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Chronic juvenile stress exacerbates neurobehavioral dysfunction and neuroinflammation following traumatic brain injury in adult mice
Clin Exp Emerg Med. 2023;10(2):200-212.   Published online February 14, 2023
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Chronic juvenile stress exacerbates neurobehavioral dysfunction and neuroinflammation following traumatic brain injury in adult mice
Clin Exp Emerg Med. 2023;10(2):200-212.   Published online February 14, 2023
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Objective
Chronic stress in adolescence may affect brain maturation and predispose individuals to psychiatric disorders in adulthood. However, whether chronic juvenile stress influences vulnerability to nonpsychiatric brain injuries, such as traumatic brain injury (TBI), remains unclear. Therefore, we hypothesized that juvenile stress-related neuronal circuit disturbances could aggravate brain damage following TBI in adulthood.
Methods
For chronic stress, we used an unpredictable chronic mild stress (UCMS) procedure for 5 weeks in adolescent mice. This was followed by a controlled cortical impact (CCI) injury to evaluate the influence of chronic juvenile stress on brain damage progression following TBI in adult mice. Mice underwent UCMS alone, UCMS followed by CCI, CCI alone, or sham operation. We characterized neurobehavioral deficits (Barnes maze, open field, and light-dark tests), neuroinflammation (ionized calcium-binding adapter molecule 1 [Iba-1], glial fibrillary acidic protein [GFAP], and neuron-specific nuclear protein [NeuN] immunoreactivity), and apoptosis (B-cell lymp [Bcl-2], Bcl-2-associated X protein [Bax], and procaspase-3 immunoreactivity).
Results
Following CCI, mice exposed to UCMS showed decreased spatial learning and memory in the Barnes maze test compared with unstressed mice. A significant increase in Iba-1, GFAP, and Bax/Bcl-2 immunostaining levels was observed in the mice exposed to UCMS followed by CCI compared with the CCI-only mice. In contrast, a significant decrease in NeuN immunostaining levels was observed in the UCMS with CCI group compared with the CCI alone group.
Conclusion
Chronic stress in a juvenile mouse model aggravates neurobehavioral impairments and potentiates glial reactivity, neuronal injury, and apoptosis following moderate-to-severe TBI that occurs in adulthood. The present study suggests that juvenile chronic stress may influence poor outcomes following TBI in later adulthood.

Citations

Citations to this article as recorded by  Crossref logo
  • Context-dependent attention and memory outcomes resulting from combined prenatal THC and nicotine exposure following chronic stress
    Mariana Delgado, Nicole M. Roeder, Samantha L. Penman, Brittany J. Richardson, Jia Wang, Saptarshi Chakraborty, Panayotis K. Thanos
    Pharmacology Biochemistry and Behavior.2026; 267: 174234.     CrossRef
  • Inhibition of microglia priming by NLRP3 reduces the impact of early life stress and mild TBI
    Fabiola Placeres-Uray, Aditi S. Gorthy, Maria Dominguez Torres, Coleen M. Atkins
    Journal of Neuroinflammation.2025;[Epub]     CrossRef
  • Context is key: glucocorticoid receptor and corticosteroid therapeutics in outcomes after traumatic brain injury
    Morgan A. Taylor, Olga N. Kokiko-Cochran
    Frontiers in Cellular Neuroscience.2024;[Epub]     CrossRef
  • 8,087 View
  • 128 Download
  • 3 Web of Science
  • 3 Crossref

