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Castro Scalise, A. G.

Publications and source records attributed to Castro Scalise, A. G..

2 recordsLinked to original sources

CaMKII activity spreads by inter-holoenzyme phosphorylation

The dodecameric protein kinase CaMKII is expressed throughout the body. The alpha isoform is responsible for synaptic plasticity and participates in memory through its phosphorylation of synaptic proteins. Its elaborate subunit organization and propensity for autophosphorylation allow it to preserve neuronal plasticity across space and time. The prevailing hypothesis for the spread of CaMKII activity, involving shuffling of subunits between activated and naive holoenzymes, is broadly termed subunit exchange. In contrast to the expectations of previous work, we found little evidence for subunit exchange upon activation, and no effect of restraining subunits to their parent holoenzymes. Rather, mass photometry, crosslinking mass spectrometry, single molecule TIRF microscopy and biochemical assays identify inter-holoenzyme phosphorylation (IHP) as the mechanism for spreading phosphorylation. The transient, activity-dependent formation of groups of holoenzymes is well suited to the speed of neuronal activity. Our results place fundamental limits on the activation mechanism of this kinase.

biophysics↗

WiChR, a highly potassium selective channelrhodopsin for low-light two-photon neuronal inhibition

The electric excitability of muscle, heart and brain tissue relies on the precise interplay of Na+- and K+-selective ion channels. The involved ion fluxes are controlled in optogenetic studies using light-gated channelrhodopsins (ChRs). While non-selective cation-conducting ChRs are well-established for excitation, K+-selective ChRs (KCRs) for efficient inhibition have only recently come into reach. Here, we report the molecular analysis of recently discovered KCRs from the stramenopile Hyphochytrium catenoides and identify a novel type of hydrophobic K+-selectivity filter. Next, we demonstrate that the KCR signature motif is conserved in related stramenopile ChRs. Among them, WiChR from Wobblia lunata features an unmatched 80-fold preference for K+ over Na+, stable photocurrents under continuous illumination and a prolonged open state lifetime. Well expressed in neurons, WiChR allows two-photon inhibition at low irradiance and reduced tissue heating,_recommending WiChR as the long-awaited efficient and versatile optogenetic inhibitor.

neuroscience↗