C/EBPε and its acetylation in PMN enhance the tolerance to trauma

Author:

Cheng Shaowen12,Zhu Junyu1,Bian Yangyang2,Yao Jiangling2,Zhang Wei3,Yin Shuangqin1,Kuang Tianyin1,Xian Lina4,Liang Huaping1ORCID

Affiliation:

1. State Key Laboratory of Trauma, Burns and Combined Injury, Department of Wound Infection and Drug, Daping Hospital, Army Medical University , Chongqing , China

2. Department of Wound Repair, Key Laboratory of Emergency and Trauma of Ministry of Education, The First Affiliated Hospital of Hainan Medical University , Haikou , China

3. Emergency and Trauma College, Hainan Medical University , Haikou , China

4. Intensive Care Unit, The First Affiliated Hospital of Hainan Medical University , Haikou , China

Abstract

Abstract Severe trauma can lead to numerous serious complications, threating the well-being and vitality of the afflicted. The quantity and functionality of polymorphonuclear neutrophils (PMNs) undergo rapid transformations in response to severe trauma, playing a pivotal role in the trauma response. The absence of CCAAT/enhancer-binding protein ε (C/EBPε) profoundly impairs the functionality of PMNs, a function of paramount importance in trauma. In this study, by generating mice with C/EBPε knocked out or overexpressed, we substantiate that C/EBPε ensures the restoration of PMN function, enhancing the expression of antimicrobial proteins and thereby promoting trauma recovery. Furthermore, diminished expression of C/EBPε is observed in trauma patients, with levels displaying a negative correlation with ISS and APACHE II scores, suggesting its potential as a prognostic indicator for clinical treatment. Mechanistically, we uncover the upregulation of SIRT1 and the inhibition of P300 participating in the suppression of C/EBPε acetylation, consequently reducing the resilience of mice to trauma. Therapeutic interventions, whether through the sole administration of PMN, nicotinamide (NAM) treatment, or their combination, all result in an increased survival rate in traumatic mice. In conclusion, our study elucidates the role of C/EBPε in enhancing the resilience to trauma and identifies C/EBPε acetylation as a critical regulatory mechanism, offering potential therapeutic approaches involving PMN transfusion and NAM treatment.

Funder

Hainan Province Clinical Medical Center

National Natural Science Foundation of China

Hainan Provincial Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

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