Activation of GCN2 in macrophages promotes white adipose tissue browning and lipolysis under leucine deprivation

被引:11
|
作者
Wang, Fenfen [1 ]
Xiao, Fei [1 ]
Du, Linjuan [2 ]
Niu, Yuguo [1 ]
Yin, Hanrui [1 ]
Zhou, Ziheng [1 ]
Jiang, Xiaoxue [1 ]
Jiang, Haizhou [1 ]
Yuan, Feixiang [1 ]
Liu, Kan [1 ]
Chen, Shanghai [1 ]
Duan, Shengzhong [2 ]
Guo, Feifan [1 ,3 ]
机构
[1] Chinese Acad Sci, CAS Key Lab Nutr Metab & Food Safety, Innovat Ctr Intervent Chron Dis & Promot Hlth, Shanghai Inst Nutr & Hlth,Univ Chinese Acad Sci, 320 Yueyang Rd, Shanghai 200031, Peoples R China
[2] Shanghai Jiao Tong Univ Sch Med, Shanghai Ninth Peoples Hosp Res Ctr, Shanghai, Peoples R China
[3] Shanghai Jiao Tong Univ Affiliated Peoples Hosp 6, Shanghai, Peoples R China
来源
FASEB JOURNAL | 2021年 / 35卷 / 06期
基金
国家重点研发计划;
关键词
GCN2; leucine deprivation; lipolysis; macrophage; white adipose tissue browning; CATECHOLAMINE-INDUCED LIPOLYSIS; ALTERNATIVE ACTIVATION; SKELETAL-MUSCLE; OBESITY; STRESS; PROLIFERATION; ADIPOCYTES; RESISTANCE; ABLATION; LEPTIN;
D O I
10.1096/fj.202100061RR
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
We have previously shown that leucine deprivation stimulates browning and lipolysis in white adipose tissue (WAT), which helps to treat obesity. Adipose tissue macrophages (ATMs) significantly influence WAT browning and lipolysis. However, it is unclear whether ATMs are involved in leucine deprivation-induced browning and lipolysis in WAT; the associated signals remain to be elucidated. Here, we investigated the role of ATMs and the possible mechanisms involved in WAT browning and lipolysis under leucine-deprivation conditions. In this study, macrophages were depleted in mice by injecting clodronate-liposomes (CLOD) into subcutaneous white adipose tissues. Then, mice lacking general control nonderepressible 2 kinase (GCN2), which is a sensor of amino acid starvation, specifically in Lyz2-expressing cells, were generated to investigate the changes in leucine deprivation-induced WAT browning and lipolysis. We found leucine deprivation decreased the accumulation and changed the polarization of ATMs. Ablation of macrophages by CLOD impaired WAT browning and lipolysis under leucine-deprivation conditions. Mechanistically, leucine deprivation activated GCN2 signals in macrophages. Myeloid-specific abrogation of GCN2 in mice blocked leucine deprivation-induced browning and lipolysis in WAT. Further analyses revealed that GCN2 activation in macrophages reduced the expression of monoamine oxidase A (MAOA), resulting in increased norepinephrine (NE) secretion from macrophages to adipocytes, and this resulted in enhanced WAT browning and lipolysis. Moreover, the injection of CL316,243, a beta 3-adrenergic receptor agonist, and inhibition of MAOA effectively increased the level of NE, leading to the enhancement of browning and lipolysis of WAT in myeloid GCN2 knockout mice under leucine deprivation. Collectively, our results demonstrate a novel function of GCN2 signals in macrophages, that is, regulating WAT browning and lipolysis under leucine deprivation. Our study provides important hints for possible treatment for obesity.
