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Plecas, A.

Publications and source records attributed to Plecas, A..

2 recordsLinked to original sources

Abnormal neuronal and synaptic morphology in Down syndrome brains reproduces in 2D and 3D human cellular models

Down syndrome (DS) is the most common autosomal aneuploidy compatible with postnatal survival and is caused by full or partial trisomy of chromosome 21. In this study, human isogenic induced pluripotent stem cells (iPSCs) were differentiated into 2D neurons and cortico-striatal assembloids (hCSAs). Abnormal neuronal morphology was observed: trisomic (T21) neurons formed aggregates of cell bodies interconnected with thick neurite bundles radiating outwards, connected and overlapped with other neurons in between the bundles while disomic (D21) neurons were evenly distributed across the surface and formed strong neuronal networks. Detailed analysis revealed significantly shorter neurites with larger diameter, fewer branches, and fewer terminal points in T21 neurons compared to D21 neurons in both 2D cultures and hCSAs. We observed similar phenotypes in foetal and postnatal human brain tissue. Furthermore, we observed abnormal mitochondrial morphology with an excess of some mitochondrial proteins (AIF, TOMM20), abnormal synaptic morphology and significantly lower expression of both presynaptic and postsynaptic markers (SYN-1, PSD95 and GEPH) throughout in vitro differentiation of T21 neurons. Finally, our data showed that T21 spheroids were significantly smaller throughout in vitro differentiation compared to D21 spheroids. T21 spheroids also exhibited significantly higher expression of neural stem cells (SOX2), significantly lower expression of proliferating cells (Ki67) and significantly higher expression of apoptotic cells (CCaspase-3). Overall, our study demonstrates that T21 leads to abnormal neuronal morphology in both 2D neurons and hCSAs, consistent with observations in the human brain.

neuroscience↗

Synaptic and intrinsic membrane defects disrupt early neural network dynamics in Down syndrome

Down syndrome, caused by trisomy 21, affects around six million people worldwide and features learning, memory and language deficits. However, the mechanisms underlying trisomy 21 neurophenotypes involving human cortical circuitry are unknown. By characterising developing neural network dynamics and single cell excitability profiles, with synaptic and voltage-dependent ion channel behaviour, using an isogenic induced pluripotent stem cell- derived neuronal model, we show that trisomy 21 impairs the activity and development of cortical circuitry. This is caused by deficient glutamatergic synaptic connectivity and by aberrant intrinsic membrane properties involving K+ and Na+ channels culminating in spike firing defects that weaken neural network activity and disrupt the synchrony of developing neurons. We also identify transiently activated A-type K+ channels, specifically Kv4.3 channels, as a key orchestrator for Down syndrome during neurodevelopment. Overall, these excitability changes will significantly contribute towards the aberrant neurophenotypes observed later on in life.

neuroscience↗