Second- and third-generation drugs for immuno-oncology treatment-The more the better?

Wolfram C M Dempke1, Klaus Fenchel2, Peter Uciechowski3

  • 1Kyowa Kirin Pharmaceutical Development, Galashiels, United Kingdom; University of Munich, University Hospital of Grosshadern, Department of Haematology and Oncology, Germany.

European Journal of Cancer (Oxford, England : 1990)
|March 25, 2017
PubMed

Insights

New cancer immunotherapies, including co-stimulatory antibodies, aim to improve response rates and overcome resistance. While promising, further research is needed to optimize their use and identify suitable patient populations for these novel treatments.

Area of Science:

  • Oncology
  • Immunology
  • Pharmacology

Background:

  • Cancer immunotherapy successes (anti-CTLA-4, anti-PD1/PD-L1) highlight the immune system's role in cancer control.
  • Limited response rates (less than 25%) and identified resistance mechanisms necessitate novel therapeutic strategies.
  • Existing immunotherapies face challenges like T-cell exhaustion and genetic mutations impacting efficacy.

Purpose of the Study:

  • To review novel second- and third-generation immuno-oncology drugs, including inhibitory and co-stimulatory antibodies.
  • To discuss the mechanisms of action and clinical data of emerging immunotherapies.
  • To address challenges and future directions in the rapidly evolving field of cancer immunotherapy.

Main Methods:

  • Review of ongoing phase I/II clinical trials for novel immuno-oncology agents.
  • Analysis of mechanisms of action for new inhibitory and co-stimulatory antibodies.
  • Discussion of clinical data from single-agent and combination therapy studies.

Main Results:

  • Second- and third-generation immunotherapies, including novel checkpoint inhibitors (TIM-3, VISTA, LAG-3) and co-stimulatory antibodies (CD40, GITR, OX40), show promise.
  • Initial clinical trials report encouraging results with manageable toxicity, even in combination therapies.
  • Co-stimulatory agents offer a distinct approach by activating immune responses, complementing antagonistic checkpoint inhibitors.

Conclusions:

  • Novel immunotherapies, particularly co-stimulatory antibodies, are poised to advance cancer treatment.
  • Optimizing dosage, scheduling, and patient selection are critical for maximizing therapeutic benefit.
  • Combining agonistic and antagonistic strategies presents a significant opportunity for enhanced anti-cancer immunity.

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