Concussion, microvascular injury, and early tauopathy in young athletes after impact head injury and an impact concussion mouse model.
Concussion, microvascular injury, and early tauopathy in young athletes after impact head injury and an impact concussion mouse model.
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DOI:
10.1093/brain/awx350
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发表时间:
2018-02-01
期刊:
影响因子:
--
通讯作者:
Goldstein LE
中科院分区:
文献类型:
--
作者:
Tagge CA;Fisher AM;Minaeva OV;Gaudreau-Balderrama A;Moncaster JA;Zhang XL;Wojnarowicz MW;Casey N;Lu H;Kokiko-Cochran ON;Saman S;Ericsson M;Onos KD;Veksler R;Senatorov VV Jr;Kondo A;Zhou XZ;Miry O;Vose LR;Gopaul KR;Upreti C;Nowinski CJ;Cantu RC;Alvarez VE;Hildebrandt AM;Franz ES;Konrad J;Hamilton JA;Hua N;Tripodis Y;Anderson AT;Howell GR;Kaufer D;Hall GF;Lu KP;Ransohoff RM;Cleveland RO;Kowall NW;Stein TD;Lamb BT;Huber BR;Moss WC;Friedman A;Stanton PK;McKee AC;Goldstein LE
The mechanisms underpinning concussion, traumatic brain injury (TBI) and chronic traumatic encephalopathy (CTE) are poorly understood. Using neuropathological analyses of brains from teenage athletes, a new mouse model of concussive impact injury, and computational simulations, Tagge et al. show that head injuries can induce TBI and early CTE pathologies independent of concussion. The mechanisms underpinning concussion, traumatic brain injury, and chronic traumatic encephalopathy, and the relationships between these disorders, are poorly understood. We examined post-mortem brains from teenage athletes in the acute-subacute period after mild closed-head impact injury and found astrocytosis, myelinated axonopathy, microvascular injury, perivascular neuroinflammation, and phosphorylated tau protein pathology. To investigate causal mechanisms, we developed a mouse model of lateral closed-head impact injury that uses momentum transfer to induce traumatic head acceleration. Unanaesthetized mice subjected to unilateral impact exhibited abrupt onset, transient course, and rapid resolution of a concussion-like syndrome characterized by altered arousal, contralateral hemiparesis, truncal ataxia, locomotor and balance impairments, and neurobehavioural deficits. Experimental impact injury was associated with axonopathy, blood–brain barrier disruption, astrocytosis, microgliosis (with activation of triggering receptor expressed on myeloid cells, TREM2), monocyte infiltration, and phosphorylated tauopathy in cerebral cortex ipsilateral and subjacent to impact. Phosphorylated tauopathy was detected in ipsilateral axons by 24 h, bilateral axons and soma by 2 weeks, and distant cortex bilaterally at 5.5 months post-injury. Impact pathologies co-localized with serum albumin extravasation in the brain that was diagnostically detectable in living mice by dynamic contrast-enhanced MRI. These pathologies were also accompanied by early, persistent, and bilateral impairment in axonal conduction velocity in the hippocampus and defective long-term potentiation of synaptic neurotransmission in the medial prefrontal cortex, brain regions distant from acute brain injury. Surprisingly, acute neurobehavioural deficits at the time of injury did not correlate with blood–brain barrier disruption, microgliosis, neuroinflammation, phosphorylated tauopathy, or electrophysiological dysfunction. Furthermore, concussion-like deficits were observed after impact injury, but not after blast exposure under experimental conditions matched for head kinematics. Computational modelling showed that impact injury generated focal point loading on the head and seven-fold greater peak shear stress in the brain compared to blast exposure. Moreover, intracerebral shear stress peaked before onset of gross head motion. By comparison, blast induced distributed force loading on the head and diffuse, lower magnitude shear stress in the brain. We conclude that force loading mechanics at the time of injury shape acute neurobehavioural responses, structural brain damage, and neuropathological sequelae triggered by neurotrauma. These results indicate that closed-head impact injuries, independent of concussive signs, can induce traumatic brain injury as well as early pathologies and functional sequelae associated with chronic traumatic encephalopathy. These results also shed light on the origins of concussion and relationship to traumatic brain injury and its aftermath.
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影响因子:
16.2
作者:
Bhaskar, Kiran;Konerth, Megan;Kokiko-Cochran, Olga N.;Cardona, Astrid;Ransohoff, Richard M.;Lamb, Bruce T.
通讯作者:
Lamb, Bruce T.
影响因子:
6.8
作者:
Alosco ML;Kasimis AB;Stamm JM;Chua AS;Baugh CM;Daneshvar DH;Robbins CA;Mariani M;Hayden J;Conneely S;Au R;Torres A;McClean MD;McKee AC;Cantu RC;Mez J;Nowinski CJ;Martin BM;Chaisson CE;Tripodis Y;Stern RA
通讯作者:
Stern RA
影响因子:
25
作者:
Asai H;Ikezu S;Tsunoda S;Medalla M;Luebke J;Haydar T;Wolozin B;Butovsky O;Kügler S;Ikezu T
通讯作者:
Ikezu T
DOI:
10.1249/mss.0b013e3181dd9156
发表时间:
2010-11-01
期刊:
MEDICINE AND SCIENCE IN SPORTS AND EXERCISE
影响因子:
--
作者:
Broglio, Steven P.;Schnebel, Brock;Zimmerman, Jerrad
通讯作者:
Zimmerman, Jerrad
影响因子:
3.4
作者:
Counotte, Danielle S.;Li, Ka Wan;Spijker, Sabine
通讯作者:
Spijker, Sabine