<p>Microglia are the resident immune cells in the brain and have pivotal roles in neurodevelopment and neuroinflammation<sup><CitationRef CitationID="CR1">1</CitationRef>,<CitationRef CitationID="CR2">2</CitationRef></sup>. This study investigates the function of the immune-checkpoint molecule TIM-3 (encoded by <i>HAVCR2</i>) in microglia. TIM-3 was recently identified as a genetic risk factor for late-onset Alzheimer’s disease<sup><CitationRef CitationID="CR3">3</CitationRef></sup>, and it can induce T cell exhaustion<sup><CitationRef CitationID="CR4">4</CitationRef></sup>. However, its specific function in brain microglia remains unclear. We demonstrate in mouse models that TGFβ signalling induces TIM-3 expression in microglia. In turn, TIM-3 interacts with SMAD2 and TGFBR2 through its carboxy-terminal tail, which enhances TGFβ signalling by promoting TGFBR-mediated SMAD2 phosphorylation, and this process maintains microglial homeostasis. Genetic deletion of <i>Havcr2</i> in microglia leads to increased phagocytic activity and a gene-expression profile consistent with&#xa0;the neurodegenerative microglial phenotype (MGnD), also referred to as disease-associated microglia (DAM). Furthermore, microglia-targeted deletion of <i>Havcr2</i> ameliorates cognitive impairment and reduces amyloid-β pathology in 5×FAD mice (a transgenic model of Alzheimer’s disease). Single-nucleus RNA sequencing revealed a subpopulation of&#xa0;MGnD microglia in <i>Havcr2</i>-deficient 5×FAD mice characterized by increased pro-phagocytic and anti-inflammatory gene expression alongside reduced pro-inflammatory gene expression. These transcriptomic changes were corroborated by single-cell RNA sequencing data across most microglial clusters in <i>Havcr2</i>-deficient 5×FAD mice. Our findings reveal that TIM-3 mediates microglia homeostasis through TGFβ signalling and highlight the therapeutic potential of targeting microglial TIM-3 in Alzheimer’s disease.</p>

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Immune checkpoint TIM-3 regulates microglia and Alzheimer’s disease

  • Kimitoshi Kimura,
  • Ayshwarya Subramanian,
  • Zhuoran Yin,
  • Ahad Khalilnezhad,
  • Yufan Wu,
  • Danyang He,
  • Karen O. Dixon,
  • Udbhav Kasyap Chitta,
  • Xiaokai Ding,
  • Niraj Adhikari,
  • Isabell Guzchenko,
  • Xiaoming Zhang,
  • Ruihan Tang,
  • Thomas Pertel,
  • Samuel A. Myers,
  • Aastha Aastha,
  • Masashi Nomura,
  • Ghazaleh Eskandari-Sedighi,
  • Vasundhara Singh,
  • Lei Liu,
  • Conner Lambden,
  • Kilian L. Kleemann,
  • Neha Gupta,
  • Jen-Li Barry,
  • Ana Durao,
  • Yiran Cheng,
  • Sebastian Silveira,
  • Huiyuan Zhang,
  • Aamir Suhail,
  • Toni Delorey,
  • Orit Rozenblatt-Rosen,
  • Gordon J. Freeman,
  • Dennis J. Selkoe,
  • Howard L. Weiner,
  • Mathew Blurton-Jones,
  • Carlos Cruchaga,
  • Aviv Regev,
  • Mario L. Suvà,
  • Oleg Butovsky,
  • Vijay K. Kuchroo

摘要

Microglia are the resident immune cells in the brain and have pivotal roles in neurodevelopment and neuroinflammation1,2. This study investigates the function of the immune-checkpoint molecule TIM-3 (encoded by HAVCR2) in microglia. TIM-3 was recently identified as a genetic risk factor for late-onset Alzheimer’s disease3, and it can induce T cell exhaustion4. However, its specific function in brain microglia remains unclear. We demonstrate in mouse models that TGFβ signalling induces TIM-3 expression in microglia. In turn, TIM-3 interacts with SMAD2 and TGFBR2 through its carboxy-terminal tail, which enhances TGFβ signalling by promoting TGFBR-mediated SMAD2 phosphorylation, and this process maintains microglial homeostasis. Genetic deletion of Havcr2 in microglia leads to increased phagocytic activity and a gene-expression profile consistent with the neurodegenerative microglial phenotype (MGnD), also referred to as disease-associated microglia (DAM). Furthermore, microglia-targeted deletion of Havcr2 ameliorates cognitive impairment and reduces amyloid-β pathology in 5×FAD mice (a transgenic model of Alzheimer’s disease). Single-nucleus RNA sequencing revealed a subpopulation of MGnD microglia in Havcr2-deficient 5×FAD mice characterized by increased pro-phagocytic and anti-inflammatory gene expression alongside reduced pro-inflammatory gene expression. These transcriptomic changes were corroborated by single-cell RNA sequencing data across most microglial clusters in Havcr2-deficient 5×FAD mice. Our findings reveal that TIM-3 mediates microglia homeostasis through TGFβ signalling and highlight the therapeutic potential of targeting microglial TIM-3 in Alzheimer’s disease.