TY - JOUR
T1 - Microglia-specific knock-down of Bmal1 improves memory and protects mice from high fat diet-induced obesity
AU - Wang, Xiao-Lan
AU - Kooijman, Sander
AU - Gao, Yuanqing
AU - Tzeplaeff, Laura
AU - Cosquer, Brigitte
AU - Milanova, Irina
AU - Wolff, Samantha E. C.
AU - Korpel, Nikita
AU - Champy, Marie-France
AU - Petit-Demoulière, Benoit
AU - Goncalves da Cruz, Isabelle
AU - Sorg-Guss, Tania
AU - Rensen, Patrick C. N.
AU - Cassel, Jean-Christophe
AU - Kalsbeek, Andries
AU - Boutillier, Anne-Laurence
AU - Yi, Chun-Xia
N1 - Funding Information:
Funding This project was supported by “NeuroTime” Erasmus Mundus program, with support from the NeuroTime Erasmus+ program of the European Commission. This project has been funded by Centre National de la Recherche Scientifique, the University of Strasbourg and ANR-18-CE16-0008 (to ALB), and De Nederlandse organisatie voor gezondheidsonderzoek en zorginnovatie (ZonMw 459001004 to CXY).
Publisher Copyright:
© 2021, The Author(s).
PY - 2021
Y1 - 2021
N2 - Microglia play a critical role in maintaining neural function. While microglial activity follows a circadian rhythm, it is not clear how this intrinsic clock relates to their function, especially in stimulated conditions such as in the control of systemic energy homeostasis or memory formation. In this study, we found that microglia-specific knock-down of the core clock gene, Bmal1, resulted in increased microglial phagocytosis in mice subjected to high-fat diet (HFD)-induced metabolic stress and likewise among mice engaged in critical cognitive processes. Enhanced microglial phagocytosis was associated with significant retention of pro-opiomelanocortin (POMC)-immunoreactivity in the mediobasal hypothalamus in mice on a HFD as well as the formation of mature spines in the hippocampus during the learning process. This response ultimately protected mice from HFD-induced obesity and resulted in improved performance on memory tests. We conclude that loss of the rigorous control implemented by the intrinsic clock machinery increases the extent to which microglial phagocytosis can be triggered by neighboring neurons under metabolic stress or during memory formation. Taken together, microglial responses associated with loss of Bmal1 serve to ensure a healthier microenvironment for neighboring neurons in the setting of an adaptive response. Thus, microglial Bmal1 may be an important therapeutic target for metabolic and cognitive disorders with relevance to psychiatric disease.
AB - Microglia play a critical role in maintaining neural function. While microglial activity follows a circadian rhythm, it is not clear how this intrinsic clock relates to their function, especially in stimulated conditions such as in the control of systemic energy homeostasis or memory formation. In this study, we found that microglia-specific knock-down of the core clock gene, Bmal1, resulted in increased microglial phagocytosis in mice subjected to high-fat diet (HFD)-induced metabolic stress and likewise among mice engaged in critical cognitive processes. Enhanced microglial phagocytosis was associated with significant retention of pro-opiomelanocortin (POMC)-immunoreactivity in the mediobasal hypothalamus in mice on a HFD as well as the formation of mature spines in the hippocampus during the learning process. This response ultimately protected mice from HFD-induced obesity and resulted in improved performance on memory tests. We conclude that loss of the rigorous control implemented by the intrinsic clock machinery increases the extent to which microglial phagocytosis can be triggered by neighboring neurons under metabolic stress or during memory formation. Taken together, microglial responses associated with loss of Bmal1 serve to ensure a healthier microenvironment for neighboring neurons in the setting of an adaptive response. Thus, microglial Bmal1 may be an important therapeutic target for metabolic and cognitive disorders with relevance to psychiatric disease.
UR - https://www.scopus.com/pages/publications/85106723160
U2 - 10.1038/s41380-021-01169-z
DO - 10.1038/s41380-021-01169-z
M3 - Article
C2 - 34050326
SN - 1359-4184
JO - Molecular psychiatry
JF - Molecular psychiatry
ER -