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Updated: Jun 10, 2025

Murine Model of Controlled Cortical Impact for the Induction of Traumatic Brain Injury
Published on: August 16, 2019
Traumatic brain injury: Symptoms to systems in the 21st century
Geoffrey P Dobson1, Jodie L Morris1, Hayley L Letson1
1Heart, Sepsis and Trauma Research Laboratory, College of Medicine and Dentistry, James Cook University, Queensland 4811, Australia.
Abstract:
Severe traumatic brain injury (TBI) is a devastating injury with a mortality of ∼ 25-30 %. Despite decades of high-quality research, no drug therapy has reduced mortality. Why is this so? We argue two contributing factors for the lack of effective drug therapies include the use of specific-pathogen free (SPF) animals for translational research and the flawed practice of single-nodal targeting for drug design. A revolution is required to better understand how the whole body responds to TBI, identify new markers of its progression, and discover new system-acting drugs to treat it. In this review, we present a brief history of TBI, discuss its system's pathophysiology and propose a new research strategy for the 21st century. TBI progression develops from injury signals radiating from the primary impact, which can cause local ischemia, hemorrhage, excitotoxicity, cellular depolarization, immune dysfunction, sympathetic hyperactivity, blood-brain barrier breach, coagulopathy and whole-body dysfunction. Metabolic reprograming of immune cells drives neuroinflammation and secondary injury processes. We propose if sympathetic hyperactivity and immune cell activation can be corrected early, cardiovascular function and endothelial-glycocalyx-mitochondrial coupling can be restored, and secondary injury minimized with improved patient outcomes. The therapeutic goal is to switch the injury phenotype to a healing phenotype by restoring homeostasis and maintaining sufficient tissue O2 delivery. We have been developing a small-volume fluid therapy comprising adenosine, lidocaine and magnesium (ALM) to treat TBI and have shown that it blunts the CNS-stress response, supports cardiovascular function and reduces secondary injury. Future research will investigate its suitability for human translation.
Insights
Severe traumatic brain injury (TBI) lacks effective drug therapies due to flawed research models. A new strategy focusing on whole-body response and system-acting drugs is proposed to improve patient outcomes.
Area of Science:
- Neuroscience
- Trauma Research
- Pharmacology
Background:
- Severe traumatic brain injury (TBI) has a high mortality rate (25-30%) with no effective drug therapies despite extensive research.
- Current translational research often uses specific-pathogen free (SPF) animals and single-nodal drug targeting, hindering progress.
- TBI pathophysiology involves complex systemic responses including neuroinflammation, sympathetic hyperactivity, and blood-brain barrier disruption.
Purpose of the Study:
- To review the history and systemic pathophysiology of TBI.
- To propose a novel 21st-century research strategy for TBI treatment.
- To identify new markers and system-acting drugs for TBI.
Main Methods:
- Review of existing TBI literature.
- Discussion of systemic pathophysiology and proposed research strategy.
- Development and preliminary testing of a novel fluid therapy (adenosine, lidocaine, magnesium - ALM).
Main Results:
- TBI progression involves widespread systemic dysfunction originating from primary impact signals.
- Early correction of sympathetic hyperactivity and immune cell activation may restore homeostasis and minimize secondary injury.
- The developed ALM fluid therapy demonstrated potential in blunting CNS stress, supporting cardiovascular function, and reducing secondary injury in preliminary studies.
Conclusions:
- A paradigm shift in TBI research is needed, moving beyond SPF animals and single-nodal targeting.
- A systems approach focusing on whole-body response and restoring homeostasis is crucial for developing effective TBI therapies.
- The novel ALM fluid therapy shows promise for treating TBI by addressing systemic dysfunctions and warrants further investigation for human translation.
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