Cerebral Endothelial CXCR2 Promotes Neutrophil Transmigration into Central Nervous System in LPS-Induced Septic Encephalopathy

Author:

Wu Fengjiao1ORCID,Han Yuhong2,Xiong Qianqian3,Tang Haitao1ORCID,Shi Jing1,Yang Qingqing1,Li Xuemeng1,Jia Haoxuan1,Qian Jun1,Dong Yishu4,Li Tuantuan2,Gao Yong2,Qian Zhongqing1,Wang Hongtao1,Wang Ting45

Affiliation:

1. Anhui Provincial Key Laboratory of Immunology in Chronic Diseases, Anhui Provincial Key Laboratory of Infection and Immunology, Department of Laboratory Medicine, Bengbu Medical University, Bengbu 233030, China

2. Department of Clinical Laboratory, The Second People’s Hospital of Fuyang City, Fuyang 236015, China

3. Department of Clinical Laboratory, Nanjing Meishan Hospital, Nanjing 210041, China

4. Center for Translational Science, Florida International University, 11350 SW Village Parkway, Port St. Lucie, FL 34987, USA

5. Department of Internal Medicine, University of Arizona, Phoenix, AZ 85004, USA

Abstract

Septic encephalopathy (SE) represents a severe inflammatory syndrome linked to elevated septic mortality rates, lacking specific therapeutic interventions, and often resulting in enduring neurological sequelae. The present investigation endeavors to elucidate the involvement of C-X-C Motif Chemokine Receptor 2 (CXCR2) in the pathogenesis of SE and to explore the potential of CXCR2 modulation as a therapeutic avenue for SE. Employing a murine SE model induced by lipopolysaccharide (LPS) administration, CXCR2 knockout mice and the CXCR2 inhibitor SB225002 were utilized to assess neutrophil recruitment, endothelial integrity, and transendothelial migration. Our findings substantiate that either CXCR2 deficiency or its inhibition curtails neutrophil recruitment without impacting their adhesion to cerebral endothelial cells. This phenomenon is contingent upon endothelial CXCR2 expression rather than CXCR2’s presence on neutrophils. Furthermore, the CXCR2 blockade preserves the integrity of tight junction protein ZO-1 and mitigates F-actin stress fiber formation in cerebral endothelial cells following septic challenge. Mechanistically, CXCL1-mediated CXCR2 activation triggers cerebral endothelial actin contraction via Rho signaling, thereby facilitating neutrophil transmigration in SE. These observations advocate for the potential therapeutic efficacy of CXCR2 inhibition in managing SE.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Anhui Province

Anhui Province Education Key Projects

graduate student innovation and entrepreneurship practice project of Anhui Province

Postgraduate Research and Innovation Program Funded Projects of Bengbu Medical College

Publisher

MDPI AG

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