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Induced clustering of SHP2-depleted tumor cells in vascular islands restores sensitivity to MEK/ERK inhibition
Yuyi Wang, Hidetaka Ohnuki, Andy D. Tran, Dunrui Wang, Taekyu Ha, Jing-Xin Feng, Minji Sim, Raymond Barnhill, Claire Lugassy, Michael R. Sargen, Emanuel Salazar-Cavazos, Michael Kruhlak, Giovanna Tosato
Yuyi Wang, Hidetaka Ohnuki, Andy D. Tran, Dunrui Wang, Taekyu Ha, Jing-Xin Feng, Minji Sim, Raymond Barnhill, Claire Lugassy, Michael R. Sargen, Emanuel Salazar-Cavazos, Michael Kruhlak, Giovanna Tosato
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Research Article Angiogenesis Oncology

Induced clustering of SHP2-depleted tumor cells in vascular islands restores sensitivity to MEK/ERK inhibition

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Abstract

Allosteric inhibitors of the tyrosine phosphatase Src homology 2 domain–containing protein tyrosine phosphatase 2 (SHP2) hold therapeutic promise in cancers with overactive RAS/ERK signaling, but adaptive resistance to SHP2 inhibitors may limit benefits. Here, we utilized tumor cells that proliferate similarly with or without endogenous SHP2 to explore means to overcome this growth independence from SHP2. We found that SHP2 depletion profoundly altered the output of vascular regulators, cytokines, chemokines, and other factors from SHP2 growth-resistant cancer cells. Tumors derived from inoculation of SHP2-depleted, but SHP2 growth–independent, mouse melanoma and colon carcinoma cell lines displayed a typically subverted architecture, in which proliferative tumor cells surrounding a remodeled vessel formed “vascular islands”, each limited by surrounding hypoxic and dead tumor tissue, where inflammatory blood cells were limited. Although vascular islands generally reflect protected sanctuaries for tumor cells, we found that vascular island–resident, highly proliferative, SHP2-depleted tumor cells acquired an increased sensitivity to blockage of MEK/ERK signaling, resulting in reduced tumor growth. Our results show that the response to targeted therapies in resistant tumor cells was controlled by tumor cell–induced vascular changes and tumor architectural reorganization, providing a compelling approach to elicit tumor responses by exploiting tumor- and endothelium-dependent biochemical changes.

Authors

Yuyi Wang, Hidetaka Ohnuki, Andy D. Tran, Dunrui Wang, Taekyu Ha, Jing-Xin Feng, Minji Sim, Raymond Barnhill, Claire Lugassy, Michael R. Sargen, Emanuel Salazar-Cavazos, Michael Kruhlak, Giovanna Tosato

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Figure 6

Effects of SHP2 depletion on angiogenesis regulatory proteins.

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Effects of SHP2 depletion on angiogenesis regulatory proteins.
(A) List ...
(A) List of proteins that differed by more than 20% in relative pixel intensity between SHP2-silenced and p-LKO B16F10 cells. Cell lysates (900 mg) were applied to the array. (B) List of proteins with reduced pixel intensity of greater than 20% in TNO155-treated relative to control B16F10 cells. (C) Venn diagram of protein distribution. Some (n = 18) proteins reduced by more than 20% by SHP2 silencing in B16F10 cells were also reduced by more than 20% by TNO155 treatment of B16F10 cells. (D) List of proteins reduced by more than 20% in SHP2-silenced B16F10 tumors compared with p-LKO tumors removed from mice 21 days after inoculation. Lysates (900 mg) from pools of 4 control and 4 SHP2-silenced tumors were applied to the array. (E and F) Venn diagrams of protein distribution. Some proteins reduced by more than 20% in SHP2-silenced B16F10 tumors compared with control were also reduced by more than 20% by SHP2 silencing (E) or TNO155 treatment (F) of B16F10 cells from culture. (G) Proteins reduced by more than 20% compared with controls in SHP2-silenced B16F10 cells, TNO155-treated B16F10 cells, and SHP2-silenced B16F10 tumors. (H) Proteins were selectively reduced by more than 20% in SHP2-silenced B16F10 tumors compared with the control, but not in B16F10 cells from culture (SHP2-silenced compared with control and TNO-treated compared with control).

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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