Agnostic Administration of Targeted Anticancer Drugs: Looking for a Balance between Hype and Caution

Svetlana N Aleksakhina1, Alexander O Ivantsov1,2, Evgeny N Imyanitov1,2

  • 1Department of Tumor Growth Biology, N. N. Petrov Institute of Oncology, 197758 St. Petersburg, Russia.

Insights

Histology-independent cancer treatments target shared genetic alterations across tumor types. While challenging, this agnostic approach is feasible and will grow with next-generation sequencing (NGS).

Area of Science:

  • Oncology
  • Genomics
  • Precision Medicine

Background:

  • Tumors often possess specific vulnerabilities exploitable for targeted therapies.
  • Actionable genetic alterations can be shared across diverse tumor types, enabling histology-independent treatment strategies.
  • Approved agnostic therapies include immune checkpoint inhibitors for microsatellite instability (MSI) or high tumor mutation burden (TMB), NTRK/RET inhibitors, and BRAF inhibitors.

Purpose of the Study:

  • To explore the feasibility and growing utilization of histology-independent, or agnostic, drug-target matching in cancer treatment.
  • To highlight existing and potential agnostic treatment strategies based on genetic alterations.
  • To discuss the challenges and future directions for agnostic cancer medicine.

Main Methods:

  • Review of existing literature and approved agnostic therapies.
  • Identification of genetic alterations suitable for histology-independent targeting (e.g., ALK/ROS1 translocations, BRCA1/2 inactivation, HER2 amplification).
  • Discussion of the role of comprehensive next-generation sequencing (NGS) in identifying rare tumor-target combinations.

Main Results:

  • Several agnostic drug-target matches are clinically approved, demonstrating the approach's validity.
  • Potential for agnostic targeting exists for other alterations like ALK/ROS1 translocations, BRCA1/2 inactivation, and specific HER2 amplifications.
  • The probability of finding a druggable target remains relatively low but is increasing with NGS adoption.

Conclusions:

  • Histology-independent drug-target matching is a feasible and increasingly important strategy in oncology.
  • NGS advancements are expanding the landscape of rare tumor-target combinations amenable to agnostic therapy.
  • Personalized treatment decisions require careful consideration of efficacy, availability, and cost, alongside clinical trial frameworks.

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