NECTIN-4 PET FOR OPTIMIZING ENFORTUMAB VEDOTIN DOSE-RESPONSE IN UROTHELIAL CARCINOMA

Akhilesh Mishra1, Ajay Kumar Sharma1, Kuldeep Gupta1

  • 1The Russell H. Morgan Department of Radiology and Radiological Science.

Insights

Positron emission tomography (PET) imaging with [68Ga]AJ647 non-invasively assesses Nectin-4 target engagement for enfortumab vedotin (EV) therapy. PET-measured engagement reliably predicts treatment response in urothelial carcinoma, guiding optimal dosing.

Area of Science:

  • Oncology
  • Pharmacology
  • Radiochemistry

Background:

  • Antibody-drug conjugates (ADCs) require precise dosing due to narrow therapeutic windows.
  • Enfortumab vedotin (EV) is an ADC targeting Nectin-4 for urothelial carcinoma (UC).
  • Assessing real-time target engagement is crucial for optimizing ADC therapy.

Purpose of the Study:

  • To evaluate [68Ga]AJ647 PET imaging for non-invasively assessing Nectin-4 target engagement during EV therapy.
  • To correlate PET-measured target engagement with therapeutic outcomes in preclinical models.
  • To establish PET-derived benchmarks for optimizing EV dosing strategies.

Main Methods:

  • Utilized [68Ga]AJ647, a Nectin-4-targeted PET tracer.
  • Quantified dynamic Nectin-4 target engagement in preclinical models of UC treated with EV.
  • Correlated PET imaging findings with tumor growth and therapeutic response.
  • Performed ROC analysis to identify a target engagement threshold for response.

Main Results:

  • PET imaging demonstrated dose-dependent Nectin-4 engagement with EV.
  • Suboptimal EV doses led to incomplete target engagement and reduced efficacy.
  • PET-measured target engagement was a superior predictor of efficacy compared to dose or baseline Nectin-4 levels.
  • A specific target engagement threshold predictive of response was identified.

Conclusions:

  • [68Ga]AJ647 PET imaging is a valuable tool for real-time assessment of Nectin-4 target engagement in EV therapy.
  • PET pharmacodynamic measures can guide dose optimization and improve therapeutic outcomes in UC.
  • This approach addresses challenges in ADC development, including heterogeneity and pharmacokinetic limitations.
  • Integrating PET biomarkers can accelerate the clinical translation of targeted therapeutics.