The biomechanical signature of loss of consciousness: computational modelling of elite athlete head injuries
Биомеханический профиль потери сознания: вычислительное моделирование травм головы у спортсменов элитного уровня
2022-12-22
SCID: 54.1/jy6n6zhu
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American football impactsbrain strain ratefinite element brain modelhead injury biomechanicsloss of consciousness
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Abstract (AI)
Sports related head injuries can cause transient neurological events including loss of consciousness and dystonic posturing. However, it is unknown why head impacts that appear similar produce distinct neurological effects. The biomechanical effect of impacts can be estimated using computational models of strain within the brain. Here, we investigate the strain and strain rates produced by professional American football impacts that led to loss of consciousness, posturing or no neurological signs. We reviewed 1280 National Football League American football games and selected cases where the team's medical personnel made a diagnosis of concussion. Videos were then analysed for signs of neurological events. We identified 20 head impacts that showed clear video signs of loss of consciousness and 21 showing clear abnormal posturing. Forty-one control impacts were selected where there was no observable evidence of neurological signs, resulting in 82 videos of impacts for analysis. Video analysis was used to guide physical reconstructions of these impacts, allowing us to estimate the impact kinematics. These were then used as input to a detailed 3D high-fidelity finite element model of brain injury biomechanics to estimate strain and strain rate within the brain. We tested the hypotheses that impacts producing loss of consciousness would be associated with the highest biomechanical forces, that loss of consciousness would be associated with high forces in brainstem nuclei involved in arousal and that dystonic posturing would be associated with high forces in motor regions. Impacts leading to loss of consciousness compared to controls produced higher head acceleration (linear acceleration; 81.5 g ± 39.8 versus 47.9 ± 21.4; P = 0.004, rotational acceleration; 5.9 krad/s2 ± 2.4 versus 3.5 ± 1.6; P < 0.001) and in voxel-wise analysis produced larger brain deformation in many brain regions, including parts of the brainstem and cerebellum. Dystonic posturing was also associated with higher deformation compared to controls, with brain deformation observed in cortical regions that included the motor cortex. Loss of consciousness was specifically associated with higher strain rates in brainstem regions implicated in maintenance of consciousness, including following correction for the overall severity of impact. These included brainstem nuclei including the locus coeruleus, dorsal raphé and parabrachial complex. The results show that in head impacts producing loss of consciousness, brain deformation is disproportionately seen in brainstem regions containing nuclei involved in arousal, suggesting that head impacts produce loss of consciousness through a biomechanical effect on key brainstem nuclei involved in the maintenance of consciousness.
Key Findings
1
Finite-element modelling showed that loss-of-consciousness impacts produced greater brain deformation across multiple regions, including parts of the brainstem and cerebellum.
2
Impacts causing loss of consciousness had significantly greater linear acceleration than controls (81.5 ± 39.8 g versus 47.9 ± 21.4 g; P = 0.004).
3
Impacts causing loss of consciousness had significantly greater rotational acceleration than controls (5.9 ± 2.4 versus 3.5 ± 1.6 krad/s²; P < 0.001).
4
The study reconstructed 82 diagnosed concussion impacts from professional American football, including 20 with loss of consciousness, 21 with dystonic posturing, and 41 controls.
5
The study used video-guided impact reconstruction and detailed three-dimensional brain finite-element modelling to relate distinct neurological outcomes to regional brain strain and strain rate.
Research Object
Professional American football head impacts and the resulting brain tissue deformation
Research Subject
The biomechanical strain and strain-rate patterns associated with loss of consciousness, dystonic posturing, or no neurological signs
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2022-12-22
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