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Sumikama, T.

Publications and source records attributed to Sumikama, T..

4 recordsLinked to original sources

High-speed AFM reveals fluctuations and dimer splitting of the N-terminal domain of GluA2-γ2

AMPA glutamate receptors (AMPARs) enable rapid excitatory synaptic transmission by localizing to the postsynaptic density of glutamatergic spines. AMPARs possess large extracellular N-terminal domains (NTDs), which participate in AMPAR clustering at synapses. Nevertheless, the dynamics of NTDs and the molecular mechanism governing their synaptic clustering remain elusive. Here, we employed high-speed atomic force microscopy (HS-AFM) to directly visualize the conformational dynamics of NTDs in the GluA2 subunit with TARP {gamma}2 in lipid environments. HS-AFM videos of GluA2-{gamma}2 in the resting and open states revealed fluctuations in NTD dimers. Conversely, in the desensitized state, the two NTD dimers adopted a separated conformation with less fluctuation. Notably, we visualized individual NTD dimers transitioning into monomers. Furthermore, this NTD-dimer splitting resulted in intersubunit exchange between NTD dimers and an increased number of binding sites with the synaptic protein neuronal pentraxin 1. Therefore, our findings illuminate the significance of NTD dynamics in the synaptic clustering of AMPARs.

neuroscience↗

Antithetic effects of agonists and antagonists on the structural fluctuations of TRPV1 channel

Transient receptor potential vanilloid member 1 (TRPV1) is a heat and capsaicin receptor that allows cations to permeate and cause pain. As the molecular basis for temperature sensing, the heat capacity ({Delta}Cp) model (D. E. Clapham, C. Miller, Proc. Natl. Acad. Sci. U. S. A. 108, 19492-19497 (2011).) has been proposed and experimentally supported. Theoretically, heat capacity is proportional to a variance in enthalpy, presumably related to structural fluctuation; however, the fluctuation of TRPV1 has not been directly visualized. In this study, we directly visualized single-molecule structural fluctuations of the TRPV1 channels in a lipid bilayer with the ligands resiniferatoxin (RTX: agonist, 1000 times hotter than capsaicin) and capsazepine (CPZ: antagonist) by high-speed atomic force microscopy (HS-AFM). We observed the structural fluctuations of TRPV1 in an apo state and found that RTX binding enhances structural fluctuations, while CPZ binding suppresses fluctuations. These ligand-dependent differences in structural fluctuation would play a key role in the gating of TRPV1.

physiology↗

Evolutionarily acquired activity-dependent transformation of the CaMKII holoenzyme

Ca2+/calmodulin-dependent protein kinase II (CaMKII) has long been central in synaptic plasticity research. CaMKII is a dodecameric serine/threonine kinase that has been essentially conserved across metazoans for over a million years. While the mechanisms of CaMKII activation are well studied, its "behavior" at the molecular level has remained unobserved. Here, high-speed atomic force microscopy was used to visualize the activity-dependent structural dynamics of rat/hydra/C. elegans CaMKII in various states at nanometer resolution. Among the species, rat CaMKII underwent internal kinase domain aggregation in an activity-dependent manner and showed a higher tolerance to dephosphorylation by phosphatase. Our findings suggest that mammalian CaMKII has evolutionarily acquired a new structural form and a tolerance to phosphatase to maintain robust CaMKII activity for proper neuronal function. One-Sentence SummaryHigh-speed atomic force microscopy reveals the activity-dependent structural dynamics of rat/hydra/C. elegans CaMKII

neuroscience↗

Rapid intuitive interpretation of heterochromatin and euchromatin through Hi-C analysis

Hi-C is a technique that provides contact frequencies between pairs of loci on chromosomes. The conventional classification of heterochromatin and euchromatin based on Hi-C data is performed by principal component analysis; however, it requires long computational times and does not provide insight into the difference in contact frequencies between heterochromatin and euchromatin. Here, we propose a simple, intuitive and rapid method named the scaled contact number (SCN), which allows the contact frequencies to be visually interpreted and heterochromatin and euchromatin to be classified based on Hi-C results in a few minutes for long chromosomes at 1-kb resolution. The robustness of SCN was validated by confirming that SCN with reduced reads gives almost the same results as the original SCN. Overall, the approach described herein thus considerably decreases the time and computing power required to analyze Hi-C and further provides mechanistic insight indicating that euchromatin has more contacts than heterochromatin.

genomics↗