CX3CL1-CX3CR1 Signaling Deficiency Exacerbates Obesity-induced Inflammation and Insulin Resistance in Male Mice

Author:

Nagashimada Mayumi12ORCID,Sawamoto Kazuki1,Ni Yinhua13,Kitade Hironori1,Nagata Naoto1,Xu Liang1,Kobori Masuko4,Mukaida Naofumi5,Yamashita Tatsuya1,Kaneko Shuichi1,Ota Tsuguhito1

Affiliation:

1. Advanced Preventive Medical Sciences Research Center, Kanazawa University, Kanazawa, Japan

2. Division of Health Sciences, Graduate School of Medical Science, Kanazawa University, Kanazawa, Japan

3. College of Biological Engineering, Zhejiang University of Technology, Hangzhou, China

4. Food Research Institute, National Agriculture and Food Research Organization, Tsukuba, Japan

5. Division of Molecular Bioregulation, Cancer Research Institute, Kanazawa University, Kanazawa, Japan

Abstract

Abstract The CX3CL1-CX3CR1 system plays an important role in disease progression by regulating inflammation both positively and negatively. We reported previously that C-C chemokine receptors 2 and 5 promote obesity-associated adipose tissue inflammation and insulin resistance. Here, we demonstrate that CX3CL1-CX3CR1 signaling is involved in adipose tissue inflammation and insulin resistance in obese mice via adipose tissue macrophage recruitment and M1/M2 polarization. Cx3cl1 expression was persistently decreased in the epididymal white adipose tissue (eWAT) of high-fat diet-induced obese (DIO) mice, despite increased expression of other chemokines. Interestingly, in Cx3cr1−/− mice, glucose tolerance, insulin resistance, and hepatic steatosis induced by DIO or leptin deficiency were exacerbated. CX3CL1-CX3CR1 signaling deficiency resulted in reduced M2-polarized macrophage migration and an M1-dominant shift of macrophages within eWAT. Furthermore, transplantation of Cx3cr1−/− bone marrow was sufficient to impair glucose tolerance, insulin sensitivity, and regulation of M1/M2 status. Moreover, Cx3cl1 administration in vivo led to the attenuation of glucose intolerance and insulin resistance. Thus, therapy targeting the CX3CL1-CX3CR1 system may be beneficial in the treatment of type 2 diabetes by regulating M1/M2 macrophages.

Funder

Grant-in-Aid for Scientific Research

Publisher

The Endocrine Society

Subject

Endocrinology

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