The goal of acute spinal cord injury (SCI) management is to reduce secondary injuries and improve neurological recovery after its occurrence. This review aimed to explore the literature regarding hemodynamic management to reduce ischemic secondary injury and improve neurologic outcome following acute SCI. The PubMed database was searched for studies investigating blood flow, mean arterial pressure (MAP), and spinal cord perfusion pressure after SCI. The 2013 guidelines of the American Association of Neurological Surgeons/Congress of Neurological Surgeons recommended maintaining MAP at 85–90 mmHg for 7 days after SCI to potentially improve outcome. However, this recommendation was based on weak evidence for neurologic benefit. The maintenance of MAP will typically require vasopressors, which may have their own set of complications. More recently, studies have suggested the potential importance of considering spinal cord perfusion pressure in addition to the MAP. Further research on the hemodynamic management of acute SCI is required to determine how to optimize neurologic recovery. Evidence-based guidelines for hemodynamic management should acknowledge the gaps in knowledge and the limitations of the current literature.
Cement-augmented fenestrated pedicle screw fixation is becoming more popular for osteoporotic patients. Although several reports have been published on leakage-related problems with bone cement, no cases of cardiac perforation after cement-augmented pedicle screw fixation have been reported. We present a case of cardiac perforation after cement-augmented fenestrated pedicle screw fixation. A 67-year-old female was admitted to our hospital with complaints of dyspnea and chest pain after lumbar surgery. She had been treated with L4–5 lumbar interbody fusion and percutaneous pedicle screw fixation with bone cement augmentation seven days earlier for degenerative spondylolisthesis. The right chest pain was observed a day after the surgery; she was treated conservatively but it did not improve for 7 days after surgery. Chest computed tomography (CT) revealed a hemothorax and a large sharp bone cement fragment that perforated the right atrium. Bone cement can be removed with thoracotomy surgery. We have to be aware of cement leakage through the normal venous drain system around the vertebral body. We also have to consider a detailed cardiac workup, which may include chest CT or echocardiography, if a patient complains of chest pain or dyspnea after cement augmentation.
Background and purpose The brain's cholinergic network has various interconnections with the cortical and subcortical structures. Disruption of cholinergic pathways by white matter hyperintensities (WMH) may cause pathologic changes within brain regions. Thus, WMH may represent an important pathological contributor to subcortical vascular cognitive impairment (scVCI). We aimed to investigate associations between the magnitude of WMH and volumetric changes in cortical and subcortical regions innervated by cholinergic neurons in patients with scVCI. Methods We enrolled patients with scVCI, defined as moderate to severe WMH or multiple (>2) lacunar infarcts outside the brainstem. Cholinergic Pathway HyperIntensities Scale (CHIPS) scores were used to quantify the magnitude of cholinergic pathway disruptions by WMH. We measured cortical thickness and subcortical volumes of 11 brain regions innervated by cholinergic neurons. Partial correlation of brain region volumes with total CHIPS scores was obtained using multiple linear regression. Results In total, 80 patients were enrolled. The mean age was 78.4 ± 6.5 years, median Mini‐Mental State Examination score was 17 (interquartile range, 13–20) and median CHIPS score was 11 (interquartile range, 7–17). CHIPS scores were positively correlated with subcortical volumes of the putamen (rʹ = 0.46, P = 0.002) and pallidum (rʹ = 0.45, P = 0.002), and were negatively associated with inferior temporal (rʹ = −0.35, P = 0.002) and medial orbitofrontal (rʹ = −0.32, P = 0.002) cortical thickness. Conclusion Our study suggested that WMH in cholinergic pathways may contribute to volumetric structural changes in cortical and subcortical structures innervated by cholinergic neurons.
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