CDK8/CDK19 inhibition restores T-cell homeostasis in primary immune thrombocytopenia
Abstract
Abstract CD4+CD25+Foxp3+ regulatory T cells (Tregs) are pivotal negative regulators of the adaptive immune system. Abnormalities in the number and/or function of Tregs contribute to the pathogenesis of primary immune thrombocytopenia (ITP). Strategies aimed at modulating Tregs offer potential therapeutic opportunities for ITP management. In this study, we demonstrated that inhibition of cyclin-dependent kinase 8 (CDK8) and CDK19 activity by the small-molecule inhibitor AS2863619 (AS) robustly promoted the conversion of CD4+CD25- effector T cells (Teffs) into CD4+CD25+Foxp3+ Tregs, endowing the converted Tregs with lineage stability and potent suppressive capacity. Mechanistically, AS rapidly augmented STAT5 phosphorylation and subsequent Foxp3 induction. STAT5 blockade completely abrogated this effect, confirming that the Treg-promoting activity of AS was critically dependent on STAT5 signaling. In parallel, AS suppressed STAT3 phosphorylation under interleukin-6–driven conditions, thereby attenuating T helper 17 (Th17) polarization. These mechanistic findings were supported by global transcriptomic analysis, which revealed a profound transcriptional shift by broadly suppressing gene programs of Teff differentiation and function while simultaneously upregulating a robust signature characteristic of stable Tregs. Crucially, unbiased upstream analysis of these changes pinpointed STAT5, STAT3, and FOXP3 as the core transcription factors mediating the drug’s effect. Functional metabolic analysis further revealed that AS mediated metabolic reprogramming in T cells by suppressing glycolysis, thereby providing the necessary metabolic adaptations for Treg conversion. In a murine model of active ITP, CDK8/CDK19 inhibition elevated Treg frequencies and ameliorated thrombocytopenia in a STAT5-dependent manner. Collectively, our study highlighted the therapeutic potential of CDK8/CDK19 inhibition in restoring immune homeostasis and managing ITP.
Article Details
Authors (15)
Yan-ming Wang
1Department of Hematology, Qilu Hospital, Cheeloo College of Medicine, Shandong University, Jinan, China
Hu Zhou
Shao-qiu Leng
1Department of Hematology, Qilu Hospital, Cheeloo College of Medicine, Shandong University, Jinan, China
Jun-jie Ma
2Department of Hematology, Yantai Yu Huang Ding Hospital, Qingdao University, Yantai, China
Hui-yuan Li
3State Key Laboratory of Experimental Hematology, National Clinical Research Center for Blood Diseases, Haihe Laboratory of Cell Ecosystem, Tianjin Key Laboratory of Gene Therapy for Blood Diseases, Institute of Hematology and Blood Diseases Hospital, Chinese Academy of Medical Sciences and Peking Union Medical College, Tianjin, China
Guo-Sheng Li
Tao Sun
Yi-tong Xu
1Department of Hematology, Qilu Hospital, Cheeloo College of Medicine, Shandong University, Jinan, China
Shou-qing Han
1Department of Hematology, Qilu Hospital, Cheeloo College of Medicine, Shandong University, Jinan, China
Yu-feng Gu
2Department of Hematology, Yantai Yu Huang Ding Hospital, Qingdao University, Yantai, China
Lin Dong
Center for Infection Biology, School of Basic Medical Sciences, Tsinghua University
Zhen-yu Yan
7Department of Hematology, North China University of Science and Technology Affiliated Hospital, Tangshan, China
Lei Zhang
Jun Peng
State Key Laboratory of Physical Chemistry of Solid Surfaces, Department of Chemistry
Xin-guang Liu
Department of Pathophysiology, School of Basic Medicine, Key Laboratory for Epigenetics of Dongguan City, Guangdong Provincial Key Laboratory of Medical Immunology and Molecular Diagnostics, Guangdong Medical University