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A Neuroscientific Approach to the Examination of Concussions in Student-Athletes
Published on: December 8, 2014
The neuropathological basis of elevated serum neurofilament light following experimental concussion
John D Arena1, Douglas H Smith1, Ramon Diaz Arrastia2
1Department of Neurosurgery, Penn Center for Brain Injury and Repair, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA, 19104, USA.
Abstract:
Mild traumatic brain injury (mTBI) or concussion is a substantial health problem globally, with up to 15% of patients experiencing persisting symptoms that can significantly impact quality of life. Currently, the diagnosis of mTBI relies on clinical presentation with ancillary neuroimaging to exclude more severe forms of injury. However, identifying patients at risk for a poor outcome or protracted recovery is challenging, in part due to the lack of early objective tests that reflect the relevant underlying pathology. While the pathophysiology of mTBI is poorly understood, axonal damage caused by rotational forces is now recognized as an important consequence of injury. Moreover, serum measurement of the neurofilament light (NfL) protein has emerged as a potentially promising biomarker of injury. Understanding the pathological processes that determine serum NfL dynamics over time, and the ability of NfL to reflect underlying pathology will be critical for future clinical research aimed at reducing the burden of disability after mild TBI. Using a gyrencephalic model of head rotational acceleration scaled to human concussion, we demonstrate significant elevations in serum NfL, with a peak at 3 days post-injury. Moreover, increased serum NfL was detectable out to 2 weeks post-injury, with some evidence it follows a biphasic course. Subsequent quantitative histological examinations demonstrate that axonal pathology, including in the absence of neuronal somatic degeneration, was the likely source of elevated serum NfL. However, the extent of axonal pathology quantified via multiple markers did not correlate strongly with the extent of serum NfL. Interestingly, the extent of blood-brain barrier (BBB) permeability offered more robust correlations with serum NfL measured at multiple time points, suggesting BBB disruption is an important determinant of serum biomarker dynamics after mTBI. These data provide novel insights to the temporal course and pathological basis of serum NfL measurements that inform its utility as a biomarker in mTBI.
Insights
Mild traumatic brain injury (mTBI) can cause lasting symptoms. Serum neurofilament light (NfL) levels rise after concussion, with blood-brain barrier disruption influencing these changes, offering insights for better biomarker use.
Area of Science:
- Neuroscience
- Traumatic Brain Injury Research
- Biomarker Discovery
Background:
- Mild traumatic brain injury (mTBI) is a global health issue with persistent symptoms affecting quality of life.
- Current mTBI diagnosis relies on clinical presentation, lacking objective early tests for prognosis.
- Axonal damage is a key consequence of mTBI, and serum neurofilament light (NfL) is a potential biomarker.
Purpose of the Study:
- To investigate the temporal dynamics and pathological basis of serum NfL after mTBI.
- To explore the relationship between axonal pathology, blood-brain barrier (BBB) permeability, and serum NfL levels.
- To inform the utility of NfL as an early objective biomarker for mTBI recovery.
Main Methods:
- Utilized a gyrencephalic model of rotational acceleration simulating human concussion.
- Measured serum NfL levels at multiple time points post-injury.
- Performed quantitative histological examinations to assess axonal pathology and BBB integrity.
Main Results:
- Serum NfL significantly elevated, peaking at 3 days and detectable up to 2 weeks post-injury, potentially showing a biphasic course.
- Axonal pathology was identified as a source of elevated serum NfL, even without neuronal degeneration.
- Blood-brain barrier permeability correlated more strongly with serum NfL dynamics than axonal pathology extent.
Conclusions:
- Serum NfL shows dynamic changes post-mTBI, reflecting underlying pathology.
- Blood-brain barrier disruption is a critical factor in determining serum NfL levels after mTBI.
- These findings enhance understanding of NfL as a biomarker for mTBI, aiding in predicting recovery and guiding clinical research.

