Metabolomic analysis reveals macrophage metabolic reprogramming and polarization under different nutritional cues

被引:1
作者
Zhang, Zhongxiao [2 ]
Peng, Zhou [2 ]
Wang, Rui [2 ]
Guo, Xirong [2 ]
Gao, Jianfang [1 ,2 ]
机构
[1] Shanghai Jiao Tong Univ, Tongren Hosp, Hongqiao Int Inst Med, Sch Med,Endocrinol Dept, 1111 XianXia Rd, Shanghai 200336, Peoples R China
[2] Shanghai Jiao Tong Univ, Tongren Hosp, Hongqiao Int Inst Med, Sch Med, 1111,XianXia Rd, Shanghai 200336, Peoples R China
基金
中国国家自然科学基金;
关键词
Metabolomic; Obesity; Macrophage; Metabolic reprogramming; MEDIATED INFLAMMATION; ACTIVATION;
D O I
10.1016/j.cca.2024.119735
中图分类号
R446 [实验室诊断]; R-33 [实验医学、医学实验];
学科分类号
1001 ;
摘要
Background and aims: Obesity-induced chronic inflammation and metabolic abnormalities are highly relevant to the functional dysregulation of macrophages, especially under obese conditions. Hyperglycemia and hyperlipidemia, central to obesity, directly alter macrophage activity. However, the impacts of different nutritional cues on the intricate metabolic networks in macrophages remain unclear. Materials and methods: In this study, we employed metabolomic approaches to examine the metabolic responses of macrophages to high glucose, high fat and their coexistence, aiming to delineate the molecular mechanisms of nutritional factors on macrophage activation and obesity-related diseases from a metabolic perspective. Results: Our findings revealed that different nutritional conditions could reprogram key metabolism in macrophages. Additionally, we identified a metabolite derived from macrophages, Long-Chain Phosphatidylcholine (LPC), which exerts beneficial effects on obese mice. It ameliorates the obesity phenotype and improves glucose metabolism profiles. This discovery suggests that LPC has a significant therapeutic potential in the context of obesity-induced metabolic dysfunctions. Our study unveils the metabolic phenotype of macrophages in high-fat and high-sugar environments and uncovers a macrophage-derived metabolite that significantly ameliorates the obesity phenotype. Conclusion: This finding reveals a potential dialogue mechanism between macrophages and adipocytes, shedding light on the complex interplay of immune and metabolic systems in obesity. This discovery not only enhances our understanding of obesity's underlying mechanisms but also opens up new avenues for therapeutic interventions targeting macrophage-adipocyte interactions.
引用
收藏
页数:10
相关论文
共 32 条
[11]   High glucose concentrations induce TNF-α production through the down-regulation of CD33 in primary human monocytes [J].
Gonzalez, Yolanda ;
Herrera, M. Teresa ;
Soldevila, Gloria ;
Garcia-Garcia, Lourdes ;
Fabian, Guadalupe ;
Martha Perez-Armendariz, E. ;
Bobadilla, Karen ;
Guzman-Beltran, Silvia ;
Sada, Eduardo ;
Torres, Martha .
BMC IMMUNOLOGY, 2012, 13
[12]   Inflammation, metaflammation and immunometabolic disorders [J].
Hotamisligil, Gokhan S. .
NATURE, 2017, 542 (7640) :177-185
[13]   Glutamine metabolic microenvironment drives M2 macrophage polarization to mediate trastuzumab resistance in HER2-positive gastric cancer [J].
Hu, Xingbin ;
Ma, Zhenfeng ;
Xu, Beibei ;
Li, Shulong ;
Yao, Zhiqi ;
Liang, Bishan ;
Wang, Jiao ;
Liao, Wangjun ;
Lin, Li ;
Wang, Chunling ;
Zheng, Siting ;
Wu, Qijing ;
Huang, Qiong ;
Yu, Le ;
Wang, Fenghua ;
Shi, Min .
CANCER COMMUNICATIONS, 2023, 43 (08) :909-937
[14]   High glucose environment induces M1 macrophage polarization that impairs keratinocyte migration via TNF-α: An important mechanism to delay the diabetic wound healing [J].
Huang, Shu-Mei ;
Wu, Ching-Shuang ;
Chiu, Min-Hsi ;
Wu, Chin-Han ;
Chang, Yu-Tang ;
Chen, Gwo-Shing ;
Lan, Cheng-Che E. .
JOURNAL OF DERMATOLOGICAL SCIENCE, 2019, 96 (03) :159-167
[15]   Metabolic Dysfunction Drives a Mechanistically Distinct Proinflammatory Phenotype in Adipose Tissue Macrophages [J].
Kratz, Mario ;
Coats, Brittney R. ;
Hisert, Katherine B. ;
Hagman, Derek ;
Mutskov, Vesco ;
Peris, Eduard ;
Schoenfelt, Kelly Q. ;
Kuzma, Jessica N. ;
Larson, Ilona ;
Billing, Peter S. ;
Landerholm, Robert W. ;
Crouthamel, Matthew ;
Gozal, David ;
Hwang, Seungmin ;
Singh, Pradeep K. ;
Becker, Lev .
CELL METABOLISM, 2014, 20 (04) :614-625
[16]   Melatonin modulates L-arginine metabolism in tumor-associated macrophages by targeting arginase 1 in lymphoma [J].
Kumari, Anupma ;
Syeda, Saima ;
Rawat, Kavita ;
Kumari, Rani ;
Shrivastava, Anju .
NAUNYN-SCHMIEDEBERGS ARCHIVES OF PHARMACOLOGY, 2024, 397 (02) :1163-1179
[17]   Arginase: shedding light on the mechanisms and opportunities in cardiovascular diseases [J].
Li, Zhuozhuo ;
Wang, Liwei ;
Ren, Yuanyuan ;
Huang, Yaoyao ;
Liu, Wenxuan ;
Lv, Ziwei ;
Qian, Lu ;
Yu, Yi ;
Xiong, Yuyan .
CELL DEATH DISCOVERY, 2022, 8 (01)
[18]   New Insights into Epithelial-Mesenchymal Transition in Kidney Fibrosis [J].
Liu, Youhua .
JOURNAL OF THE AMERICAN SOCIETY OF NEPHROLOGY, 2010, 21 (02) :212-222
[19]   Inflammasome adaptors and sensors: intracellular regulators of infection and inflammation [J].
Mariathasan, Sanjeev ;
Monack, Denise M. .
NATURE REVIEWS IMMUNOLOGY, 2007, 7 (01) :31-40
[20]   Macrophage Activation and Polarization: Nomenclature and Experimental Guidelines [J].
Murray, Peter J. ;
Allen, Judith E. ;
Biswas, Subhra K. ;
Fisher, Edward A. ;
Gilroy, Derek W. ;
Goerdt, Sergij ;
Gordon, Siamon ;
Hamilton, John A. ;
Ivashkiv, Lionel B. ;
Lawrence, Toby ;
Locati, Massimo ;
Mantovani, Alberto ;
Martinez, Fernando O. ;
Mege, Jean-Louis ;
Mosser, David M. ;
Natoli, Gioacchino ;
Saeij, Jeroen P. ;
Schultze, Joachim L. ;
Shirey, Kari Ann ;
Sica, Antonio ;
Suttles, Jill ;
Udalova, Irina ;
van Ginderachter, Jo A. ;
Vogel, Stefanie N. ;
Wynn, Thomas A. .
IMMUNITY, 2014, 41 (01) :14-20