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Coma, S.

Publications and source records attributed to Coma, S..

2 recordsLinked to original sources

Spatial modulation of RAF by RAF/MEK glue enables full-dose combination with pan-RAF inhibitor and potent RAS-mutant tumor-selective MAPK and growth inhibition

The clinical benefit of MAPK-targeted therapies depends on greater pathway inhibition in tumors than normal tissues. Although pan-RAF inhibitors are active in RAS-mutant cancers, combining them with MEK inhibitors requires dose reductions due to toxicity, limiting efficacy. We show the toxicity results from MEK inhibitor-mediated feedback relief, which promotes RAF activation and pan-RAF inhibitor engagement in normal cells, narrowing the therapeutic index. We further demonstrate that MEK is exclusively cytosolic, and RAF/MEK glues overcome this limitation through spatial trapping. By stabilizing cytosolic RAF-MEK complexes, RAF/MEK glues prevent feedback-driven RAF activation in normal cells while maintaining inhibition of oncogenic RAF signaling in RAS-mutant tumors, where RAF is constitutively activated at the plasma membrane. Consequently, this enables full-dose combination with pan-RAF inhibitors, resulting in deeper MAPK suppression and robust tumor regressions in RAS-mutant models. Thus, by spatially controlling wild-type effectors, drug-induced proximity can be harnessed to increase tumor selectivity of pathway-targeted therapies. SignificanceMAPK-targeted therapies rarely achieve durable responses in RAS-mutant cancers due to dose-limiting toxicities. We show that RAF/MEK glues, by spatially trapping RAF, can be combined with pan-RAF inhibitors at full dose, yielding tumor-selective MAPK inhibition and tumor regressions in RAS-mutant models. Thus, drug-induced proximity can be exploited for tumor-selective therapy.

cancer biology↗

A critical role of FAK signaling in Rac1-driven melanoma cell resistance to MAPK pathway inhibition

The Rac1 P29S hotspot mutation in cutaneous melanoma is associated with resistance to MAPK pathway inhibitors (MAPKi) and worse clinical outcomes. Moreover, activation of Rac1 guanine exchange factors (GEFs) also promotes MAPKi-resistance, particularly in undifferentiated melanoma cells. Here we delineate mechanisms of Rac1-driven MAPKi-resistance and identify strategies to inhibit the growth of this class of cutaneous melanomas. We find that Rac1-driven melanomas manifest pleiotropic resistance mechanisms including (i) reduced dependence on BRAF/MEK, (ii) activation of alternative MAPK pathways utilizing Jun kinase and p38 MAP kinase, and (iii) a partial reliance on YAP/TAZ signaling. Importantly, although Rac1-driven melanoma cells display reduced dependence on BRAF/MEK, they are not completely ERK-independent. Additionally, the presence of activated Rac1 appears to create a dependency on focal adhesion kinase (FAK) signaling in undifferentiated melanoma cells. Therefore, despite the pleiotropic mechanisms of Rac1-driven MAPKi resistance, we find that combined inhibition of RAF and MEK with the RAF/MEK clamp auvotometinib and FAK with the FAK inhibitor defactinib is a promising approach for suppressing the growth of Rac1-driven melanoma cells. Thus, the avutometinib plus defactinib combination, which is currently being investigated for brain metastatic cutaneous melanoma may also have utility against Rac1-driven MAPKi-resistance in heavily pre-treated, advanced disease.

cancer biology↗