In spite of anatomic proximity of the facial skeleton and cranium, there is lack of information in the literature regarding the relationship between facial and brain injuries. This study aims to correlate brain injuries with facial injuries using finite element method (FEM). Nine common impact scenarios of facial injuries are simulated with their individual stress wave propagation paths in the facial skeleton and the intracranial brain. Fractures of cranio-facial bones and intracranial injuries are evaluated based on the tolerance limits of the biomechanical parameters. General trend of maximum intracranial biomechanical parameters found in nasal bone and zygomaticomaxillary impacts indicates that severity of brain injury is highly associated with the proximity of location of impact to the brain. It is hypothesized that the midface is capable of absorbing considerable energy and protecting the brain from impact. The nasal cartilages dissipate the impact energy in the form of large scale deformation and fracture, with the vomer-ethmoid diverging stress to the "crumpling zone" of air-filled sphenoid and ethmoidal sinuses; in its most natural manner, the face protects the brain. This numerical study hopes to provide surgeons some insight in what possible brain injuries to be expected in various scenarios of facial trauma and to help in better diagnosis of unsuspected brain injury, thereby resulting in decreasing the morbidity and mortality associated with facial trauma.
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http://dx.doi.org/10.1016/j.aap.2015.03.012 | DOI Listing |
Neurosurgery
September 2024
Department of Neurosurgery, Clinical Neurosciences Center, University of Utah, Salt Lake City, Utah, USA.
Background And Objectives: Historically, Indigenous American (IA) populations have faced barriers to adequate health care. Although IA people experience higher rates of traumatic brain injury-related mortality than other racial groups in the United States, attributes of their neurosurgical care have not been evaluated. We demonstrate and compare care patterns and outcomes in IA and non-IA adults with acute neurosurgical injuries and identify disparities limiting access to medical care.
View Article and Find Full Text PDFCan Med Educ J
December 2024
Department of Physical Medicine and Rehabilitation, Queen's University, Ontario, Canada.
Background: Resident-focused curricula that support competency acquisition in concussion care are currently lacking. We sought to fill this gap by developing and evaluating Spiral Integrated Curricula (SIC) using the cognitive constructivism paradigm and the Utilization-Focused Evaluation (UFE) framework. The evidence-based curricula consisted of academic half-days (AHDs) and clinics for first- and second-year family medicine residents.
View Article and Find Full Text PDFBMJ Open
December 2024
Centre for Rehabilitation and Ageing Research, University of Nottingham, Nottingham, UK.
Objective: To codesign and develop an intervention to promote participation and well-being in children and young people (CYP) with acquired brain injury (ABI) and family caregivers.
Design: A complex intervention development study including a scoping review, mixed-methods study, co-design workshop and theoretical modelling.
Setting: Community-dwelling participants in one geographical region of the UK.
BMJ Open
December 2024
Regional Rehabilitation Unit, Northwick Park Hospital, London, UK.
Objectives: To adapt and apply a model for evaluating the functional benefits and cost efficiency of specialist inpatient rehabilitation to the Australian context, comparing functional outcomes and savings in the cost of ongoing care after acquired brain injury.
Design: An observational cohort analysis of prospectively collected clinical data from admission to discharge, with follow-up to 3 years.
Setting: A newly established state-wide inpatient postacute rehabilitation unit in Victoria, Australia for patients with moderate to severe acquired brain injury.
Neurosurg Rev
January 2025
Department of Neurosurgery, Policlinico Umberto I, Sapienza University of Rome, Rome, Italy.
To explore temporal dynamics of cerebral herniation through the calvarial defect after decompressive craniectomy. To investigate patterns of hemispheric asymmetry in ischemic stroke and traumatic brain injury after decompressive craniectomy.To assess clinical implications of hemispheric asymmetry evaluation in order to minimize cranioplasty complications.
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