herein, we focus on synaptic proteins consisting of Ca2+/calmodulin-dependent protein kinase II (CaMKII) and its interacting partners and present a computational model that reproduces forms of LLPS, including a form of two-phase condensates, phase-in-phase (PIP) organization. The model analyses reveal that the PIP formation requires competitive binding between the proteins. The PIP forms only when CaMKII has high valency and a short linker length. Such CaMKII exhibits low surface tension, a modular structure, and slow diffusion, enabling it to stay in small biochemical domains for a long time, which is necessary for synaptic plasticity. Thus, the computational modeling reveals new structure-function relationships for CaMKII as a synaptic memory unit.
AB - Liquid-liquid phase separation (LLPS) of biological macromolecules leads to the formation of various membraneless organelles. The multilayered and multiphasic form of LLPS can mediate complex cellular functions; however, the determinants of its topological features are not fully understood. Herein, we focus on synaptic proteins consisting of Ca2+/calmodulin-dependent protein kinase II (CaMKII) and its interacting partners and present a computational model that reproduces forms of LLPS, including a form of two-phase condensates, phase-in-phase (PIP) organization. The model analyses reveal that the PIP formation requires competitive binding between the proteins. The PIP forms only when CaMKII has high valency and a short linker length. Such CaMKII exhibits low surface tension, a modular structure, and slow diffusion, enabling it to stay in small biochemical domains for a long time, which is necessary for synaptic plasticity. Thus, the computational modeling reveals new structure-function relationships for CaMKII as a synaptic memory unit.
KW - CP: Molecular biology
KW - CP: Neuroscience
KW - CaMKII
KW - Monte Carlo simulation
KW - liquid-liquid phase separation
KW - synaptic plasticity
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U2 - 10.1016/j.celrep.2025.115504
DO - 10.1016/j.celrep.2025.115504
M3 - Article
AN - SCOPUS:105002129772
SN - 2211-1247
VL - 44
JO - Cell Reports
JF - Cell Reports
IS - 4
M1 - 115504
ER -