Cortical spreading depolarizations induced by surgical field blood in a mouse model of neurosurgery

被引:2
|
作者
Srienc, Anja I. [1 ,2 ]
Chiang, Pei-Pei [1 ]
Schmitt, Abby J. [1 ]
Newman, Eric A. [1 ]
机构
[1] Univ Minnesota, Dept Neurosci, Minneapolis, MN USA
[2] Univ Minnesota, Med Scientist Training Program, Minneapolis, MN USA
基金
美国国家卫生研究院;
关键词
cortical spreading depolarization; CSD; electrocautery; GCaMP6f; mouse model; intraoperative bleeding; ketamine; vascular disorders; traumatic brain injury; DEPRESSION; HEMORRHAGE; GLUTAMATE; CLUSTERS;
D O I
10.3171/2018.12.JNS181130
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
OBJECTIVE Cortical spreading depolarization (CSD) has been linked to poor clinical outcomes in the setting of traumatic brain injury, malignant stroke, and subarachnoid hemorrhage. There is evidence that electrocautery during neurosurgical procedures can also evoke CSD waves in the brain. It is unknown whether blood contacting the cortical surface during surgical bleeding affects the frequency of spontaneous or surgery-induced CSDs. Using a mouse neurosurgical model, the authors tested the hypothesis that electrocautery can induce CSD waves and that surgical field blood (SFB) is associated with more CSDs. The authors also investigated whether CSD can be reliably observed by monitoring the fluorescence of GCaMP6f expressed in neurons. METHODS CSD waves were monitored by using confocal microscopy to detect fluorescence increases at the cortical surface in mice expressing GCaMP6f in CamKII-positive neurons. The cortical surface was electrocauterized through an adjacent burr hole. SFB was simulated by applying a drop of tail vein blood to the brain through the same burr hole. RESULTS CSD waves were readily detected in GCaMP6f-expressing mice. Monitoring GCaMP6f fluorescence provided far better sensitivity and spatial resolution than detecting CSD events by observing changes in the intrinsic optical signal (IOS). Forty-nine percent of the CSD waves identified by GCaMP6f had no corresponding IOS signal. Electrocautery evoked CSD waves. On average, 0.67 +/- 0.08 CSD events were generated per electrocautery episode, and multiple CSD waves could be induced in the same mouse by repeated cauterization (average, 7.9 +/- 1.3 events; maximum number in 1 animal, 13 events). In the presence of SFB, significantly more spontaneous CSDs were generated (1.35 +/- 0.37 vs 0.13 +/- 0.16 events per hour, p = 0.002). Ketamine effectively decreased the frequency of spontaneous CSD waves (1.35 +/- 0.37 to 0.36 +/- 0.15 CSD waves per hour, p = 0.016) and electrocautery-stimulated CSD waves (0.80 +/- 0.05 to 0.18 +/- 0.08 CSD waves per electrocautery, p = 0.00002). CONCLUSIONS CSD waves are detected with far greater sensitivity and fidelity by monitoring GCaMP6f signals in neurons than by monitoring IOSs. Electrocautery reliably evokes CSD waves, and the frequency of spontaneous CSD waves is increased when blood is applied to the cortical surface. These experimental conditions recapitulate common scenarios in the neurosurgical operating room. Ketamine, a clinically available pharmaceutical agent, can block stimulated and spontaneous CSDs. More research is required to understand the clinical importance of intraoperative CSD.
引用
收藏
页码:1820 / 1828
页数:9
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