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Secondary hypoxic ischemia alters neurobehavioral outcomes, neuroinflammation, and oxidative stress in mice exposed to controlled cortical impact
Clin Exp Emerg Med. 2021;8(3):216-228.   Published online September 30, 2021
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Secondary hypoxic ischemia alters neurobehavioral outcomes, neuroinflammation, and oxidative stress in mice exposed to controlled cortical impact
Clin Exp Emerg Med. 2021;8(3):216-228.   Published online September 30, 2021
Close
Objective
Hypoxic ischemia (HI) is a secondary insult that can cause fatal neurologic outcomes after traumatic brain injury (TBI), ranging from mild cognitive deficits to persistent vegetative states. We here aimed to unravel the underlying pathological mechanisms of HI injury in a TBI mouse model.
Methods
Neurobehavior, neuroinflammation, and oxidative stress were assessed in a mouse model of controlled cortical impact (CCI) injury followed by HI. Mice underwent CCI alone, CCI followed by HI, HI alone, or sham operation. HI was induced by one-vessel carotid ligation with 1 hour of 8% oxygen in nitrogen. Learning and memory were assessed using the novel object recognition test, contextual and cued fear conditioning, and Barnes maze test. Brain cytokine production and oxidative stress-related components were measured.
Results
Compared to TBI-only animals, TBI followed by HI mice exhibited significantly poorer survival and health scores, spatial learning and memory in the Barnes maze test, discrimination memory in the novel object recognition test, and fear memory following contextual and cued fear conditioning. Malondialdehyde levels were significantly lower, whereas glutathione peroxidase activity was significantly higher in TBI followed by HI mice compared to TBI-only and sham counterparts, respectively. Interleukin-6 levels were significantly higher in TBI followed by HI mice compared to both TBI-only and sham animals.
Conclusion
Post-traumatic HI aggravated deficits in spatial, fear, and discrimination memory in an experimental TBI mouse model. Our results suggest that increased neuroinflammation and oxidative stress contribute to HI-induced neurobehavioral impairments after TBI.

Citations

Citations to this article as recorded by  Crossref logo
  • The immunological landscape of traumatic brain injury: insights from pathophysiology to experimental models
    Matthew Abikenari, Joseph H. Ha, Justin Liu, Alexander Ren, Kwang Bog Cho, Jaejoon Lim, Lily H. Kim, Ravi Medikonda, John Choi, Michael Lim
    Frontiers in Neurology.2025;[Epub]     CrossRef
  • The long-term influences of age at injury on neuroinflammation and neuronal apoptosis following traumatic brain injury in pediatric and adult mice
    Jin-Soo Park, Hyun-Jeong Park, Young-Min Kim, Hyun-Seok Chai, Gwan Jin Park, Sang-Chul Kim, Gyeong-Gyu Yu, Suk-Woo Lee, Hoon Kim
    Clinical and Experimental Emergency Medicine.2025; 12(3): 267.     CrossRef
  • Chronic juvenile stress exacerbates neurobehavioral dysfunction and neuroinflammation following traumatic brain injury in adult mice
    Sung-Jin Park, Hyun-Jeong Park, Backyoun Kim, Young-Min Kim, Suk-Woo Lee, Hoon Kim
    Clinical and Experimental Emergency Medicine.2023; 10(2): 200.     CrossRef
  • 9,251 View
  • 80 Download
  • 4 Web of Science
  • 3 Crossref

Trauma

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Effect of complement C1-esterase inhibitor on brain edema and inflammation after mild traumatic brain injury in an animal model
Clin Exp Emerg Med. 2020;7(2):87-94.   Published online June 30, 2020
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Effect of complement C1-esterase inhibitor on brain edema and inflammation after mild traumatic brain injury in an animal model
Clin Exp Emerg Med. 2020;7(2):87-94.   Published online June 30, 2020
Close
Objective
Traumatic brain injury (TBI) is characterized by damage to the blood-brain barrier, inflammation, and edema formation. In this pilot study, we aimed to investigate the effects of a complement inhibitor, C1-esterase inhibitor (C1 INH), on brain edema and inflammation in a rat model of mild TBI.
Methods
Thirty-six male Sprague Dawley rats were randomly assigned to control, TBI, or TBI plus C1 INH groups. TBI and TBI plus C1 INH rats received an injection of saline or 25 IU/kg C1 INH, respectively, with TBI using a weight drop model. Control rats received saline only. Rats were subsequently euthanized and their brain tissue harvested for analysis. The primary outcome was the extent of edema as assessed by the brain’s water content. Secondary outcomes included enzyme-linked immunosorbent assays to determine levels of pro-inflammatory mediators.
Results
Tumor necrosis factor-α levels were significantly greater in TBI rats than control rats, indicating that inflammation was generated by the weight drop impact. Brain water content following TBI was significantly different between TBI rats treated with C1-INH (78.7%±0.12), untreated TBI rats (79.3%±0.12), and control rats (78.6%±0.15, P=0.001). There was a significant decrease in C3a and interleukin 2 levels among C1 INH–treated rats compared with untreated TBI rats, but no change in levels of tumor necrosis factor-α and S100β.
Conclusion
C1-INH inhibited the complement pathway, suggesting that C1-INH may have a therapeutic benefit in TBI. Further studies are needed to investigate the effect of C1-INH on clinical outcomes.

