Astrocytic interleukin-3 programs microglia and limits Alzheimer's disease.
Cameron S McAlpineJoseph ParkAna GriciucEunhee KimSe Hoon ChoiYoshiko IwamotoMáté G KissKathleen A ChristieClaudio VinegoniWolfram C PollerJohn E MindurChristopher T ChanShun HeHenrike JanssenLai Ping WongJeffrey DowneySumnima SinghAtsushi AnzaiFlorian KahlesMehdi JorfiPaolo Fumene FeruglioRuslan I SadreyevRalph WeisslederBenjamin P KleinstiverMatthias NahrendorfRudolph E TanziFilip K SwirskiPublished in: Nature (2021)
Communication within the glial cell ecosystem is essential for neuronal and brain health1-3. The influence of glial cells on the accumulation and clearance of β-amyloid (Aβ) and neurofibrillary tau in the brains of individuals with Alzheimer's disease (AD) is poorly understood, despite growing awareness that these are therapeutically important interactions4,5. Here we show, in humans and mice, that astrocyte-sourced interleukin-3 (IL-3) programs microglia to ameliorate the pathology of AD. Upon recognition of Aβ deposits, microglia increase their expression of IL-3Rα-the specific receptor for IL-3 (also known as CD123)-making them responsive to IL-3. Astrocytes constitutively produce IL-3, which elicits transcriptional, morphological, and functional programming of microglia to endow them with an acute immune response program, enhanced motility, and the capacity to cluster and clear aggregates of Aβ and tau. These changes restrict AD pathology and cognitive decline. Our findings identify IL-3 as a key mediator of astrocyte-microglia cross-talk and a node for therapeutic intervention in AD.
Keyphrases
- cognitive decline
- neuropathic pain
- inflammatory response
- public health
- immune response
- mild cognitive impairment
- healthcare
- randomized controlled trial
- gene expression
- spinal cord injury
- induced apoptosis
- spinal cord
- liver failure
- intensive care unit
- staphylococcus aureus
- climate change
- mesenchymal stem cells
- transcription factor
- type diabetes
- hepatitis b virus
- quality improvement
- white matter
- multiple sclerosis
- biofilm formation
- health information
- drug induced
- cell cycle arrest
- aortic dissection
- resting state
- mechanical ventilation