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Haddow, K.

Publications and source records attributed to Haddow, K..

2 recordsLinked to original sources

Absence of short-term axon initial segment plasticity in human, mouse, and rat cortical circuits

Maintaining neuronal output with respect to input in the physiological range relies on the ability of neurons to update their responsiveness to inputs dependent on changing activity levels. Termed homeostatic plasticity, the mechanisms that neurons employ to control their responsiveness are varied, and proposed to include structural changes to a key neuronal structure - the axon initial segment (AIS). As the site of action potential initiation, the AIS has been postulated to rapidly change its length in response to increased or decreased cellular and circuit activity. To date, AIS structural plasticity has only been tested in tissue cultures and rodent models. In our current study, we assess the ability of neurons to alter their AIS length over a variety of timescales in ex vivo rodent and human brain slices, human neurons derived from induced pluripotent stem cells, and in mice dark-reared during early life; using a combination of electrophysiology and immunohistochemistry. We find no evidence for changes to AIS length following depolarisation for up to 3 hours, despite positive controls confirming modulated activity. However, we do find that neuronal physiological properties are altered by changes in activity - but these are largely independent of action potential initiation associated with the AIS. In summary, we find no evidence supporting a role for AIS structural plasticity in mouse, rat, or human cortical neurons.

neuroscience↗

Microglia determine beta-amyloid plaque burden but are non-essential for downstream pathology

Evidence points to a role for microglia in Alzheimers disease (AD) risk, although their position in the pathological cascade is incompletely understood, prompting us to generate a model of {beta}-amyloidopathy lacking microglia. We find evidence that microglia promote plaque formation and creation of an A{beta} fibril-rich zone surrounding the plaque core. However, plaque-proximal reactive astrogliosis, synapse loss, and neurite dystrophy are still observed in the absence of microglia.

neuroscience↗