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Updated: Sep 20, 2025

Measurement of Tissue Oxygenation Using Near-Infrared Spectroscopy in Patients Undergoing Hemodialysis
Published on: October 2, 2020
Changes in cerebral oxygenation during hemodialysis before and after carotid artery stenting
Hisashi Sato1, Susumu Ookawara2, Kiyonori Ito2
1Division of General Medicine, First Department of Integrated Medicine, Saitama Medical Center, Jichi Medical University, Saitama, Japan.
Insights
Carotid artery stenting normalized cerebral oxygenation during hemodialysis in a patient with severe stenosis. Monitoring regional cerebral oxygen saturation (rSO2) revealed altered blood flow distribution before stenting.
Area of Science:
- Neurology
- Nephrology
- Vascular Surgery
Background:
- End-stage renal failure patients undergoing hemodialysis (HD) may have comorbid carotid artery stenosis.
- Carotid artery stenting (CAS) is a procedure to treat significant carotid artery stenosis.
Observation:
- Regional cerebral oxygen saturation (rSO2) was monitored bilaterally during HD before and after CAS in a patient with 74% right internal carotid artery stenosis.
- Before CAS, right cerebral rSO2 was maintained, while left cerebral rSO2 increased during HD.
- After CAS, the difference in intradialytic rSO2 between the bilateral sides disappeared.
Findings:
- The intradialytic increase in left cerebral rSO2 before CAS may indicate compensatory increased cerebral blood flow.
- Preserved right cerebral rSO2 before CAS might be due to collateral circulation via the circle of Willis.
- CAS resolved the asymmetric intradialytic cerebral oxygenation changes.
Implications:
- Cerebral oxygenation monitoring during HD can reveal intradialytic cerebral blood flow redistribution in patients with carotid artery stenosis.
- CAS may improve intradialytic cerebral hemodynamics in patients with significant carotid artery stenosis.
- Understanding these hemodynamic changes is crucial for managing patients with combined renal failure and cerebrovascular disease.
Abstract:
A 68-year-old man received hemodialysis (HD) for the treatment of end-stage renal failure for 6 years. Five years prior to carotid artery stenting (CAS), a neck ultrasound performed to screen for carotid atherosclerosis revealed an asymptomatic right internal carotid artery stenosis. One month prior, the stenotic lesion progressed to 74% by cerebral angiography; therefore, CAS was performed. To evaluate the influence of right internal carotid artery stenosis on the intradialytic cerebral circulation and oxygenation, cerebral regional oxygen saturation (rSO2) at bilateral forehead was measured using the INVOS 5100c oxygen saturation monitor (Covidien Japan, Japan) during HD before and after CAS. Before CAS, right cerebral rSO2 was maintained during HD, whereas left cerebral rSO2 gradually increased from the initiation to end of HD. However, the differences of intradialytic cerebral rSO2 changes between bilateral sides disappeared after CAS. In the present case, before CAS, the intradialytic increase in left cerebral rSO2 might reflect the increase in the left cerebral blood flow to compensate for the ultrafiltration-associated decreases in the right cerebral blood flow and perfusion pressure. Furthermore, the preserved right cerebral rSO2 before CAS might reflect the mechanism maintaining the right cerebral blood flow from the collateralized circle of Willis during HD. Throughout our experience, cerebral oxygenation monitoring during HD might disclose intradialytic changes in cerebral blood flow distribution between the ipsilateral and contralateral side in HD patients with carotid artery stenosis.
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