猪弥漫性创伤性脑损伤后外周免疫细胞失调。

IF 9.3 1区 医学 Q1 IMMUNOLOGY Journal of Neuroinflammation Pub Date : 2024-12-18 DOI:10.1186/s12974-024-03317-y
Kathryn L Wofford, Kevin D Browne, David J Loane, David F Meaney, D Kacy Cullen
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引用次数: 0

摘要

创伤性脑损伤(TBI)是一个全球性的健康问题,每年影响数百万人,可能导致持续的神经病理学、慢性神经功能缺损和死亡。然而,创伤性脑损伤不仅影响神经组织,还会影响外周免疫系统的稳态和生理。创伤性脑损伤破坏了大脑和外周器官之间的平衡信号,导致免疫失调和增加感染易感性。事实上,创伤性脑损伤后的继发感染使神经系统预后恶化,是死亡率和发病率的主要来源。尽管受损的大脑和外周免疫功能之间存在令人信服的联系,但对于闭合性头部弥漫性脑损伤(包括所有脑震荡在内的最常见临床表现)的损伤严重程度如何影响外周免疫系统,我们知之甚少。因此,我们利用猪封闭头部、非冲击弥漫性旋转加速度的大型动物TBI模型,表征了外周血单个核细胞(PBMCs)和血浆随时间和损伤严重程度的变化。在所有时间点和损伤水平上,我们没有检测到血浆细胞因子浓度的任何变化。然而,pbmc的变化是可检测的,并且更加稳健。我们观察到循环pbmc的浓度和生理变化与损伤严重程度有关,大多数细胞变化发生在高转速损伤后的前10天。在这里,我们报告了髓细胞和T细胞浓度的变化,PBMC组成的变化,以及吞噬清除随时间的变化。总之,这些数据表明,在临床相关的大型动物TBI模型中,弥漫性脑损伤后,免疫系统表现出亚急性时间范围内可检测到的扰动。这些发现促使未来研究针对外周免疫的治疗干预措施以及外周血细胞表征作为诊断工具的潜力。
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Peripheral immune cell dysregulation following diffuse traumatic brain injury in pigs.

Traumatic brain injury (TBI) is a global health problem affecting millions of individuals annually, potentially resulting in persistent neuropathology, chronic neurological deficits, and death. However, TBI not only affects neural tissue, but also affects the peripheral immune system's homeostasis and physiology. TBI disrupts the balanced signaling between the brain and the peripheral organs, resulting in immunodysregulation and increasing infection susceptibility. Indeed, secondary infections following TBI worsen neurological outcomes and are a major source of mortality and morbidity. Despite the compelling link between the damaged brain and peripheral immune functionality, little is known about how injury severity affects the peripheral immune system in closed-head diffuse TBI, the most common clinical presentation including all concussions. Therefore, we characterized peripheral blood mononuclear cells (PBMCs) and plasma changes over time and across injury severity using an established large-animal TBI model of closed-head, non-impact diffuse rotational acceleration in pigs. Across all timepoints and injury levels, we did not detect any changes to plasma cytokine concentrations. However, changes to the PBMCs were detectable and much more robust. We observed the concentration and physiology of circulating PBMCs changed in an injury severity-dependent manner, with most cellular changes occurring within the first 10 days following a high rotational velocity injury. Here, we report changes in the concentrations of myeloid and T cells, changes in PBMC composition, and changes in phagocytic clearance over time. Together, these data suggest that following a diffuse brain injury in a clinically relevant large-animal TBI model, the immune system exhibits perturbations that are detectable into the subacute timeframe. These findings invite future investigations into therapeutic interventions targeting peripheral immunity and the potential for peripheral blood cellular characterization as a diagnostic tool.

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来源期刊
Journal of Neuroinflammation
Journal of Neuroinflammation 医学-神经科学
CiteScore
15.90
自引率
3.20%
发文量
276
审稿时长
1 months
期刊介绍: The Journal of Neuroinflammation is a peer-reviewed, open access publication that emphasizes the interaction between the immune system, particularly the innate immune system, and the nervous system. It covers various aspects, including the involvement of CNS immune mediators like microglia and astrocytes, the cytokines and chemokines they produce, and the influence of peripheral neuro-immune interactions, T cells, monocytes, complement proteins, acute phase proteins, oxidative injury, and related molecular processes. Neuroinflammation is a rapidly expanding field that has significantly enhanced our knowledge of chronic neurological diseases. It attracts researchers from diverse disciplines such as pathology, biochemistry, molecular biology, genetics, clinical medicine, and epidemiology. Substantial contributions to this field have been made through studies involving populations, patients, postmortem tissues, animal models, and in vitro systems. The Journal of Neuroinflammation consolidates research that centers around common pathogenic processes. It serves as a platform for integrative reviews and commentaries in this field.
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