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Analyzing Tumor and Tissue Distribution of Target Antigen Specific Therapeutic Antibody
Published on: May 16, 2020
Single domain antibodies: a new concept for epidermal growth factor receptor and EGFRvIII targeting
Kobra Omidfar1, Zaynab Shirvani
1Endocrine and Metabolism Research Center, Tehran University of Medical Sciences, Tehran, Islamic Republic of Iran. omidfar@tums.ac.ir
Abstract:
Epidermal growth factor receptor (EGFR) is one of the major molecular targets for cancer diagnosis and therapy. EGFR and EGFRvIII, mutated form of EGFR, have been identified as participating in pathogenesis of some forms of human cancers. Monoclonal antibodies (mAbs) targeting EGFR/EGFRvIII have been shown to suppress the signal transduction pathways controlling tumor cell growth, proliferation, and apoptosis. Until now, different types of mAbs or antibody fragments against EGFR family have been established. Some of these antibodies have been used clinically for treating various forms of human malignancies. More recently, a single domain antibody (sdAb) targeting this family of receptors has been introduced. The heavy chain antibodies (HCAbs) that made up variable regions of heavy chain, CH2, and CH3 domains are shown in camelids. SdAbs derived from camel HCAbs are the smallest known natural building parts for binding to antigen. They also possess a longer antigen recognizing region, which increases their capability for being more specific in target antigen enhancement. Camelid antibodies are highly valuable for their special characteristics, including heat resistance, small size, high solubility in an aqueous environment, and non-immunogenicity in a human environment. Due to these abilities, research on biotechnological production and treatment applications of recombinant smaller fragments of these only HCAbs is widely in progress. In this article, we will discuss the challenges and successes of different types of mAbs targeting EGFR/EGFRvIII in human cancer.
Insights
Monoclonal antibodies (mAbs) targeting the epidermal growth factor receptor (EGFR) and its mutant form (EGFRvIII) show promise in cancer therapy. Novel single domain antibodies (sdAbs) from camelids offer unique advantages for developing targeted cancer treatments.
Area of Science:
- Oncology
- Immunology
- Biotechnology
Background:
- Epidermal growth factor receptor (EGFR) and its mutated form (EGFRvIII) are key molecular targets in cancer pathogenesis.
- Monoclonal antibodies (mAbs) targeting EGFR/EGFRvIII can suppress tumor cell growth, proliferation, and apoptosis by inhibiting signal transduction pathways.
Purpose of the Study:
- To review the challenges and successes of various monoclonal antibodies (mAbs) targeting EGFR/EGFRvIII in human cancers.
- To highlight the potential of single domain antibodies (sdAbs) derived from camelid heavy chain antibodies (HCAbs) as novel therapeutic agents.
Main Methods:
- Review of existing literature on monoclonal antibodies and antibody fragments targeting EGFR family.
- Discussion of the characteristics and biotechnological production of camelid-derived sdAbs.
Main Results:
- Various mAbs and antibody fragments targeting EGFR/EGFRvIII have been developed, with some used clinically.
- Camelid sdAbs offer advantages such as small size, heat resistance, high solubility, and low immunogenicity.
- SdAbs possess a longer antigen-recognizing region, potentially enhancing specificity.
Conclusions:
- Monoclonal antibodies targeting EGFR/EGFRvIII are established in cancer therapy.
- Camelid sdAbs represent a promising new class of targeted cancer therapeutics due to their unique properties.
- Further research into biotechnological production and therapeutic applications of recombinant sdAbs is warranted.
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