Oxygen availability and spreading depolarizations provide complementary prognostic information in neuromonitoring of aneurysmal subarachnoid hemorrhage patients

Author:

Winkler Maren KL1,Dengler Nora2,Hecht Nils2,Hartings Jed A3,Kang Eun J14,Major Sebastian145,Martus Peter6,Vajkoczy Peter2,Woitzik Johannes2,Dreier Jens P145

Affiliation:

1. Center for Stroke Research Berlin, Charité University Medicine Berlin, Berlin, Germany

2. Department of Neurosurgery, Charité University Medicine Berlin, Berlin, Germany

3. Department of Neurosurgery, University of Cincinnati, Cincinnati, OH, USA

4. Department of Experimental Neurology, Charité University Medicine Berlin, Berlin, Germany

5. Department of Neurology, Charité University Medicine Berlin, Berlin, Germany

6. Institute for Clinical Epidemiology and Applied Biometry, University of Tübingen, Tübingen, Germany

Abstract

Multimodal neuromonitoring in neurocritical care increasingly includes electrocorticography to measure epileptic events and spreading depolarizations. Spreading depolarization causes spreading depression of activity (=isoelectricity) in electrically active tissue. If the depression is long-lasting, further spreading depolarizations occur in still isoelectric tissue where no activity can be suppressed. Such spreading depolarizations are termed isoelectric and are assumed to indicate energy compromise. However, experimental and clinical recordings suggest that long-lasting spreading depolarization-induced depression and isoelectric spreading depolarizations are often recorded outside of the actual ischemic zones, allowing the remote diagnosis of delayed cerebral ischemia after aneurysmal subarachnoid hemorrhage. Here, we analyzed simultaneous electrocorticography and tissue partial pressure of oxygen recording in 33 aneurysmal subarachnoid hemorrhage patients. Multiple regression showed that both peak total depression duration per recording day and mean baseline tissue partial pressure of oxygen were independent predictors of outcome. Moreover, tissue partial pressure of oxygen preceding spreading depolarization was similar and differences in tissue partial pressure of oxygen responses to spreading depolarization were only subtle between isoelectric spreading depolarizations and spreading depressions. This further supports that, similar to clustering of spreading depolarizations, long spreading depolarization-induced periods of isoelectricity are useful to detect energy compromise remotely, which is valuable because the exact location of future developing pathology is unknown at the time when the neurosurgeon implants recording devices.

Publisher

SAGE Publications

Subject

Cardiology and Cardiovascular Medicine,Clinical Neurology,Neurology

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