Search bioRxiv⌕ Search

Biology subjects

Sigler, A.

Publications and source records attributed to Sigler, A..

2 recordsLinked to original sources

Skewed distribution of spines is independent of presynaptic transmitter release and synaptic plasticity and emerges early during adult neurogenesis

Dendritic spines are crucial for excitatory synaptic transmission as the size of a spine head correlates with the strength of its synapse. The distribution of spine head sizes follows a lognormal-like distribution with more small spines than large ones. We analysed the impact of synaptic activity and plasticity on the spine size distribution in adult-born hippocampal granule cells from rats with induced homo- and heterosynaptic long-term plasticity in vivo and CA1 pyramidal cells from Munc-13-1-Munc13-2 knockout mice with completely blocked synaptic transmission. Neither induction of extrinsic synaptic plasticity nor the blockage of presynaptic activity degrades the lognormal-like distribution but changes its mean, variance and skewness. The skewed distribution develops early in the life of the neuron. Our findings and their computational modelling support the idea that intrinsic synaptic plasticity is sufficient for the generation, while a combination of intrinsic and extrinsic synaptic plasticity maintains lognormal like distribution of spines.

neuroscience↗

Regulation of excitatory presynaptic activity by Ambra1 protein determines neuronal networks in sex-dimorphic manner

Heterozygous mutation of Ambra1, known as a positive autophagy regulator, produces autismlike behavior in mice and autistic phenotypes in humans in a female-specific manner. However, the substantial roles of the Ambra1 mutation in neurons are still unknown. We find that Ambra1 heterozygotes display a moderate decrease in excitatory synaptic release in-vitro and ex-vivo exclusively in females without autophagy activity, resulting in significant alterations in {gamma}-oscillation power and seizure susceptibility by excitatory/inhibitory (E/I) imbalance. Specifically, Ambra1 deficiency has no effect on neurogenesis and morphogenesis, but selectively decreases excitatory synaptic activity without changes in synapse number, quantal size, synaptic release probability, and synaptic plasticity. Therefore, the limited excitatory synaptopathy by Ambra1 expression levels ultimately determines E/I imbalance in global neural networks leading to the female-specific ASD.

neuroscience↗