Microglial phagocytosis dysfunction in stroke is driven by energy depletion and induction of autophagy.
Sol BeccariVirginia Sierra-TorreJorge ValeroMarta Pereira-IglesiasMikel García-ZaballaFederico N SoriaLaura De Las Heras-GarciaAlejandro Carretero-GuillénEstibaliz Capetillo-ZarateMaria DomercqPaloma R HuguetDavid RamonetAhmed OsmanWei HanCecilia DominguezTravis E FaustOmar TouzaniOlatz PampliegaPatricia BoyaDorothy P SchaferGuillermo MariñoEmmanuelle Canet-SoulasKlas BlomgrenAinhoa Plaza-ZabalaAmanda SierraPublished in: Autophagy (2023)
Microglial phagocytosis of apoptotic debris prevents buildup damage of neighbor neurons and inflammatory responses. Whereas microglia are very competent phagocytes under physiological conditions, we report their dysfunction in mouse and preclinical monkey models of stroke (macaques and marmosets) by transient occlusion of the medial cerebral artery (tMCAo). By analyzing recently published bulk and single cell RNA sequencing databases, we show that the phagocytosis dysfunction was not explained by transcriptional changes. In contrast, we demonstrate that the impairment of both engulfment and degradation was related to energy depletion triggered by oxygen and nutrient deprivation (OND), which led to reduced process motility, lysosomal exhaustion, and the induction of a protective macroautophagy/autophagy response in microglia. Basal autophagy, in charge of removing and recycling intracellular elements, was critical to maintain microglial physiology, including survival and phagocytosis, as we determined both in vivo and in vitro using pharmacological and transgenic approaches. Notably, the autophagy inducer rapamycin partially prevented the phagocytosis impairment induced by tMCAo in vivo but not by OND in vitro, where it even had a detrimental effect on microglia, suggesting that modulating microglial autophagy to optimal levels may be a hard to achieve goal. Nonetheless, our results show that pharmacological interventions, acting directly on microglia or indirectly on the brain environment, have the potential to recover phagocytosis efficiency in the diseased brain. We propose that phagocytosis is a therapeutic target yet to be explored in stroke and other brain disorders and provide evidence that it can be modulated in vivo using rapamycin.
Keyphrases
- inflammatory response
- cell death
- oxidative stress
- neuropathic pain
- cerebral ischemia
- endoplasmic reticulum stress
- signaling pathway
- single cell
- lipopolysaccharide induced
- lps induced
- atrial fibrillation
- spinal cord
- white matter
- resting state
- spinal cord injury
- subarachnoid hemorrhage
- magnetic resonance
- rna seq
- systematic review
- blood brain barrier
- multiple sclerosis
- randomized controlled trial
- brain injury
- staphylococcus aureus
- high throughput
- transcription factor
- bone marrow
- anti inflammatory
- mesenchymal stem cells
- risk assessment
- climate change
- biofilm formation
- big data
- machine learning
- mouse model
- contrast enhanced