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Biology subjects

Koc, O. C.

Publications and source records attributed to Koc, O. C..

2 recordsLinked to original sources

Dynamic visualization of physiological CaMKII activity using sensitive FRET biosensors

Calcium-calmodulin (CaM)-dependent protein kinase II (CaMKII) is a key mediator of complex physiological processes throughout the body, from the brain to the reproductive system, where CaMKII translates spatiotemporally dynamic calcium elevations into specific biological functions. Directly visualizing CaMKII activity dynamics in living cells using genetically encoded fluorescent biosensors can thus provide crucial insights into the molecular regulation of health and disease. Yet the ability to sensitively and specifically monitor endogenous CaMKII activity in physiologically relevant contexts is limited by the lack of sensors that can achieve robust, quantitative visualization of CaMKII responses. Here, we leveraged a recent serine/threonine kinome-wide substrate atlas to rationally engineer a powerful suite of Forster resonance energy transfer (FRET)-based CaMKII kinase activity reporters with high specificity, sensitivity, and signal-to-noise ratio. Using these biosensors, we were able to sensitively and robustly visualize endogenous CaMKII activity dynamics in both cultured cell lines and primary cells, including cardiomyocytes, oocytes, and neurons. We further utilized 2pFLIM imaging of organotypic hippocampal slices to quantitatively track LTP-induced CaMKII activity within single dendritic spines, highlighting a major advance in the study of physiological CaMKII signaling.

bioengineering↗

Simultaneous loss of CAMK2A and CAMK2B reveals endogenous in vivo substrates

Ca2+/calmodulin-dependent protein kinase 2 (CAMK2) plays a critical role in calcium signaling. Recent gene knockout studies show that CAMK2A and CAMK2B can have distinct roles yet also partially compensate for each other in yet unknown brain functions. In order to provide insight into potential novel CAMK2 functions, we performed parallel phosphoproteomic analyses on non-stimulated cortex tissue from inducible Camk2a and Camk2b double knockout (Camk2af/f;Camk2bf/f;CAG-CreESR) mice and from wild type mice. A total of 5622 phosphorylated peptides derived from 2080 proteins were identified. Phosphorylation at serine/threonine residues in 130 proteins were downregulated in the double knockout mice, including residues in 113 proteins that have not previously been identified as potential CAMK2 substrates. Comparison of amino acid sequences surrounding the downregulated phosphorylation residues provided new insights into the CAMK2-substrate consensus sequences in vivo. This dataset provides an important resource for future studies examining novel roles for CAMK2 in the brain.

neuroscience↗