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Original Article
Experimental study | Trauma

Secondary hypoxic ischemia alters neurobehavioral outcomes, neuroinflammation, and oxidative stress in mice exposed to controlled cortical impact

Clinical and Experimental Emergency Medicine 2021;8(3):216-228.
Published online: September 30, 2021

1Department of Emergency Medicine, Chungnam National University College of Medicine, Daejeon, Korea

2Department of Emergency Medicine, Chungbuk National University College of Medicine, Cheongju, Korea

3Department of Neurology, Chungnam National University College of Medicine, Daejeon, Korea

4Department of Emergency Medicine, Chungbuk National University Hospital, Cheongju, Korea

Correspondence to: Hoon Kim Department of Emergency Medicine, Chungbuk National University College of Medicine, 1 Chungdae-ro, Seowon-gu, Cheongju 28644, Korea E-mail: nichekh2000@chungbuk.ac.kr
• Received: September 7, 2020   • Revised: January 14, 2021   • Accepted: February 4, 2021

Copyright © 2021 The Korean Society of Emergency Medicine

This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0/).

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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

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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
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Secondary hypoxic ischemia alters neurobehavioral outcomes, neuroinflammation, and oxidative stress in mice exposed to controlled cortical impact
Image Image Image Image Image Image Image Image
Fig. 1. Schematic timeline of experimental procedures. The procedure for controlled cortical impact is illustrated in (A) and (B). During surgery (day 0), the head of each mouse was stably fixed in a stereotactic frame using ear bars and a mouth clamp. The right skull was exposed, and a 4 mm circle was drawn in the center of bregma and lambda (A). The bone was removed by drilling to generate a window for impact. The impactor tip was retracted and lowered to the surface of the exposed dura until contact was made (B). Neurobehavioral tests were conducted to assess memory deficits and motor performance (C-F). Locomotor activity test (C); Barnes maze test (D); novel object recognition test (E); contextual and cued fear conditioning (F).
Fig. 2. Graded injury severity in adult male mice. Gross examination of the brain revealed significant graded lesions (A). Quantitative analysis of injured volume following graded controlled cortical impact showed a significant difference between injury and sham groups using one way analysis of variance with Bonferroni adjusted post hoc test (*P<0.05, **P<0.01, ***P<0.001) (B,C). A significant difference was found between 1.0-mm and 2.0-mm depth of impact injuries (*P<0.05). The arrow indicates minimal injury from drilling.
Fig. 3. Effects of traumatic brain injury (TBI) on locomotor activity in mice. Traveled distance (A); mean speed (B); time spent in the central field (C); and time spent outside the central field (D). Data were analyzed using one-way analysis of variance, followed by Bonferroni post hoc test (n=8−10 per group; bars and whiskers represent mean±standard error of the mean). HI, hypoxic ischemia.
Fig. 4. Spatial learning and memory following traumatic brain injury (TBI). The Barnes maze was used to determine latencies, distances, errors, and speed to find the escape box. Tracking plots of a single mouse exploring the Barnes maze (A); mean path length in acquisition trials (B); mean latency in acquisition trials (C); mean speed in acquisition trials (D); mean path length on day 5 of retention trials (E); mean latency in retention trials (F). Asterisks indicate significant differences; *P<0.05 (n=6−8 per group; bars and whiskers represent mean±standard error of the mean). HI, hypoxic ischemia.
