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Essential omega-3 fatty acids tune microglial phagocytosis of synaptic elements in the developing brain

Madore, C.; Leyrolle, Q.; Morel, L.; Delpech, J.-C.; Greenhalgh, A. D.; Lacabanne, C.; Bosch-Bouju, C.; Bourel, J.; Thomazeau, A.; Hopperton, K. E.; Beccari, S.; Sere, A.; Aubert, A.; De Smedt-Peyrusse, V.; Lecours, C.; Bisht, K.; Fourgeaud, L.; Gregoire, S.; Bretillon, L.; Grant, N. J.; Badaut, J.; Gressens, P.; Sierra, A.; Butovsky, O.; Tremblay, M.-E.; Bazinet, R. P.; Joffre, C.; Nadjar, A.; Laye, S.

2019-09-04 neuroscience
10.1101/744136 bioRxiv
Show abstract

Omega-3 fatty acids (n-3 polyunsaturated fatty acids; n-3 PUFAs) are essential for the functional maturation of the brain. Westernization of dietary habits in both developed and developing countries is accompanied by a progressive reduction in dietary intake of n-3 PUFAs. Low maternal intake of n-3 PUFAs has been linked to neurodevelopmental diseases in epidemiological studies, but the mechanisms by which a n-3 PUFA dietary imbalance affects CNS development are poorly understood. Active microglial engulfment of synaptic elements is an important process for normal brain development and altered synapse refinement is a hallmark of several neurodevelopmental disorders. Here, we identify a molecular mechanism for detrimental effects of low maternal n-3 PUFA intake on hippocampal development. Our results show that maternal dietary n-3 PUFA deficiency increases microglial phagocytosis of synaptic elements in the developing hippocampus, through the activation of 12/15- lipoxygenase (LOX)/12-HETE signaling, which alters neuronal morphology and affects cognition in the postnatal offspring. While women of child bearing age are at higher risk of dietary n-3 PUFA deficiency, these findings provide new insights into the mechanisms linking maternal nutrition to neurodevelopmental disorders.\n\nOne Sentence SummaryLow maternal omega-3 fatty acids intake impairs microglia-mediated synaptic refinement via 12-HETE pathway in the developing brain.

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