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Todorovic, S.

Publications and source records attributed to Todorovic, S..

2 recordsLinked to original sources

CaV3.1 T-type calcium channels regulate spatial memory processing in the dorsal subiculum

The dorsal subiculum (dSub) is one of the key structures responsible for the formation of hippocampal memory traces but the contribution of individual ionic currents to its cognitive function is not well studied. Although we recently reported that low-voltage-activated T-type calcium channels (T-channels) are crucial for the burst firing pattern regulation in the dSub pyramidal neurons, their potential role in learning and memory remains unclear. Here we used in vivo local field potential recordings and miniscope calcium imaging in freely behaving mice coupled with pharmacological and genetic tools to address this gap in knowledge. We show that the CaV3.1 isoform of T-channels is critically involved in controlling neuronal activity in the dSub in vivo. Altering burst firing pattern by inhibiting T-channel activity markedly affects calcium dynamics, synaptic plasticity, neuronal oscillations and phase-amplitude coupling in the dSub, thereby disrupting spatial learning. These results provide a crucial causative link between the CaV3.1 channels, burst firing activity of dSub neurons and memory processing, thus further supporting the notion that changes in neuronal excitability regulate memory trace formation. We posit that subicular CaV3.1 T-channels could be a promising novel drug target for cognitive disorders.

neuroscience↗

Evidence for quinol oxidase activity of ImoA, a novel NapC/NirT family protein from the neutrophilic Fe(II) oxidizing bacterium Sideroxydans lithotrophicus ES-1

The freshwater chemolithoautotrophic Gram-negative bacterium Sideroxydans lithotrophicus ES-1 oxidizes Fe(II) at the cell surface. In this organism, it is proposed that the monoheme cytochrome MtoD from the Mto pathway transfer electrons across the periplasm to an inner membrane NapC/NirT family tetraheme cytochrome encoded by Slit_2495, for which we propose the name ImoA (inner membrane oxidoreductase). ImoA has been proposed to function as the quinone reductase, receiving electrons from iron oxidizing extracellular electron uptake pathway to reduce the quinone pool. In this study, ImoA was cloned on a pBAD plasmid vector and overexpressed in Escherichia coli. Biochemical and spectroscopic characterization of the purified ImoA reveals that this 26.5 kDa cytochrome contains one high-spin and three low-spin hemes. Our data show that ImoA can function as a quinol oxidase and is able to functionally replace CymA, a related NapC/NirT family tetraheme cytochrome required for anaerobic respiration of a wide range of substrates by Shewanella oneidensis. We demonstrate that ImoA can transfer electrons to different periplasmic proteins from S. oneidensis including STC and FccA, but in a manner that is distinct from that of CymA. Phylogenetic analysis shows that ImoA is clustered closer to NirT sequences than to CymA. This study suggests that ImoA functions as a quinol oxidase in S. oneidensis and raises questions about the directionality and/or reversibility of electron flow through the Mto pathway in S. lithotrophicus ES-1. ImportanceFe(II)-oxidizing bacteria play an important role in the biogeochemical cycling of iron, representing a promising class of organisms for the development of novel biotechnological processes, including bioelectrosynthesis. These organisms perform extracellular electron transfer, taking up electrons from Fe(II) outside of the cell, possibly through a porin-cytochrome complex in the outer membrane. The electrons are then transferred to the quinone pool in the inner membrane via periplasmic and inner membrane electron transfer proteins. In this paper, we produced and characterized the NapC/NirT family tetraheme cytochrome ImoA, encoded by Slit_2495, an inner membrane protein from the Gram-negative Fe(II)-oxidizing bacterium Sideroxydans lithotrophicus ES-1, proposed to be involved in extracellular electron transfer to the quinone pool. We show that ImoA may function instead as a quinol oxidase. The obtained insights represent the first step in understanding mechanisms of electron flow in S. lithotrophicus ES-1 and may lead towards practical biotechnological applications of Fe(II)-oxidizing bacteria.

biochemistry↗