Fig. 5. Impaired fear recall in traumatic brain injury (TBI)+hypoxic ischemia (HI) mice following contextual fear conditioning. Experimental design and fear conditioning procedure (A). Cued fear recall on day 1 (B) and day 3 (C). TBI+HI mice demonstrated deficits in cued fear recall relative to TBI-only mice. Asterisks indicate significant differences; *P<0.05, **P<0.01 (n=6−8 per group; bars and whiskers represent mean±standard error of the mean). CS, conditioned stimulus (white noise, 55 dB); US, unconditioned stimulus (0.3-mA electric foot shock; 2 seconds).
Fig. 6. Impaired discrimination recall in traumatic brain injury (TBI)+hypoxic ischemia (HI) mice in the novel object recognition test. Experimental design and representative tracking plot (A). Locomotor activity was recorded by a video tracking system in the testing phase. TBI+HI mice spent less time exploring the novel object, whereas TBI-only mice did not exhibit a preference for the novel object (B). Novel object discrimination index percentage between TBI-only and TBI+HI mice, indicating impaired cognitive ability in TBI+HI compared to TBI-only mice (C). Asterisks indicate significant differences; *P<0.05 (n=6−8 per group; bars and whiskers represent mean±standard error of the mean).
Fig. 7. Oxidative stress following traumatic brain injury (TBI). Hypoxic ischemia (HI) following TBI increased thiobarbituric acid reactive substance (TBARS) levels in traumatized brain hemispheres (A). In TBI+HI mice, glutathione peroxidase (GPx) activity was significantly increased in the traumatized brain hemispheres compared to sham mice (B). TBI or HI did not affect superoxide dismutase (SOD) activity in the traumatized hemispheres (C). Asterisks indicate significant differences; *P<0.05, **P<0.01 (n=5−7 per group; bars and whiskers represent mean±standard error of the mean). Data were analyzed using one-way analysis of variance with Kruskal-Wallis test.
Fig. 8. Interleukin-6 levels were increased in mice after traumatic brain injury (TBI) with additional hypoxic ischemia (HI). The concentrations (pg/mg protein) of cytokines interleukin (IL)-6 (A), IL-1β (B), and tumor necrosis factor (TNF)-α (C) were measured in traumatized hemisphere homogenates of sham, HI, TBI-only, and TBI+HI mice 72 hours post-injury. Asterisks indicate significant differences; *P<0.05, **P<0.01 (n=5−7 per group; bars and whiskers represent mean±standard error of the mean). Data were analyzed using one-way analysis of variance with Kruskal-Wallis test.
Secondary hypoxic ischemia alters neurobehavioral outcomes, neuroinflammation, and oxidative stress in mice exposed to controlled cortical impact
Sham HI TBI TBI+HI
Number 10 10 10 11
Age (wk) 9.89 ± 1.23 10.01 ± 1.20 9.29 ± 1.24 9.97 ± 1.36
Body weight (BL, g) 24.02 ± 2.45 24.72 ± 1.97 24.51 ± 4.14 24.05 ± 1.22
Body temperature (°C) 35.64 ± 0.50 35.97 ± 0.69 35.36 ± 0.59 35.54 ± 0.59
Weight gain (% of BL)
 POD 1 95.65 ± 4.80 93.10 ± 5.30 93.38 ± 2.39 89.17 ± 4.55
 POD 2 99.20 ± 3.24 90.56 ± 7.07 94.63 ± 3.03 83.15 ± 4.74*
 POD 3 100.20 ± 5.25 94.19 ± 7.23 92.73 ± 2.95 80.45 ± 7.99*
Health assessment scores
 POD 1 0.17 ± 0.41 2.12 ± 1.63 0.50 ± 0.54 8.00 ± 6.01***
 POD 2 0.20 ± 0.45 1.36 ± 1.22 0.55 ± 2.32 5.67 ± 4.93**
 POD 3 0.33 ± 0.58 1.04 ± 1.65 1.14 ± 1.75 10.50 ± 6.34***
Survivals at 21days 10/10 (100.0%) 9/10 (90.0%) 8/10 (80.0%) 5/11 (50.0%)*
Table 1. Physiological parameters in mice following controlled cortical impact

Body temperature represents the average rectal temperature during surgery.

HI, hypoxic ischemia; TBI, traumatic brain injury; BL, baseline; POD, postoperative day.

Asterisks indicate significant difference between TBI+HI and TBI only mice.

P<0.05,

P<0.01,

P<0.001.