Antibody-Cytokine Fusions: Versatile Products for the Modulation of Anticancer Immunity

Dario Neri1

  • 1Department of Chemistry and Applied Biosciences, ETH Zürich, Zürich, Switzerland. dario.neri@pharma.ethz.ch.

Insights

Antibody-cytokine fusion proteins, or immunocytokines, enhance cancer immunotherapy by delivering cytokines directly to tumors. This approach aims to boost anticancer activity while reducing systemic toxicity for improved patient outcomes.

Area of Science:

  • Oncology
  • Immunotherapy
  • Biopharmaceuticals

Background:

  • Immune-checkpoint inhibitors have shown clinical success, driving interest in novel immunotherapies.
  • Cytokine-based therapeutics are emerging as a significant component of modern cancer treatment strategies.
  • Antibody-cytokine fusion proteins (immunocytokines) offer a promising approach to improve cytokine therapy's efficacy and safety.

Purpose of the Study:

  • To explore the potential of antibody-cytokine fusion proteins (immunocytokines) in cancer therapy.
  • To discuss how immunocytokines can enhance the therapeutic index of cytokine products.
  • To review factors influencing immunocytokine performance and future development directions.

Main Methods:

  • Review of preclinical and clinical data on antibody-cytokine fusion proteins.
  • Analysis of antibody-mediated delivery of cytokines (e.g., IL2, IL12, TNF) to tumor microenvironments.
  • Discussion of protein engineering and cancer immunology insights for next-generation immunocytokines.

Main Results:

  • Antibodies can preferentially deliver cytokines to tumor sites, potentiating anticancer activity.
  • Certain immunocytokines have advanced to late-stage clinical trials, demonstrating therapeutic promise.
  • Systemic toxicity remains a challenge for cytokine-based therapies, necessitating targeted delivery strategies.

Conclusions:

  • Immunocytokines represent a valuable class of biopharmaceuticals for enhancing cancer immunotherapy.
  • Optimizing immunocytokine design, including antibody targeting and payload selection, is crucial for maximizing efficacy.
  • Further research is needed to fully elucidate mechanisms of action and clinical potential, aiming to improve antitumor activity and reduce side effects.

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