Synapsin I Synchronizes GABA Release in Distinct Interneuron Subpopulations
CEREBRAL CORTEX
Authors: Forte, N.; Binda, F.; Contestabile, A.; Benfenati, F.; Baldelli, P.
Abstract
Neurotransmitters can be released either synchronously or asynchronously with respect to action potential timing. Synapsins (Syns) are a family of synaptic vesicle (SV) phosphoproteins that assist gamma-aminobutyric acid (GABA) release and allow a physiological excitation/inhibition balance. Consistently, deletion of either or both Syn1 and Syn2 genes is epileptogenic. In this work, we have characterized the effect of SynI knockout (KO) in the regulation of GABA release dynamics. Using patch-clamp recordings in hippocampal slices, we demonstrate that the lack of SynI impairs synchronous GABA release via a reduction of the readily releasable SVs and, in parallel, increases asynchronous GABA release. The effects of SynI deletion on synchronous GABA release were occluded by omega-AgatoxinIVA, indicating the involvement of P/Q-type Ca2+ channel-expressing neurons. Using in situ hybridization, we show that SynI is more expressed in parvalbumin (PV) interneurons, characterized by synchronous release, than in cholecystokinin or SOM interneurons, characterized by a more asynchronous release. Optogenetic activation of PV and SOM interneurons revealed a specific reduction of synchronous release in PV/SynIKO interneurons associated with an increased asynchronous release in SOM/SynIKO interneurons. The results demonstrate that SynI is differentially expressed in interneuron subpopulations, where it boosts synchronous and limits asynchronous GABA release.
Selected prebiotics and synbiotics administered in ovo can modify innate immunity in chicken broilers
BMC VETERINARY RESEARCH
Authors: Stefaniak, Tadeusz; Madej, Jan P.; Graczyk, Stanislaw; Siwek, Maria; Lukaszewicz, Ewa; Kowalczyk, Artur; Sienczyk, Marcin; Bednarczyk, Marek
Abstract
Background: A previous study showed that prebiotics and synbiotics administered in ovo into the egg air cell on the 12th day of incubation enhance the growth and development of chickens. However, the influence of this procedure on the development and efficiency of the innate immune system of broiler chickens is unclear. Therefore, the aim of this study was to evaluate whether the early (on the 12 th day of embryo development) in ovo administration of selected prebiotics (inulin - Pre1 and Bi(2)tos-Pre2) and synbiotics (inulin + Lactococcus lactis subsp. lactis IBB SL1-Syn1 and Bi(2)tos+L. lactis subsp. cremoris IBB SC1-Syn2) influences the innate immune system. Results: Chickens (broiler, Ross 308) that were treated with Pre1 exhibited a decreased H/L ratio on D7, but an increased H/L ratio was observed on D21 and D35. In the remaining experimental groups, an increase in the H/L ratio was observed on D21 and D35. The oxidative potential of leukocytes measured using the NBT test increased on D21 in Pre2 and Syn1 groups. The rate of the phagocytic ability of leukocytes increased in Pre1 and Syn1 groups on D21. The phagocytic index decreased in Pre1 and Syn2 groups on D21 and D35. Concurrently, the count of WBC in circulating blood decreased on D21 in Pre1, Pre2, and Syn1 groups. The hematocrit value was increased in Syn1 chickens on D21, in Pre1 chickens on D35, and in Syn2 chickens on both time points. Conclusions: Early in ovo treatment of chicken embryos with prebiotics and synbiotics may temporarily modulate not only the production/maturation of leukocytes but also their reactivity.