4.8 Article

Causes, consequences, and remedies for growth-induced solid stress in murine and human tumors

Publisher

NATL ACAD SCIENCES
DOI: 10.1073/pnas.1213353109

Keywords

tumor microenvironment; desmoplastic tumors; pancreatic ductal adenocarcinoma; mathematical modeling; sonic hedgehog pathway

Funding

  1. Dyax
  2. MedImmune
  3. Roche
  4. Enlight
  5. Noxxon
  6. SynDevRx
  7. XTuit
  8. FP7 Marie-Curie IRG Grant [PIRG08-GA-2010-276894]
  9. National Institutes of Health [P01CA080124, R01CA126642]
  10. Department of Defense Breast Cancer Research Innovator Award [W81XWH-10-1-0016]

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The presence of growth-induced solid stresses in tumors has been suspected for some time, but these stresses were largely estimated using mathematical models. Solid stresses can deform the surrounding tissues and compress intratumoral lymphatic and blood vessels. Compression of lymphatic vessels elevates interstitial fluid pressure, whereas compression of blood vessels reduces blood flow. Reduced blood flow, in turn, leads to hypoxia, which promotes tumor progression, immunosuppression, inflammation, invasion, and metastasis and lowers the efficacy of chemo-, radio-, and immunotherapies. Thus, strategies designed to alleviate solid stress have the potential to improve cancer treatment. However, a lack of methods for measuring solid stress has hindered the development of solid stress-alleviating drugs. Here, we present a simple technique to estimate the growth-induced solid stress accumulated within animal and human tumors, and we show that this stress can be reduced by depleting cancer cells, fibroblasts, collagen, and/or hyaluronan, resulting in improved tumor perfusion. Furthermore, we show that therapeutic depletion of carcinoma-associated fibroblasts with an inhibitor of the sonic hedgehog pathway reduces solid stress, decompresses blood and lymphatic vessels, and increases perfusion. In addition to providing insights into the mechanopathology of tumors, our approach can serve as a rapid screen for stress-reducing and perfusion-enhancing drugs.

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