Effective tumor kinetics inferred from single routine H&E biopsies enable counterfactual virtual radiotherapy trials

Journal: medRxiv
Published Date:

Abstract

Routine H&E-histopathology captures spatial snapshots of tumor ecosystems, yet computational pathology largely treats them as textures without explicit links to underlying kinetics. We show that patient-specific parameters of a mechanistic reaction-diffusion model can be inferred from a single biopsy. Cell-nucleus point patterns are fitted jointly to the analytical two-point correlation function and power spectral density, recovering patient-specific mechanistic proliferation and diffusion rates across eleven multicenter cohorts. Derived dispersion length and front velocity define mechanistic phenotypes stratifying progression-free and overall survival and adding information independent of routine covariates. We illustrate counterfactual radiotherapy simulations in glioblastoma and show that a virtual clinical trial deescalating histology-calibrated faster-growing tumors to hypofractionation while dose-intensifying slower-growing tumors adds 96.7 days of restricted mean progression-free in silico survival over standard of care (permutation p<0.001 against random allocation to the same arms). This provides a low-barrier transition from routine histopathology to mechanistically interpretable model-based forward simulations.

Authors

  • Schlicke
  • P.; Ercan
  • C.; Ranjbar
  • S.; Seldomridge
  • A. N.; Aggarwal
  • S.; Mehta
  • A.; Sainz
  • T. P.; Zahid
  • M. U.; Fang
  • P.; Hofmann
  • V. A.; Pasetto
  • S.; Cisneros Napravnik
  • T.; Puebla-Osorio
  • N.; Kuttler
  • C.; Klopp
  • A.; Colbert
  • L.; Holder
  • A. M.; Weiser
  • R.; Lin
  • S. H.; Torres-Cabala
  • C. A.; Vega
  • F.; Yuan
  • Y.; Enderling
  • H.

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