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Preprint WatchStrongSeptember 27th, 2026

MYC-Hyperactivated Osteosarcoma Models Exhibit Resistance to Cabozantinib plus TIGIT Blockade

Kappa, S. S.; Patel, T.; Nirala, B.; Kurenbekova, L.; Shuck, R.; Yustein, J. T.

TIGIT checkpoint blockade added to cabozantinib improved tumor control and survival in p53-driven orthotopic osteosarcoma models but added no survival benefit over cabozantinib alone in MYC-hyperactivated models, where combination treatment instead raised TNF signaling, Cxcl5 and Ccr2 expression, and ECM remodeling pathways consistent with a therapy-induced stress-adapted resistant state.

Strong contradiction

4 prior failures

Three or more documented clinical failures match this mechanism, or a Phase 3 efficacy failure is on record.

This preclinical report points the same way as the Claidex record for TIGIT rather than against it. Four programs are on file: ociperlimab plus tislelizumab in first-line PD-L1 high NSCLC, where progression-free survival and response favored the combination and overall survival did not (ociperlimab-tigit-advantig-302-nsclc-class-failure), tiragolumab plus atezolizumab in adjuvant resected NSCLC, terminated after efficacy favored the control arm (tiragolumab-tigit-adjuvant-nsclc-phase3-class-efficacy-failure), the vibostolimab and favezelimab coformulation cohort of KEYNOTE-057 in BCG-unresponsive bladder cancer, closed on portfolio grounds (vibostolimab-favezelimab-tigit-bcg-unresponsive-nmibc-keynote-057-phase2-strategic-termination), and KEYVIBE-010 in adjuvant melanoma, stopped after adding vibostolimab nearly doubled discontinuation of all adjuvant therapy (vibostolimab-pembrolizumab-tigit-adjuvant-melanoma-keyvibe-010-phase3-safety-termination). The preprint adds a mechanistic candidate for why anti-TIGIT keeps adding little to a working backbone: in the MYC-hyperactivated context the combination recruited myeloid cells and remodeled matrix rather than sustaining an anti-tumor immune response. Any new anti-TIGIT program should state upfront which tumor-intrinsic context it expects to benefit, because the clinical record gives no unselected population in which the class has worked.

Abstract excerpt

Background: Relapsed and refractory osteosarcoma (OS) remains a major therapeutic challenge, with fewer than 20% of patients surviving beyond 3 years. Increasing evidence indicates that MYC amplification/overexpression is associated with inferior survival. Small molecule inhibitors and immunotherapies have limited single-agent efficacy in pediatric solid tumors. Using syngeneic cell lines derived from p53-driven and MYC-hyperactivated genetically engineered mouse models (GEMMs) of OS, we tested cabozantinib, a multi-tyrosine kinase inhibitor with immunomodulatory properties, with TIGIT immune checkpoint blockade and investigated mechanisms underlying therapeutic response and resistance. Methods: In vitro cabozantinib sensitivity was established in GEMM-derived cell lines. Mice bearing tibial tumors were randomized to vehicle control, cabozantinib, anti-TIGIT antibody, or combination therapy, and tumor growth and survival assessed after a 3-week treatment period. Temporal RNA sequencing was performed at early (8-15 days) and late (18-24 days) time points to characterize transcriptomic changes associated with efficacy. Results: MYC-hyperactivated cell lines were more resistant to cabozantinib in vitro than p53-driven lines (mean IC50 5.51 vs 0.65 mciroM, p=0.0016). In p53-driven orthotopic models, combination therapy significantly decreased tumor growth and improved survival compared to solvent and cabozantinib alone, while in MYC-hyperactivated models cabozantinib-containing regimens delayed tumor progression relative to control or anti-TIGIT monotherapy, however the addition of anti-TIGIT did not significantly improve survival over cabozantinib alone. Temporal transcriptomics revealed upregulated anti-tumor immune-response pathways and decreased M2 macrophages only with combination treatment in the p53-driven model. In contrast, combination-treated MYC-hyperactivated models demonstrated increased TNF signaling and elevated Cxcl5 and Ccr2 expression, indicative of increased myeloid cell recruitment, and upregulation of extracellular matrix (ECM) remodeling pathways suggest a therapy-induced stress adapted state that propagates treatment resistance over time. Conclusion: New therapies are needed for patients with relapse or refractory OS. By targeting tumor-intrinsic resistance mechanisms and modulating the tumor microenvironment using cabozantinib and anti-TIGIT therapy, improved tumor control and survival was achieved in p53-driven orthotopic OS models. MYC-hyperactivated models were able to overcome therapeutic pressure and employ myeloid recruitment and ECM remodeling programs to achieve treatment resistance. Targeting of these programs should be considered in future studies investigating therapeutic strategies in relapsed and refractory OS.

Matching Claidex post-mortems

4 of 4 indexed

This is an automated contradiction flag, not an editorial judgment on the preprint's quality. Flags identify where the preclinical literature and the clinical failure record diverge.