Non-kinase Orchestrated VEGFR2-ERK Signaling is a Dependency and Pharmacological Target for Antiangiogenic

Wengui Shi1, Zhijian Ma2, Qiaoyan Wang1

  • 1Lanzhou University Second Hospital Lanzhou China.

Cancer Research
|July 23, 2026
PubMed

Insights

Researchers discovered a new non-kinase pathway involving SHC-SHCBP1 that drives tumor angiogenesis. Inhibiting this pathway improves vascular normalization and enhances antiangiogenic immunotherapy efficacy in preclinical models.

Area of Science:

  • Oncology
  • Molecular Biology
  • Immunotherapy

Background:

  • Antiangiogenic immunotherapy shows promise but is limited by poor vascular normalization.
  • Canonical VEGFR-ERK signaling is key in angiogenesis, but non-kinase components are overlooked.
  • Tumor angiogenesis and immunosuppression hinder effective cancer treatment.

Purpose of the Study:

  • To identify non-kinase regulators of VEGFR2-ERK signaling in tumor angiogenesis.
  • To investigate the role of the SHC-SHCBP1 complex in regulating angiogenesis.
  • To develop novel therapeutic strategies for antiangiogenic immunotherapy.

Main Methods:

  • Utilized ERK kinase translocation reporter and CRISPRa screening.
  • Performed genetic knockout of Shcbp1 in mouse models.
  • Conducted high-throughput screening for drug development.
  • Analyzed clinical patient data for SHCBP1 expression correlation.

Main Results:

  • Identified the non-kinase SHC-SHCBP1 complex as a key regulator of VEGFR2-ERK activity.
  • Demonstrated that Shcbp1 knockout normalizes tumor vasculature and enhances immunotherapy.
  • Revealed SHCBP1 promotes ERK hyperactivation and nuclear shuttling.
  • Found SHCBP1 overexpression correlates with poor response to antiangiogenic immunotherapy.
  • Developed MS1943, an inhibitor of SHCBP1-ERK nuclear transport.

Conclusions:

  • The SHC-SHCBP1 complex governs a non-kinase-dependent VEGFR2-ERK pathway crucial for pathological angiogenesis.
  • Targeting SHCBP1-ERK nuclear transport offers a novel strategy to improve antiangiogenic immunotherapy.
  • MS1943 combined with VEGFR2 inhibition and anti-PD1 shows potential against resistant tumors.

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