Selective neuronal expression of progranulin is sufficient to provide neuroprotective and anti-inflammatory effects after traumatic brain injury

被引:1
|
作者
Wang, Sudena [1 ]
Weyer, Marc-Philipp [2 ]
Hummel, Regina [1 ]
Wilken-Schmitz, Annett [2 ]
Tegeder, Irmgard [2 ]
Schaefer, Michael K. E. [1 ,3 ,4 ]
机构
[1] Johannes Gutenberg Univ Mainz, Univ Med Ctr, Dept Anesthesiol, Langenbeckstr 1,Bldg 505, D-55131 Mainz, Germany
[2] Goethe Univ Frankfurt, Inst Clin Pharmacol, Fac Med, Theodor Stern Kai 7 Bd 74-75,Rm 4-101a, D-60590 Frankfurt, Germany
[3] Johannes Gutenberg Univ Mainz, Focus Program Translat Neurosci FTN, Mainz, Germany
[4] Johannes Gutenberg Univ Mainz, Res Ctr Immunotherapy FZI, Mainz, Germany
关键词
Progranulin; Traumatic brain injury; Neuropathology; Neuroprotection; Neuroinflammation; Microglia; CD68; Therapy; FRONTOTEMPORAL DEMENTIA; ACTIVATED MICROGLIA; NERVOUS-SYSTEM; MUTATIONS; RECEPTOR; GENE; INFLAMMATION; DEFICIENCY; PHENOTYPES; DEFENSE;
D O I
10.1186/s12974-024-03249-7
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
Progranulin (PGRN), which is produced in neurons and microglia, is a neurotrophic and anti-inflammatory glycoprotein. Human loss-of-function mutations cause frontotemporal dementia, and PGRN knockout (KO) mice are a model for dementia. In addition, PGRN KO mice exhibit severe phenotypes in models of traumatic or ischemic central nervous system (CNS) disorders, including traumatic brain injury (TBI). It is unknown whether restoration of progranulin expression in neurons (and not in microglia) might be sufficient to prevent excessive TBI-evoked brain damage. To address this question, we generated mice with Nestin-Cre-driven murine PGRN expression in a PGRN KO line (PGRN-KONestinGrn) to rescue PGRN in neurons. PGRN expression analysis in primary CNS cell cultures from na & iuml;ve mice and in (non-) injured brain tissue from PGRN-KONestinGrn revealed expression of PGRN in neurons but not in microglia. After experimental TBI, examination of the structural brain damage at 5 days post-injury (dpi) showed that the TBI-induced loss of brain tissue and hippocampal neurons was exacerbated in PGRN-KOGrnflfl mice (PGRN knockout with the mGrn fl-STOP-fl allele, Cre-negative), as expected, whereas the tissue damage in PGRN-KONestinGrn mice was similar to that in PGRN-WT mice. Analysis of CD68+ immunofluorescent microglia and Cd68 mRNA expression showed that excessive microglial activation was rescued in PGRN-KONestinGrn mice, and the correlation of brain injury with Cd68 expression suggested that Cd68 was a surrogate marker for excessive brain injury caused by PGRN deficiency. The results show that restoring neuronal PGRN expression was sufficient to rescue the exacerbated neuropathology of TBI caused by PGRN deficiency, even in the absence of microglial PGRN. Hence, endogenous microglial PGRN expression was not essential for the neuroprotective or anti-inflammatory effects of PGRN after TBI in this study.
引用
收藏
页数:17
相关论文
共 50 条
  • [31] Neuroprotective effects of collagen matrix in rats after traumatic brain injury
    Shin, Samuel S.
    Grandhi, Ramesh
    Henchir, Jeremy
    Yan, Hong Q.
    Badylak, Stephen F.
    Dixon, C. Edward
    RESTORATIVE NEUROLOGY AND NEUROSCIENCE, 2015, 33 (02) : 95 - 104
  • [32] ANTI-INFLAMMATORY PROPERTIES OF NANO-PULSED LASER THERAPY (NPLT) AFTER TRAUMATIC BRAIN INJURY
    Grant, Auston
    Guptarak, June
    Parsley, Margaret
    Bolding, Ian
    Johnson, Kathia
    Petrov, Irene
    Petrov, Yuriy
    Esenaliev, Rinat
    Prough, Donald
    Micci, Maria
    JOURNAL OF NEUROTRAUMA, 2017, 34 (13) : A107 - A107
  • [33] A COMPARISON OF TWO ANTI-INFLAMMATORY DRUGS, EPOETIN ALPHA AND ANAKINRA FOR TREATMENT AFTER TRAUMATIC BRAIN INJURY
    Vonder Haar, Cole
    Peterson, Todd C.
    Greeney, Dylan
    Jannings, Aaron
    Anderson, Gail D.
    Hoane, Michael R.
    JOURNAL OF NEUROTRAUMA, 2012, 29 (10) : A207 - A207
  • [34] Neuroprotective effects of safranal in a rat model of traumatic injury to the spinal cord by anti-apoptotic, anti-inflammatory and edema-attenuating
    Zhang, Chen
    Ma, Jun
    Fan, Lihong
    Zou, Yulong
    Dang, Xiaoqian
    Wang, Kunzheng
    Song, Jinhui
    TISSUE & CELL, 2015, 47 (03): : 291 - 300
  • [35] Pro- and anti-inflammatory biomarkers and traumatic brain injury outcomes: A review
    Rodney, Tamar
    Osier, Nicole
    Gill, Jessica
    CYTOKINE, 2018, 110 : 248 - 256
  • [36] Traumatic brain injury polarizes peritoneal macrophages towards an anti-inflammatory phenotype
    Schwulst, Steven
    Perlman, Harris
    Trahanas, Diane
    CRITICAL CARE MEDICINE, 2013, 41 (12)
  • [37] Anti-inflammatory and immunomodulatory mechanisms of atorvastatin in a murine model of traumatic brain injury
    Xin Xu
    Weiwei Gao
    Shiqi Cheng
    Dongpei Yin
    Fei Li
    Yingang Wu
    Dongdong Sun
    Shuai Zhou
    Dong Wang
    Yongqiang Zhang
    Rongcai Jiang
    Jianning Zhang
    Journal of Neuroinflammation, 14
  • [38] Anti-inflammatory and immunomodulatory mechanisms of atorvastatin in a murine model of traumatic brain injury
    Xu, Xin
    Gao, Weiwei
    Cheng, Shiqi
    Yin, Dongpei
    Li, Fei
    Wu, Yingang
    Sun, Dongdong
    Zhou, Shuai
    Wang, Dong
    Zhang, Yongqiang
    Jiang, Rongcai
    Zhang, Jianning
    JOURNAL OF NEUROINFLAMMATION, 2017, 14
  • [39] The neuroprotective effects of cholecystokinin in the brain: antioxidant, anti-inflammatory, cognition, and synaptic plasticity
    Cui, Hailiang
    Li, Zhonghua
    Sun, Hongyu
    Zhao, Wanlin
    Ma, He
    Hao, Li
    Zhang, Zhenqiang
    Holscher, Christian
    Ma, Dongrui
    Zhang, Zijuan
    REVIEWS IN THE NEUROSCIENCES, 2025,
  • [40] Dextromethorphan provides neuroprotection via anti-inflammatory and anti-excitotoxicity effects in the cortex following traumatic brain injury
    Pu, Benfang
    Xue, Yonghua
    Wang, Qingming
    Hua, Chunhui
    Li, Xinyuan
    MOLECULAR MEDICINE REPORTS, 2015, 12 (03) : 3704 - 3710