Overcoming Physiologic Barriers to Cancer Treatment by Molecularly Targeting the Tumor Microenvironment
Преодоление физиологических барьеров при лечении рака посредством молекулярного воздействия на микроокружение опухоли
2006-02-01
SCID: 54.1/yza6xh4t
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carbonic anhydrase IXinterstitial fluid pressuretumor hypoxiatumor microenvironmentvascular endothelial growth factor
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Abstract (AI)
It is widely recognized that the vasculature of the tumor is inadequate to meet the demands of the growing mass. The malformed vasculature is at least in part responsible for regions of the tumor that are hypoxic, acidotic, and exposed to increased interstitial fluid pressure. These unique aspects of the tumor microenvironment have been shown to act as barriers to conventional chemotherapy or radiation-based therapies. It now seems that while the vasculature initiates these tumor-specific conditions, the cells within the tumor respond to these stresses and add to the unique solid tumor physiology. Gene expression changes have been reported in the tumor for vascular endothelial growth factor, carbonic anhydrase IX, and pyruvate dehydrogenase kinase 1. The activity of these gene products then influences the tumor physiology through alterations in vascular permeability and interstitial fluid pressure, extracellular acidosis, and mitochondrial oxygen consumption and hypoxia, respectively. Novel molecular strategies designed to interfere with the activities of these gene products are being devised as ways to overcome the physiologic barriers in the tumor to standard anticancer therapies.
Key Findings
1
Molecularly targeting these gene products is proposed as a strategy to alleviate tumor physiologic barriers and improve standard anticancer therapies.
2
Tumor cells respond to microenvironmental stress and actively reinforce abnormal solid-tumor physiology through altered gene expression.
3
Tumor vasculature is malformed and inadequate, generating hypoxia, extracellular acidosis, and elevated interstitial fluid pressure that impede chemotherapy and radiotherapy.
4
VEGF, carbonic anhydrase IX, and pyruvate dehydrogenase kinase 1 contribute respectively to vascular permeability and interstitial pressure, extracellular acidosis, and mitochondrial oxygen consumption and hypoxia.
Research Object
the solid tumor microenvironment, including its malformed vasculature and tumor cells
Research Subject
the molecular mechanisms by which tumor-specific physiology creates barriers to chemotherapy and radiation therapy, and strategies to overcome these barriers
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2006-02-01
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