Command Palette

Search for a command to run...

Preprint WatchStrongAugust 27th, 2026

VEGFR-2 Phosphorylation at Y1054 or Y1214 is Necessary for Mechanically-Induced Angiogenesis

Johnson B, McKinley T, Nguyen T, Beasley-Duncan E, Gridhar T, Sewell-Loftin MK.

VEGFR-2 phosphorylation at Y1054 or at Y1214 is each independently necessary for endothelial cell angiogenesis in response to mechanical strain, so cancer-associated fibroblast contractility can drive vessel growth through VEGFR-2 by a route that ligand-directed anti-angiogenic therapy does not address.

Strong contradiction

3 prior failures

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

The Claidex graph holds three KDR failures, two of them efficacy failures. LEAP-014 added lenvatinib to pembrolizumab plus chemotherapy in metastatic esophageal squamous cell carcinoma and raised response rate while missing both primary endpoints (lenvatinib-kdr-vegfr2-metastatic-escc-leap-014-phase3-survival-failure). Lenvatinib plus pembrolizumab failed in melanoma brain metastases (lenvatinib-pembrolizumab-kdr-melanoma-brain-metastases-phase2-efficacy-failure), and rivoceranib in adenoid cystic carcinoma was closed by the sponsor (rivoceranib-kdr-vegfr2-adenoid-cystic-carcinoma-rm-202-phase2-strategic-termination). This preprint is basic vascular mechanobiology rather than a therapeutic claim, and it does not test any of the failed regimens. It matters here because it proposes a mechanical route to VEGFR-2 activation driven by cancer-associated fibroblast contractility, which if correct describes a source of angiogenic signalling that ligand-blocking and kinase-inhibiting agents were never designed to interrupt. Any programme reading this as support for a new VEGFR-2 bet should note that the flag is raised on the failure record, not on the preprint's quality, and that the paper offers a candidate explanation for the record rather than a way around it.

Abstract excerpt

Anti-angiogenic cancer therapies attempt to withhold necessary nutrients and oxygen from growing tumors by targeting the major promoters of endothelial cell (EC) angiogenesis: vascular endothelial growth factor (VEGF) and VEGF receptor 2 (VEGFR-2). Unfortunately, these treatments are often insufficient, even when coupled with chemotherapies, and fail to significantly increase survival rates. The tumor microenvironment (TME) is mechanically distinct compared to normal tissue, including increased matrix deformations or strains caused by cancer-associated fibroblasts (CAFs). In this report, we detail the specific and independent roles of two tyrosine residues, Y1054 and Y1214, on mechanical activation of VEGFR-2. Furthermore, we characterize CAF biochemical and mechanical signaling and demonstrate how ECs exhibit decreased vessel growth when co-cultured with CAFs and treated with a contractility inhibitor. Using non-phosphorylatable VEGFR-2 mutants, we reveal Y1054 and Y1214 are each necessary for EC angiogenesis, particularly in response to strain. Overall, this research highlights the need to study how mechanics in the TME promote vessel growth and thus tumor progression, which is important to consider when developing future anti-angiogenic therapies.

Matching Claidex post-mortems

3 of 3 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.