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Review
. 2021 Jun;35(3):524-538.
doi: 10.1111/fcp.12656. Epub 2021 Mar 13.

Neuropharmacology in traumatic brain injury: from preclinical to clinical neuroprotection?

Affiliations
Review

Neuropharmacology in traumatic brain injury: from preclinical to clinical neuroprotection?

Dominique Lerouet et al. Fundam Clin Pharmacol. 2021 Jun.

Abstract

Traumatic brain injury (TBI) constitutes a major health problem worldwide and is a leading cause of death and disability in individuals, contributing to devastating socioeconomic consequences. Despite numerous promising pharmacological strategies reported as neuroprotective in preclinical studies, the translation to clinical trials always failed, albeit the great diversity of therapeutic targets evaluated. In this review, first, we described epidemiologic features, causes, and primary and secondary injuries of TBI. Second, we outlined the current literature on animal models of TBI, and we described their goals, their advantages and disadvantages according to the species used, the type of injury induced, and their clinical relevance. Third, we defined the concept of neuroprotection and discussed its evolution. We also identified the reasons that might explain the failure of clinical translation. Then, we reviewed post-TBI neuroprotective treatments with a focus on the following pleiotropic drugs, considered "low hanging fruit" with high probability of success: glitazones, glibenclamide, statins, erythropoietin, and progesterone, that were largely tested and demonstrated efficient in preclinical models of TBI. Finally, our review stresses the need to establish a close cooperation between basic researchers and clinicians to ensure the best clinical translation for neuroprotective strategies for TBI.

Keywords: animal models; clinical translation; pleiotropic strategies; traumatic brain injury.

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Conflict of interest statement

The authors declare no conflict of interest.

References

    1. Maas AIR, Menon DK, Adelson PD et al. Traumatic brain injury: integrated approaches to improve prevention, clinical care, and research. Lancet Neurol. 2017;16:987‐1048. - PubMed
    1. Crupi R, Cordaro M, Cuzzocrea S, Impellizzeri D. Management of traumatic brain injury: from present to future. Antioxidants (Basel). 2020;9(4):297. - PMC - PubMed
    1. Dixon KJ. Pathophysiology of traumatic brain injury. Phys Med Rehabil Clin N Am. 2017;28:215‐225. - PubMed
    1. LoBue C, Munro C, Schaffert J et al. Traumatic brain injury and risk of long‐term brain changes, accumulation of pathological markers, and developing dementia: a review. J Alzheimers Dis. 2019;70:629‐654. - PubMed
    1. Di Pietro V, Yakoub KM, Caruso G et al. Antioxidant therapies in traumatic brain injury. Antioxidants (Basel). 2020;9:260. - PMC - PubMed

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