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Traumatic Brain Injury in the Long-COVID Era

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Journal Neurotrauma Rep
Date 2024 Mar 11
PMID 38463416
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Abstract

Major determinants of the biological background or reserve, such as age, biological sex, comorbidities (diabetes, hypertension, obesity, etc.), and medications (e.g., anticoagulants), are known to affect outcome after traumatic brain injury (TBI). With the unparalleled data richness of coronavirus disease 2019 (COVID-19; ∼375,000 and counting!) as well as the chronic form, long-COVID, also called post-acute sequelae SARS-CoV-2 infection (PASC), publications (∼30,000 and counting) covering virtually every aspect of the diseases, pathomechanisms, biomarkers, disease phases, symptomatology, etc., have provided a unique opportunity to better understand and appreciate the holistic nature of diseases, interconnectivity between organ systems, and importance of biological background in modifying disease trajectories and affecting outcomes. Such a holistic approach is badly needed to better understand TBI-induced conditions in their totality. Here, I briefly review what is known about long-COVID/PASC, its underlying-suspected-pathologies, the pathobiological changes induced by TBI, in other words, the TBI endophenotypes, discuss the intersection of long-COVID/PASC and TBI-induced pathobiologies, and how by considering some of the known factors affecting the person's biological background and the inclusion of mechanistic molecular biomarkers can help to improve the clinical management of TBI patients.

Citing Articles

Trends in Traumatic Brain Injuries During the COVID-19 Pandemic: A Single-Center Review of Patient Charts From Pakistan.

Ahmed S, Anwer A, Abdullah M, Ashraf M, Iqbal J, Siddiq J Cureus. 2024; 16(4):e58745.

PMID: 38779274 PMC: 11110921. DOI: 10.7759/cureus.58745.

References
1.
Yonts A . Pediatric Long-COVID: A Review of the Definition, Epidemiology, Presentation, and Pathophysiology. Pediatr Ann. 2022; 51(11):e416-e420. DOI: 10.3928/19382359-20220913-06. View

2.
Kempuraj D, Ahmed M, Selvakumar G, Thangavel R, Raikwar S, Zaheer S . Acute Traumatic Brain Injury-Induced Neuroinflammatory Response and Neurovascular Disorders in the Brain. Neurotox Res. 2020; 39(2):359-368. PMC: 7502806. DOI: 10.1007/s12640-020-00288-9. View

3.
Hanafy S, Xiong C, Chan V, Sutton M, Escobar M, Colantonio A . Comorbidity in traumatic brain injury and functional outcomes: a systematic review. Eur J Phys Rehabil Med. 2021; 57(4):535-550. PMC: 10396401. DOI: 10.23736/S1973-9087.21.06491-1. View

4.
Levin S, Pershina E, Bugaev-Makarovskiy N, Chernomorets I, Konakov M, Arkhipov V . Why Do Levels Of Anti-inflammatory Cytokines Increase During Memory Acquisition?. Neuroscience. 2021; 473:159-169. DOI: 10.1016/j.neuroscience.2021.08.007. View

5.
Tsitsopoulos P, Abu Hamdeh S, Marklund N . Current Opportunities for Clinical Monitoring of Axonal Pathology in Traumatic Brain Injury. Front Neurol. 2017; 8:599. PMC: 5702013. DOI: 10.3389/fneur.2017.00599. View