Objective The study explores the long-term impacts of traumatic brain injury (TBI) on neuroinflammation and neuronal apoptosis in pediatric and adult mice, focusing on how age at injury influences these processes.
Methods Controlled cortical impacts were used to induce TBI in pediatric (21–25 days old) and adult (8–12 weeks old) C57BL/6 male mice. Neuroinflammation was evaluated by measuring immunoreactivity for allograft inflammatory factor 1 (AIF-1)/ionized calcium-binding adaptor molecule 1 (Iba-1) and glial fibrillary acidic protein (GFAP), while apoptosis was assessed using markers such as B-cell lymphoma 2 (Bcl-2)-associated X protein (Bax), Bcl-2, and procaspase-3. Additionally, heat shock protein 70 (HSP70) expression was measured to understand the stress response.
Results Following controlled cortical impacts, pediatric mice exhibited a significant reduction in expression of neuronal nuclei (P<0.001), and significant increases in expression of GFAP (P<0.01) and AIF-1/Iba-1 (P<0.05) at 3 days post-injury (DPI) compared with sham controls. In contrast, adult mice exhibited no significant change in AIF-1/Iba-1 expression and a less pronounced increase in GFAP (P<0.05) at 3 DPI compared with sham controls. A more significant increase in Bax/Bcl-2 ratio at 7 DPI (P<0.01) was seen in pediatric mice, while a weak but significant increase in Bax/Bcl-2 ratio at 7 DPI (P<0.05) was evident in adults. Both age groups showed a significant but transient increase in HSP70 levels at 7 DPI, which normalized by 90 DPI.
Conclusion Pediatric and adult mice exhibited significant time-dependent differences in neuroinflammation and apoptosis following TBI, with pediatric mice showing more intense early responses indicative of age-specific vulnerabilities in post-injury outcomes. Both age groups showed a significant but transient increase in HSP70 expression, suggesting an acute response to stress post-injury.
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Extracellular vesicles as biomarkers for traumatic brain injury using a 3D in vitro human brain tissue model Peter Hsi, Vishal Tandon, David L. Kaplan Scientific Reports.2025;[Epub] CrossRef
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.
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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
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.
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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