Completed Brain & Nervous System Infection & Immunity

Reconciling Cholinergic and inflammatory hypotheses of delirium: acute and lasting effects of systemic inflammation on chronic neurodegeneration.

In plain English

AI plain-English summary

Delirium, a sudden state of confusion common in older people with dementia, can be triggered by an infection or surgery—and it often accelerates long-term cognitive decline. Current thinking blames delirium on a shortage of the brain chemical acetylcholine, but this project tests a different culprit: inflammation. The researchers have already created a mouse model of dementia where a mild immune challenge produces delirium-like symptoms. Now they will add a second insult—damage to the brain’s acetylcholine-producing cells—to see how inflammation and cholinergic failure interact. The key idea is that microglia, the brain’s immune cells, become “primed” by chronic neurodegeneration and overreact to a later infection, causing both the acute delirium episode and lasting damage. If this work succeeds, it could reframe how doctors prevent and treat delirium in hospitalised older patients. Instead of only targeting acetylcholine, future therapies might aim to calm primed microglia or block inflammatory signals like interleukin-1beta. This is fundamental science—understanding the biological chain reaction that links a simple infection to permanent cognitive decline—but it points directly toward better care for the millions of people with dementia who face surgery or serious illness.

View original technical description
Delirium causes acute psychological impairments and accelerates the process of cognitive decline and is highly prevalent in aging and dementia. Delirium is commonly caused by systemic infection, surgery or injury and we have exploited these interactions of systemic inflammation with ongoing dementia to develop the first animal model of delirium during dementia. However, delirium caused by administration of anti-cholinergic drugs has led to a consensus view of delirium as an acute cholinergic def iciency. Here we propose a mouse model of delirium during dementia that reflects its multi-factorial etiology and attempts to reconcile inflammatory and cholinergic hypotheses of delirium. By superimposing systemic inflammation upon prior pathology in the basal forebrain cholinergic nuclei, presumed to be hypoactive in delirium, we will investigate the cognitive, neurochemical and inflammatory consequences of these insults. Both models are founded on the concept, which we originally described, t hat microglia are primed by chronic neurodegeneration to produce exaggerated responses to subsequent inflammatory stimulation. We will further investigate the nature of microglial priming and its contribution to the acute delirium-like episode and to exacerbation of underlying pathology and resulting long-term cognitive decline post-delirium. The involvement of interleukin-1beta and interferon-beta in cognitive and pathological exacerbations will be investigated in detail.

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Researchers

Colm Cunningham (EPMC Awardee)

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Original classification

Senior Research Fellowship Basic

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