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Kazumasa, H.

Publications and source records attributed to Kazumasa, H..

2 recordsLinked to original sources

Improved Tumor Blood Flow Enhances the Abscopal Effect: Preclinical Assessment in Mice Treated with Combined Radiation and PD-1 Blockade Therapy

The abscopal effect, where localized radiation therapy induces regression of distant metastatic lesions through immune activation, shows promise for treating metastatic cancer but occurs inconsistently. Here we demonstrate that tumor perfusion critically influences systemic immune responses to combination therapy with radiation and PD-1 blockade. Using multimodal imaging including DCE-MRI, EPR oximetry, and hyperpolarized 13C-MRI, we show that successful abscopal responses in MC38 tumors are characterized by enhanced perfusion, reduced hypoxia, decreased cellularity, and lower glycolytic activity in remote tumors. Notably, pre-treatment perfusion metrics (AUC1min) and extracellular volume (AUC10min) in primary tumors predict subsequent growth of remote tumors, while the same measurements in remote tumors lack predictive value. Based on these findings, we enhanced the abscopal effect by exposing mice to carbogen (95% O2 + 5% CO2) during radiation therapy. Carbogen exposure increased tumor perfusion by 71% (AUC1min) and significantly improved systemic responses in the checkpoint blockade responsive MC38 model but not in the poorly responsive B16.F10 tumors. The enhanced response correlated with increased activation of CD8+ T cells in tumor-draining lymph nodes and elevated serum HMGB-1 levels. RNA sequencing revealed significant extracellular matrix remodeling in carbogen-treated tumors. These results establish tumor perfusion as both a predictive biomarker and a modifiable determinant of systemic immune responses, suggesting that perfusion-based patient stratification and vascular modification strategies could improve outcomes in combination immunotherapy and radiation treatment.

cancer biology↗

Low Field Magnetic Resonance Imaging to Detect Acute Kidney Injury

Renal oxygenation is essential for maintaining kidney function. Disruptions in oxygen delivery can lead to renal hypoxia, which can exacerbate kidney injury through multiple pathways, including inflammation, oxidative stress, and ischemia-reperfusion injury. Despite the recognized importance of oxygenation in renal pathology, non-invasive and reliable methods for assessing kidney oxygen levels are limited. Current techniques either lack sensitivity or involve invasive procedures, restricting their use in routine monitoring. Therefore, there is a pressing need for innovative approaches to assess renal oxygenation, particularly in kidney injury. This study evaluated Electron Paramagnetic Resonance (EPR)-based oxygen imaging using the paramagnetic tracer Ox071 to assess kidney oxygen levels in mice with cyclophosphamide-induced kidney injury. Urine pO2 was also assessed as a potential surrogate marker. EPR oximetry accurately measured kidney oxygen distribution, revealing a temporary increase in pO2 post-injury. Urine oximetry, however, did not reliably reflect changes in kidney oxygenation. Furthermore, EPR oximetry provided high-resolution spatial mapping of oxygen levels within the kidney, allowing for a detailed understanding of the impact of hypoxia on renal tissue. EPR oximetry is a promising, non-invasive tool for monitoring renal oxygenation, offering high-resolution mapping and longitudinal assessment. Its ability to provide detailed information about oxygen distribution within the kidney makes it a valuable tool for studying the pathophysiology of renal diseases and for developing novel therapeutic strategies. Translational Statement: Quantitative spatially resolved measurement of renal oxygenation has the potential to guide clinical decision making in renal disorders such as acute kidney injury. In this study we demonstrate the utility of electron paramagnetic resonance imaging to provide non-invasive and quantitative high-resolution mapping of kidney oxygen concentrations.

physiology↗