Refined immunoRNases for the efficient targeting and selective killing of tumour cells: A novel strategy

Mohammadreza Nassiri1, Reihane Behnam-Rasouli2, Masoume Vakili-Azghandi3

  • 1Recombinant Proteins Research Group, The Research Institute of Biotechnology, Ferdowsi University of Mashhad, Mashhad, Iran; School of Life and Environmental Sciences, The University of Sydney, Sydney 2006, NSW, Australia.

Life Sciences
|December 13, 2021
PubMed

Insights

Small, engineered antibody-like molecules enhance immuno-ribonuclease (RNase) cancer therapy by improving targeting and reducing toxicity. These novel agents offer a promising strategy for more effective and safer anti-cancer treatments.

Area of Science:

  • Biomedical Science
  • Oncology
  • Molecular Biology

Background:

  • Conventional cancer therapies like chemotherapy and radiotherapy lack specificity, leading to significant side effects.
  • Immunotoxins, particularly immuno-ribonucleases (RNases), offer targeted cancer cell killing by fusing RNases to antibodies.
  • The large size of traditional antibody conjugates poses challenges for effective delivery and application of immuno-RNases.

Purpose of the Study:

  • To introduce a novel strategy for developing advanced immuno-RNases with enhanced anti-cancer functionality.
  • To explore the use of small, optimized antibody-like molecules to overcome limitations of conventional immuno-RNase therapies.
  • To present new molecular entities designed for improved affinity, stability, and reduced immunogenicity in immuno-RNase applications.

Main Methods:

  • Review of existing literature on immunotoxins and immuno-RNases.
  • Introduction of engineered small antibody-like molecules (approx. 10 kD) for immuno-RNase development.
  • Discussion of novel molecular scaffolds such as monobodies, anticalins, nonobodies, and affilins for immuno-RNase construction.

Main Results:

  • Small, optimized antibody-like molecules demonstrate potential for significantly enhanced RNase activity.
  • These engineered molecules are presumed to offer improved cellular uptake and stability compared to large antibody conjugates.
  • The use of small, engineered binders is expected to reduce systemic toxicity and immunogenicity.

Conclusions:

  • Small, engineered antibody-like molecules represent a promising advancement in immuno-RNase therapy for cancer.
  • These novel agents overcome the size and immunogenicity limitations of traditional antibody-based immuno-RNases.
  • The development of these refined immuno-RNases holds potential for more effective and safer large-scale cancer treatment.

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