Protein tyrosine phosphatase PTPN22 negatively modulates platelet function and thrombus formation

Author:

Wang Xiamin123,Wei Guangyu123,Ding Yangyang123,Gui Xiang123,Tong Huan123,Xu Xiaoqi123,Zhang Sixuan123,Sun Zengtian123,Ju Wen123,Li Yue4,Yao Ruosi123ORCID,Wu Qingyu123,Lu Zhihao5,Fu Chunling123,Li Zhenyu123,Zhang Si6ORCID,Gardiner Elizabeth E.7ORCID,Andrews Robert K.7ORCID,Hu Hu8ORCID,Zeng Lingyu1234,Xu Kailin123ORCID,Qiao Jianlin123ORCID

Affiliation:

1. 1Blood Diseases Institute, Xuzhou Medical University, Xuzhou, China;

2. 2Department of Hematology, The Affiliated Hospital of Xuzhou Medical University, Xuzhou, China;

3. 3Key Laboratory of Bone Marrow Stem Cell, Jiangsu Province, Xuzhou, China;

4. 4School of Medical Technology and

5. 5The First School of Clinical Medicine, Xuzhou Medical University, Xuzhou, China;

6. 6Department of Biochemistry and Molecular Biology, School of Basic Medical Sciences, Fudan University, Shanghai, China;

7. 7Department of Cancer Biology and Therapeutics, John Curtin School of Medical Research, Australian National University, Canberra, ACT, Australia; and

8. 8Department of Pathophysiology, Zhejiang University School of Medicine, Hangzhou, China

Abstract

Abstract Protein tyrosine phosphatase nonreceptor type 22 (PTPN22) is a protein tyrosine phosphatase that negatively regulates T-cell signaling. However, whether it is expressed and functions in platelets remains unknown. Here we investigated the expression and role of PTPN22 in platelet function. We reported PTPN22 expression in both human and mouse platelets. Using PTPN22−/− mice, we showed that PTPN22 deficiency significantly shortened tail-bleeding time and accelerated arterial thrombus formation without affecting venous thrombosis and the coagulation factors VIII and IX. Consistently, PTPN22-deficient platelets exhibited enhanced platelet aggregation, granule secretion, calcium mobilization, lamellipodia formation, spreading, and clot retraction. Quantitative phosphoproteomic analysis revealed the significant difference of phosphodiesterase 5A (PDE5A) phosphorylation in PTPN22-deficient platelets compared with wild-type platelets after collagen-related peptide stimulation, which was confirmed by increased PDE5A phosphorylation (Ser92) in collagen-related peptide–treated PTPN22-deficient platelets, concomitant with reduced level and vasodilator-stimulated phosphoprotein phosphorylation (Ser157/239). In addition, PTPN22 interacted with phosphorylated PDE5A (Ser92) and dephosphorylated it in activated platelets. Moreover, purified PTPN22 but not the mutant form (C227S) possesses intrinsic serine phosphatase activity. Furthermore, inhibition of PTPN22 enhanced human platelet aggregation, spreading, clot retraction, and increased PDE5A phosphorylation (Ser92). In conclusion, our study shows a novel role of PTPN22 in platelet function and arterial thrombosis, identifying new potential targets for future prevention of thrombotic or cardiovascular diseases.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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