引用
收藏
页数:16
相关论文
共 50 条
  • [1] Activation of GCN2/ATF4 signals in amygdalar PKC-δ neurons promotes WAT browning under leucine deprivation
    Yuan, Feixiang
    Jiang, Haizhou
    Yin, Hanrui
    Jiang, Xiaoxue
    Jiao, Fuxin
    Chen, Shanghai
    Ying, Hao
    Chen, Yan
    Zhai, Qiwei
    Guo, Feifan
    NATURE COMMUNICATIONS, 2020, 11 (01)
  • [2] Activation of GCN2/ATF4 signals in amygdalar PKC-δ neurons promotes WAT browning under leucine deprivation
    Feixiang Yuan
    Haizhou Jiang
    Hanrui Yin
    Xiaoxue Jiang
    Fuxin Jiao
    Shanghai Chen
    Hao Ying
    Yan Chen
    Qiwei Zhai
    Feifan Guo
    Nature Communications, 11
  • [3] Angiotensin II Promotes White Adipose Tissue Browning and Lipolysis in Mice
    Cai, Zhaohua
    Fang, Liang
    Jiang, Yangjing
    Liang, Min
    Wang, Jian
    Shen, Yejiao
    Wang, Zi
    Liang, Feng
    Huo, Huanhuan
    Pan, Changqing
    Shen, Linghong
    He, Ben
    OXIDATIVE MEDICINE AND CELLULAR LONGEVITY, 2022, 2022
  • [4] Peritumoral adipose tissue promotes lipolysis and white adipocytes browning by paracrine action
    Pagnotta, Priscila
    Gantov, Mariana
    Fletcher, Sabrina
    Lombardi, Antonella
    Crosbie, Maria Lujan
    Santiso, Natalia
    Ursino, Anabela
    Frascarolli, Celeste
    Amato, Alicia
    Dreszman, Ruben
    Calvo, Juan Carlos
    Toneatto, Judith
    FRONTIERS IN ENDOCRINOLOGY, 2023, 14
  • [5] Depletion of CD2M2-Like Macrophages Promotes the Browning of the White Adipose Tissue
    Nawaz, Allah
    Fujisaka, Shiho
    Usui, Isao
    Yagi, Kunimasa
    Nakagawa, Takashi
    Kado, Tomonobu
    Tobe, Kazuyuki
    Igarashi, Yoshiko
    Okabe, Keisuke
    Saeki, Kumiko
    DIABETES, 2018, 67
  • [6] Angiotensin type 2 receptor activation promotes browning of white adipose tissue and brown adipogenesis
    Aung Than
    Shaohai Xu
    Ru Li
    MelvinKhee-Shing Leow
    Lei Sun
    Peng Chen
    Signal Transduction and Targeted Therapy, 2
  • [7] Angiotensin type 2 receptor activation promotes browning of white adipose tissue and brown adipogenesis
    Than, Aung
    Xu, Shaohai
    Li, Ru
    Leow, Melvinkhee-Shing
    Sun, Lei
    Chen, Peng
    SIGNAL TRANSDUCTION AND TARGETED THERAPY, 2017, 2
  • [8] Remodeling of Macrophages in White Adipose Tissue under the Conditions of Obesity as well as Lipolysis
    Tong, Xiaohui
    Wei, Lu
    Wang, Tongsheng
    Han, Rongchun
    OXIDATIVE MEDICINE AND CELLULAR LONGEVITY, 2021, 2021
  • [9] Leucine deprivation results in antidepressant effects via GCN2 in AgRP neurons
    Yuan, Feixiang
    Wu, Shangming
    Zhou, Ziheng
    Jiao, Fuxin
    Yin, Hanrui
    Niu, Yuguo
    Jiang, Haizhou
    Chen, Shanghai
    Guo, Feifan
    LIFE METABOLISM, 2023, 2 (01):
  • [10] Leucine deprivation results in antidepressant effects via GCN2 in AgRP neurons
    Feixiang Yuan
    Shangming Wu
    Ziheng Zhou
    Fuxin Jiao
    Hanrui Yin
    Yuguo Niu
    Haizhou Jiang
    Shanghai Chen
    Feifan Guo
    LifeMetabolism, 2023, 2 (01) : 33 - 62