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Adeoye, T.

Publications and source records attributed to Adeoye, T..

2 recordsLinked to original sources

Pathological calcium influx through amyloid beta pores disrupts synaptic function

Alzheimers disease (AD) is characterized by profound disruption of synaptic function, with mounting evidence suggesting that amyloid-{beta} (A{beta}) oligomers disrupt calcium (Ca2+) homeostasis through membrane pore formation. While these pores are known to alter intracellular Ca2+ dynamics, their immediate impact on synaptic transmission and potential interaction with Familial AD (FAD)-associated endoplasmic reticulum (ER) dysfunction remains unclear. Here, we extend our previously developed model of presynaptic Ca2+ dynamics to examine how A{beta} pore activity alters exocytosis and how such disruptions may manifest in the presence of FAD-associated ER dysfunction. Our model reveals that A{beta} pores fundamentally alter both the timing and strength of neurotransmitter release. Unexpectedly, the impact of pores on synaptic function depends critically on their pattern of activity, where continuous pore activity leads to synaptic hyperactivation, while temporally brief periods of intense pore activity trigger lasting hypoactivation at short timescales. These effects manifest most strongly in synapses with low and intermediate release probabilities, highlighting the established selective vulnerability of such synaptic configurations. We find that A{beta} pores and FAD-driven ER Ca{superscript 2} dysregulation form an integrated pathological unit through bidirectional coupling of their respective Ca{superscript 2} microdomains to create complex patterns of disruptions. This coupling creates feedback loops that produces an additive effect on neurotransmitter release during brief stimulations, but non-additive effects during sustained activity that promotes a shift towards asynchronous release. Surprisingly, our simulations predict that extended pore activity does not worsen indefinitely but only produces a modest additional disruption beyond initial pore formation that is likely determined by the intrinsic properties of the synapse. These findings indicate that early synaptic dysfunction in AD may arise from subtle perturbations in the temporal coordination of release rather than gross Ca2+ dysregulation, providing new mechanistic insights into the progressive nature of A{beta}-driven synaptic failure in AD.

neuroscience↗

Upregulated Ca2+ release from the endoplasmic reticulum leads to impaired presynaptic function in Alzheimer's disease

Neurotransmitter release from presynaptic terminals is primarily regulated by rapid Ca2+ influx through membrane-resident voltage-gated Ca2+ channels (VGCCs). Also, accumulating evidence indicates that the endoplasmic reticulum (ER) is extensively present in axonal terminals of neurons and plays a modulatory role in synaptic transmission by regulating Ca2+ levels. Alzheimers disease (AD) is marked by enhanced Ca2+ release from the ER and downregulation of Ca2+ buffering proteins. However, the precise consequence of impaired Ca2+ signalling within the vicinity of VGCCs (active zone (AZ)) on exocytosis is poorly understood. Here, we perform in-silico experiments of intracellular Ca2+ signalling and exocytosis in a detailed biophysical model of hippocampal synapses to investigate the effect of aberrant Ca2+ signalling on neurotransmitter release in AD. Our model predicts that enhanced Ca2+ release from the ER increases the probability of neurotransmitter release in AD. Moreover, over very short timescales (30-60 msec), the model exhibits activity-dependent and enhanced short-term plasticity in AD, indicating neuronal hyperactivity--a hallmark of the disease. Similar to previous observations in AD animal models, our model reveals that during prolonged stimulation (~450 msec), pathological Ca2+ signalling increases depression and desynchronization with stimulus, causing affected synapses to operate unreliably. Overall, our work provides direct evidence in support of a crucial role played by altered Ca2+ homeostasis mediated by intracellular stores in AD.

neuroscience↗