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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.
Abstract:
In order to overcome limitations of conventional cancer therapy methods, immunotoxins with the capability of target-specific action have been designed and evaluated pre-clinically, and some of them are in clinical studies. Targeting cancer cells via antibodies specific for tumour-associated surface proteins is a new biomedical approach that could provide the selectivity that is lacking in conventional cancer therapy methods such as radiotherapy and chemotherapy. A successful example of an approved immunotoxin is represented by immunoRNases. ImmunoRNases are fusion proteins in which the toxin has been replaced by a ribonuclease. Conjugation of RNase molecule to monoclonal antibody or antibody fragment was shown to enhance specific cell-killing by several orders of magnitude, both in vitro and in animal models. There are several RNases obtained from different mammalian cells that are expected to be less immunogenic and systemically toxic. In fact, RNases are pro-toxins which become toxic only upon their internalization in target cells mediated by the antibody moiety. The structure and large size of the antibody molecules assembled with the immunoRNases have always been a challenge in the application of immunoRNases as an antitoxin. To overcome this obstacle, we have offered a new strategy for the application of immunoRNases as a promising approach for upgrading immunoRNAses with maximum affinity and high stability in the cell, which can ultimately act as an effective large-scale cancer treatment. In this review, we introduce the optimized antibody-like molecules with small size, approximately 10 kD, which are presumed to significantly enhance RNase activity and be a suitable agent with the potential for anti-cancer functionality. In addition, we also discuss new molecular entities such as monobody, anticalin, nonobody and affilin as refined versions in the development of immunoRNases. These small molecules express their functionality with the suitable small size as well as with low immunogenicity in the cell, as a part of immunoRNases.
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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