When Less May Be Enough: Dose Selection Strategies for Immune Checkpoint Inhibitors Focusing on AntiPD-(L)1 Agents

Daniel V Araujo1, Bruno Uchoa2, Juan José Soto-Castillo3

  • 1Department of Medical Oncology, Hospital de Base/HB Onco, FUNFARME/FAMERP, Av. Brigadeiro Faria Lima 5544, São José do Rio Preto, SP, Brazil. daniel.araujo@edu.famerp.br.

Targeted Oncology
|June 10, 2022
PubMed

Insights

Lower doses of anti-PD(L)-1 agents may offer similar efficacy and reduce toxicity. This review examines current dosing strategies and suggests optimizing anti-PD(L)-1 therapy for better clinical and financial outcomes.

Area of Science:

  • Oncology
  • Immunotherapy
  • Pharmacology

Background:

  • Early anti-PD(L)-1 trials often didn't reach maximum tolerated dose (MTD).
  • Efficacy was observed at low doses, suggesting no direct dose-toxicity or dose-efficacy relationship.
  • High cost of anti-PD(L)-1 agents fuels debate on optimal dosing.

Purpose of the Study:

  • Review anti-PD(L)-1 dosing, response rates, and adverse events in early trials.
  • Evaluate dose selection appropriateness for Phase 2 and regulatory approval.
  • Examine real-world data on lower/extended dosing intervals.

Main Methods:

  • Literature review of early clinical trials (dose-escalation, Phase 2).
  • Analysis of real-world data (RWD) on anti-PD(L)-1 usage.
  • Discussion of clinical and financial toxicity.

Main Results:

  • Accumulating evidence suggests lower or extended anti-PD(L)-1 doses may yield similar clinical benefits.
  • Current approved doses might be higher than necessary, leading to increased toxicity.
  • Dosing may not follow a linear dose-response curve.

Conclusions:

  • Lower doses or extended intervals of anti-PD(L)-1 agents warrant further investigation.
  • Optimizing dosing can mitigate clinical and financial toxicity.
  • Future immunotherapeutic development should prioritize finding the lowest efficacious dose over MTD.

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