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Presence of an Artificial Intelligence-powered Predictive Biomarker Is Associated with a Poor Response to Intravesical Bacillus Calmette-Guerin but Not to Intravesical Sequential Gemcitabine/Docetaxel in Patients with High-grade Non-muscle-invasive Bladder Cancer

  • Vignesh T. Packiam
  • , Ian M. McElree
  • , Saum Ghodoussipour
  • , Vivek Nimgaonkar
  • , Viswesh Krishna
  • , Joon Kyung Kim
  • , Derek B. Allison
  • , Jordan R. Richards
  • , K. D. Anand Rajan
  • , Stephanie J. Chen
  • , Yair Lotan
  • , Stephen B. Williams
  • , Haochen Zhang
  • , Drew Watson
  • , Damir Vrabac
  • , Waleed M. Abuzeid
  • , Anirudh Joshi
  • , Ashish M. Kamat
  • , Michael A. O'Donnell
  • , Patrick J. Hensley

Producción científica: Articlerevisión exhaustiva

8 Citas (Scopus)

Resumen

Intravesical bacillus Calmette-Guerin (BCG) is considered first-line adjuvant therapy for high-risk or high-grade non-muscle-invasive bladder cancer (NMIBC). Recently, sequential intravesical gemcitabine and docetaxel (Gem/Doce) has emerged as a promising alternative to intravesical BCG. Biomarkers to select the optimal treatment regimen could facilitate clinical decision-making. The Computational Histologic Artificial Intelligence (CHAI) platform was previously used to develop an artificial intelligence-augmented histologic assay (CHAI biomarker) that identified patients with NMIBC at an increased risk of recurrence and progression events following BCG treatment. In this study, we assessed use of the CHAI biomarker among patients with treatment-naive high-grade NMIBC who received intravesical BCG or Gem/Doce. Among patients with the presence of the CHAI biomarker, those treated with BCG had a 24-mo high-grade recurrence-free survival (HG-RFS) rate of 56% (95% confidence interval [CI] 43-73%) and those treated with Gem/Doce had an HG-RFS rate of 90% (95% CI 79-100%; hazard ratio [HR] 5.4, 95% CI 1.6-18.3, p = 0.007). Among patients with an absence of the CHAI biomarker, those treated with BCG or Gem/Doce had no significant difference in HG-RFS (HR 1.3, 95% CI 0.6-2.6, p = 0.5). The interaction term between the CHAI biomarker and the treatment type was significant (p = 0.029), indicating an association between the biomarker and the clinical outcome that is dependent on the treatment received. This study suggests that the CHAI biomarker predicts which specific high-grade NMIBC patients are less likely to benefit from BCG and may benefit from alternative treatments including, potentially, Gem/Doce.

Idioma originalEnglish
Páginas (desde-hasta)1461-1465
Número de páginas5
PublicaciónEuropean urology oncology
Volumen8
N.º6
DOI
EstadoPublished - dic 1 2025

Nota bibliográfica

Publisher Copyright:
Copyright © 2025 The Author(s). Published by Elsevier B.V. All rights reserved.

Financiación

Pathology slide digitization was funded by Valar Labs (Palo Alto, CA, USA) . This research was supported by the Biospecimen Procurement & Translational Pathology and the Cancer Research Informatics Shared Resource Facilities of the University of Kentucky Markey Cancer Center (P30CA177558) , and an NIH Cancer Center Support Grant (P30 CA177558) to Patrick J. Hensley. This work was supported in part by the John & Carol Walter Family Foundation and the Holden Comprehensive Cancer Center Support Grant.

FinanciadoresNúmero del financiador
Valar Labs (Palo Alto, CA, USA)
Biospecimen Procurement & Translational Pathology
Cancer Research Informatics Shared Resource Facilities of the University of Kentucky Markey Cancer CenterP30CA177558
NIH Cancer Center Support GrantP30 CA177558
John & Carol Walter Family Foundation
Holden Comprehensive Cancer Center Support Grant

    ODS de las Naciones Unidas

    Este resultado contribuye a los siguientes Objetivos de Desarrollo Sostenible

    1. Good health and well being
      Good health and well being

    ASJC Scopus subject areas

    • Surgery
    • Oncology
    • Radiology Nuclear Medicine and imaging
    • Urology

    Huella

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