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Intratumoral oxygen gradients mediate sarcoma cell invasion.

Publication ,  Journal Article
Lewis, DM; Park, KM; Tang, V; Xu, Y; Pak, K; Eisinger-Mathason, TSK; Simon, MC; Gerecht, S
Published in: Proceedings of the National Academy of Sciences of the United States of America
August 2016

Hypoxia is a critical factor in the progression and metastasis of many cancers, including soft tissue sarcomas. Frequently, oxygen (O2) gradients develop in tumors as they grow beyond their vascular supply, leading to heterogeneous areas of O2 depletion. Here, we report the impact of hypoxic O2 gradients on sarcoma cell invasion and migration. O2 gradient measurements showed that large sarcoma mouse tumors (>300 mm(3)) contain a severely hypoxic core [≤0.1% partial pressure of O2 (pO2)] whereas smaller tumors possessed hypoxic gradients throughout the tumor mass (0.1-6% pO2). To analyze tumor invasion, we used O2-controllable hydrogels to recreate the physiopathological O2 levels in vitro. Small tumor grafts encapsulated in the hydrogels revealed increased invasion that was both faster and extended over a longer distance in the hypoxic hydrogels compared with nonhypoxic hydrogels. To model the effect of the O2 gradient accurately, we examined individual sarcoma cells embedded in the O2-controllable hydrogel. We observed that hypoxic gradients guide sarcoma cell motility and matrix remodeling through hypoxia-inducible factor-1α (HIF-1α) activation. We further found that in the hypoxic gradient, individual cells migrate more quickly, across longer distances, and in the direction of increasing O2 tension. Treatment with minoxidil, an inhibitor of hypoxia-induced sarcoma metastasis, abrogated cell migration and matrix remodeling in the hypoxic gradient. Overall, we show that O2 acts as a 3D physicotactic agent during sarcoma tumor invasion and propose the O2-controllable hydrogels as a predictive system to study early stages of the metastatic process and therapeutic targets.

Duke Scholars

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Published In

Proceedings of the National Academy of Sciences of the United States of America

DOI

EISSN

1091-6490

ISSN

0027-8424

Publication Date

August 2016

Volume

113

Issue

33

Start / End Page

9292 / 9297

Related Subject Headings

  • Sarcoma
  • Oxygen
  • Neoplasm Invasiveness
  • Minoxidil
  • Mice
  • Hydrogels
  • Cell Movement
  • Cell Hypoxia
  • Animals
 

Citation

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Lewis, D. M., Park, K. M., Tang, V., Xu, Y., Pak, K., Eisinger-Mathason, T. S. K., … Gerecht, S. (2016). Intratumoral oxygen gradients mediate sarcoma cell invasion. Proceedings of the National Academy of Sciences of the United States of America, 113(33), 9292–9297. https://doi.org/10.1073/pnas.1605317113
Lewis, Daniel M., Kyung Min Park, Vitor Tang, Yu Xu, Koreana Pak, TS Karin Eisinger-Mathason, M Celeste Simon, and Sharon Gerecht. “Intratumoral oxygen gradients mediate sarcoma cell invasion.Proceedings of the National Academy of Sciences of the United States of America 113, no. 33 (August 2016): 9292–97. https://doi.org/10.1073/pnas.1605317113.
Lewis DM, Park KM, Tang V, Xu Y, Pak K, Eisinger-Mathason TSK, et al. Intratumoral oxygen gradients mediate sarcoma cell invasion. Proceedings of the National Academy of Sciences of the United States of America. 2016 Aug;113(33):9292–7.
Lewis, Daniel M., et al. “Intratumoral oxygen gradients mediate sarcoma cell invasion.Proceedings of the National Academy of Sciences of the United States of America, vol. 113, no. 33, Aug. 2016, pp. 9292–97. Epmc, doi:10.1073/pnas.1605317113.
Lewis DM, Park KM, Tang V, Xu Y, Pak K, Eisinger-Mathason TSK, Simon MC, Gerecht S. Intratumoral oxygen gradients mediate sarcoma cell invasion. Proceedings of the National Academy of Sciences of the United States of America. 2016 Aug;113(33):9292–9297.
Journal cover image

Published In

Proceedings of the National Academy of Sciences of the United States of America

DOI

EISSN

1091-6490

ISSN

0027-8424

Publication Date

August 2016

Volume

113

Issue

33

Start / End Page

9292 / 9297

Related Subject Headings

  • Sarcoma
  • Oxygen
  • Neoplasm Invasiveness
  • Minoxidil
  • Mice
  • Hydrogels
  • Cell Movement
  • Cell Hypoxia
  • Animals