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Yamada, R. G.

Publications and source records attributed to Yamada, R. G..

2 recordsLinked to original sources

Realization of phosphorylation hypothesis of sleep by mammalian CaMKIIβ

The reduced sleep duration observed in Camk2a and Camk2b knockout mice revealed the role of Ca2+/calmodulin-dependent protein kinase II (CaMKII)/CAMKII{beta} as sleep-promoting kinases and lead to the phosphorylation hypothesis of sleep. However, the underlying mechanism of sleep regulation by kinases and protein phosphorylation is largely unknown. Here, we demonstrate that the phosphorylation states of CaMKII{beta} regulates sleep duration and sleep needs. Importantly, the activation or inhibition of CaMKII{beta} can increase or decrease sleep duration by almost two-fold, supporting the role of CaMKII{beta} as a core sleep regulator in mammals. This sleep regulation depends on the kinase activity of CaMKII{beta} in excitatory neurons. Furthermore, CaMKII{beta} mutants mimicking different phosphorylation states can regulate various sleep steps including sleep induction, sleep maintenance, and sleep cancelation. Key CaMKII{beta} residues responsible for the mode switch undergo ordered (auto-)phosphorylation. We thus propose that ordered multi-site phosphorylation of CaMKII{beta} underlies multi-step sleep regulation in mammals.

neuroscience

CUBIC-Cloud: An Integrative Computational Framework Towards Community-Driven Whole-Mouse-Brain Mapping

Recent advancements in tissue clearing technologies have offered unparalleled opportunities for researchers to explore the whole mouse brain at cellular resolution. With the expansion of this experimental technique, however, a scalable and easy-to-use computational tool is in demand to effectively analyze and integrate whole-brain mapping datasets. To that end, here we present CUBIC-Cloud, a cloud-based framework to quantify, visualize and integrate whole mouse brain data. CUBIC-Cloud is a fully automated system where users can upload their whole-brain data, run analysis and publish the results. We demonstrate the generality of CUBIC-Cloud by a variety of applications. First, we investigated brain-wide distribution of PV, Sst, ChAT, Th and Iba1 expressing cells. Second, A{beta} plaque deposition in AD model mouse brains were quantified. Third, we reconstructed neuronal activity profile under LPS-induced inflammation by c-Fos immunostaining. Last, we show brain-wide connectivity mapping by pseudo-typed Rabies virus. Together, CUBIC-Cloud provides an integrative platform to advance scalable and collaborative whole-brain mapping.

neuroscience