Publications by authors named "C G Beckers"

Article Synopsis
  • Hypoxic tumors resist radiation due to low oxygen levels, which reduces the effectiveness of therapy; increasing oxygenation during treatment could enhance radiosensitivity.
  • Historical approaches to boost oxygen delivery to tumors have had limited success, but inhibiting cancer cell respiration may yield better results.
  • Research shows that the mitochondria-targeted antioxidant MitoQ can effectively radiosensitize breast tumors in mice, suggesting potential for its use alongside radiotherapy in clinical settings.
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Nanoparticle radioenhancement offers a promising strategy for augmenting radiotherapy by locally increasing radiation damage to tumor tissue. While past research has predominantly focused on nanomaterials with high atomic numbers, such as Au and HfO, recent work has revealed that their radioenhancement efficacy decreases considerably when using clinically relevant megavoltage X-rays as opposed to the orthovoltage X-rays typically employed in research settings. Here, radiocatalytically active Ti-based nanomaterials for clinical X-ray therapy settings are designed.

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Sepsis, marked by organ dysfunction, necessitates reliable biomarkers. Ribonuclease inhibitor 1 (RNH1), a ribonuclease (RNase) inhibitor, emerged as a potential biomarker for acute kidney injury and mortality in thoracoabdominal aortic aneurysm patients. Our study investigates RNH1 dynamics in sepsis, its links to mortality and organ dysfunction, and the interplay with RNase 1 and RNase 5.

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Background: Previous studies have shown cardiac abnormalities in acute liver injury, suggesting a potential role in the associated high mortality.

Methods: We designed an experimental study exploring the short-term effects of acute cholestasis-induced liver injury on cardiac function and structure in a rodent bile duct ligation (BDL) model to elucidate the potential interplay. Thirty-seven male rats were subjected to BDL surgery ( = 28) or served as sham-operated ( = 9) controls.

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Glutamate receptors at the postsynaptic side translate neurotransmitter release from presynapses into postsynaptic excitation. They play a role in many forms of synaptic plasticity, e.g.

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