Citations

Citations to this article as recorded by  Crossref logo
  • The immune regulation of complement system in intracerebral hemorrhage(ICH): the double-edged effects of mechanisms and therapeutic strategies
    Zixuan Wang, Diyang lyu, YuanYuan Xiang, YuTao Lu, Tianrui Yu, Weixin Zhou, Moxin Wu, Xiaoping Yin, Zhiying Chen
    International Immunopharmacology.2026; 175: 116381.     CrossRef
  • The Interaction of Neutrophil Extracellular Traps and Complement in Intracerebral Hemorrhage
    Yaxin Shang, Binglin Kuang, Jia Zheng, Yunpeng Du, Tong Shang, Baochun Luo, Yue Sun, Lei Zheng, Baiwen Zhang, Li Liu, Wei Zou
    Cellular and Molecular Neurobiology.2026;[Epub]     CrossRef
  • Complement in Traumatic Brain Injury: Linking Acute Injury to Chronic Neurodegeneration
    Ariana Chacon, Roy Raheb Khelo, Layth J.M. Saada, Jonathan A. Grossberg, Andrew Reisner, Ali M. Alawieh, Stephen Tomlinson
    European Journal of Immunology.2026;[Epub]     CrossRef
  • Tackling Neuroinflammation After Traumatic Brain Injury: Complement Inhibition as a Therapy for Secondary Injury
    Inge A.M. van Erp, Iliana Michailidou, Thomas A. van Essen, Mathieu van der Jagt, Wouter Moojen, Wilco C. Peul, Frank Baas, Kees Fluiter
    Neurotherapeutics.2023; 20(1): 284.     CrossRef
  • Combined anti-C1-INH and radiotherapy against glioblastoma
    Emma Liljedahl, Elise Konradsson, Emma Gustafsson, Karolina Förnvik Jonsson, Jill K. Olofsson, Kurt Osther, Crister Ceberg, Henrietta Nittby Redebrandt
    BMC Cancer.2023;[Epub]     CrossRef
  • Effects of C1-INH Treatment on Neurobehavioral Sequelae and Late Seizures After Traumatic Brain Injury in a Mouse Model of Controlled Cortical Impact
    Min Chen, Quang M. Tieng, Jiaxin Du, Stephen R. Edwards, Dhiraj Maskey, Emil Peshtenski, David Reutens
    Neurotrauma Reports.2023;[Epub]     CrossRef
  • Role of gC1qR as a modulator of endothelial cell permeability and contributor to post-stroke inflammation and edema formation
    Mychael Delgardo, Anthony J. Tang, Thilan Tudor, Andrés Pascual-Leone, E. Sander Connolly
    Frontiers in Cellular Neuroscience.2023;[Epub]     CrossRef
  • Complement Component 5 (C5) Deficiency Improves Cognitive Outcome After Traumatic Brain Injury and Enhances Treatment Effects of Complement Inhibitors C1-Inh and CR2-Crry in a Mouse Model
    Min Chen, Stephen R. Edwards, Dhiraj Maskey, Trent M. Woodruff, Stephen Tomlinson, David Reutens
    Neurotrauma Reports.2023;[Epub]     CrossRef
  • Stem Cell Therapy for Sequestration of Traumatic Brain Injury-Induced Inflammation
    Mia C. Borlongan, Susanna Rosi
    International Journal of Molecular Sciences.2022; 23(18): 10286.     CrossRef
  • Challenging Hurdles of Current Targeting in Glioblastoma: A Focus on Immunotherapeutic Strategies
    Vassilis Genoud, Denis Migliorini
    International Journal of Molecular Sciences.2021; 22(7): 3493.     CrossRef
  • 8,792 View
  • 129 Download
  • 11 Web of Science
  • 10 Crossref