A mouse model of temporal lobe contusion.

EEG LEARNING AND MEMORY TRAUMATIC BRAIN INJURY

Journal

Journal of neurotrauma
ISSN: 1557-9042
Titre abrégé: J Neurotrauma
Pays: United States
ID NLM: 8811626

Informations de publication

Date de publication:
20 Sep 2024
Historique:
medline: 20 9 2024
pubmed: 20 9 2024
entrez: 20 9 2024
Statut: aheadofprint

Résumé

Trauma to the brain can induce a contusion characterized by a discrete intracerebral or diffuse interstitial hemorrhage. In humans, "computed tomography (CT)-positive", i.e., hemorrhagic, temporal lobe contusions (tlCont) have unique sequelae. tlCont confers significantly increased odds for moderate or worse disability and the inability to return to baseline work capacity compared to intra-axial injuries in other locations. Patients with tlCont are at elevated risks of memory dysfunction, anxiety and post-traumatic epilepsy due to involvement of neuroanatomical structures unique to the temporal lobe including the amygdala, hippocampus and ento-/perirhinal cortex. Because of the relative inaccessibility of the temporal lobe in rodents, no preclinical model of tlCont has been described, impeding progress in elucidating the specific pathophysiology unique to tlCont. Here, we present a minimally invasive mouse model of tlCont with the contusion characterized by a traumatic interstitial hemorrhage. Mortality was low and sensorimotor deficits (beam walk, accelerating rotarod) resolved completely within 3-5 days. However, significant deficits in memory (novel object recognition, Morris water maze) and anxiety (elevated plus maze) persisted at 14-35 days, and non-convulsive electroencephalographic seizures and spiking were significantly increased in the hippocampus at 7-21 days. Immunohistochemistry showed widespread astrogliosis and microgliosis, bilateral hippocampal sclerosis, bilateral loss of hippocampal and cortical inhibitory parvalbumin neurons, and evidence of interhemispheric connectional diaschisis involving the fiber bundle in the ventral corpus callosum that connects temporal lobe structures. This model may be useful to advance our understanding of the unique features of tlCont in humans.

Identifiants

pubmed: 39302058
doi: 10.1089/neu.2024.0242
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Auteurs

J Marc Simard (JM)

University of Maryland School of Medicine, Neurosurgery, 22 South Green St, Baltimore, Maryland, United States, 21201.
Maryland, United States; msimard@som.umaryland.edu.

Cigdem Tosun (C)

University of Maryland School of Medicine, Neurosurgery, Baltimore, Maryland, United States; CTosun@som.umaryland.edu.

Orest Tsymbalyuk (O)

University of Maryland School of Medicine, Neurosurgery, Baltimore, Maryland, United States; OTsymbalyuk@som.umaryland.edu.

Mitchell Moyer (M)

University of Maryland School of Medicine, Neurosurgery, Baltimore, Maryland, United States; Mitchell.Moyer@som.umaryland.edu.

Kaspar Keledjian (K)

University of Maryland School of Medicine, Neurosurgery, Baltimore, Maryland, United States; kkeledjian@som.umaryland.edu.

Natalya Tsymbalyuk (N)

University of Maryland School of Medicine, Neurosurgery, Baltimore, Maryland, United States; NTsymbalyuk@som.umaryland.edu.

Adedayo Olaniran (A)

University of Maryland School of Medicine, Neurosurgery, Baltimore, Maryland, United States; Adedayo.Olaniran@som.umaryland.edu.

Madison Evans (M)

University of Maryland School of Medicine, Neurosurgery, Baltimore, Maryland, United States; madison.evans@som.umaryland.edu.

Jenna Langbein (J)

University of Maryland School of Medicine, Neurosurgery, Baltimore, Maryland, United States; JLangbein@som.umaryland.edu.

Ziam Khan (Z)

University of Maryland School of Medicine, Neurosurgery, Baltimore, Maryland, United States; Ziam.Khan@som.umaryland.edu.

Matthew Kreinbrink (M)

University of Maryland School of Medicine, Neurosurgery, Baltimore, Maryland, United States; Matthew.Kreinbrink@som.umaryland.edu.

Prajwal Ciryam (P)

University of Maryland School of Medicine, Neurology, 110 S Paca St, Baltimore, Maryland, United States, 21201-1544; pciryam@som.umaryland.edu.

Jesse A Stokum (JA)

University of Maryland School of Medicine, Neurosurgery, Baltimore, Maryland, United States; jstokum@som.umaryland.edu.

Ruchira Jha (R)

Barrow Neurological Institute, Phoenix, Arizona, United States; ruchira.jha@barrowneuro.org.

Alexander Ksendzovsky (A)

University of Maryland School of Medicine, Neurosurgery, Baltimore, Maryland, United States; AKsendzovsky@som.umaryland.edu.

Volodymyr Gerzanich (V)

University of Maryland School of Medicine, Neurosurgery, Baltimore, Maryland, United States; VGerzanich@som.umaryland.edu.

Classifications MeSH