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In Vivo Immunofluorescence Localization for Assessment of Therapeutic and Diagnostic Antibody Biodistribution in Cancer Research
Published on: September 16, 2019
Antibodies and their fragments as anti-cancer agents
1Faculty of Biology, Technion-Israel Institute of Technology, Haifa 32000, Israel.
Abstract:
The recent developments in the field of recombinant DNA, protein engineering and cancer biology, have let us gain insight into many cancer-related mechanisms. Moreover, novel techniques have facilitated tools allowing unique distinction between malignantly transformed cells, to regular ones. This understanding has paved the way for the rational design of a new age of pharmaceuticals; monoclonal antibodies and their fragments. Antibodies can select antigens on both a specific and high affinity account, and further implementation of these qualities is used to target cancer cells by specifically identifying exogenous antigens of cancer cell populations. The structure of the antibody provides plasticity resonating from its functional sites. Upon binding to the Fc Receptor on effector cells, the crystallisable fragment (Fc) region elicits the onslaught of Antigen Dependent Cell-mediated Cytotoxicity (ADCC) and the plasma-native Complement Dependent Cytotoxicity (CDC) response and apoptosis. The progenitor form of the antibody can evolve in to a tailored therapeutic molecule with the help of recombinant DNA technology. Recombinant antibodies may be linked to potent toxins or radio-labeled fragments, conferring a high killing capability. Other recombinant techniques such as ADEPT, conjugate the specificity of antibodies to a prodrug-catalytic subunit thus creating a high local concentration of an activated chemotherapeutic. Antibodies can be used to recruit the adaptive immune response by binding the antibody fragment to a recombinant MHC molecule displaying a highly immunogenic peptide. Apart from their therapeutic capabilities antibodies are powerful detection tools as observed in the operating theater in a procedure known as Radio-immuno-guided Surgery (RIGS).
Insights
Recombinant DNA technology enables the creation of targeted cancer therapies, including monoclonal antibodies and antibody fragments. These engineered antibodies can precisely target cancer cells, recruit immune responses, and serve as diagnostic tools.
Area of Science:
- Biotechnology
- Immunology
- Oncology
Background:
- Recent advances in recombinant DNA technology, protein engineering, and cancer biology offer new insights into cancer mechanisms.
- Novel techniques allow for the precise differentiation between malignant and normal cells.
Purpose of the Study:
- To explore the development and application of engineered antibodies as targeted therapeutics and diagnostic tools in cancer treatment.
- To highlight the potential of monoclonal antibodies and their fragments in combating cancer.
Main Methods:
- Utilizing recombinant DNA technology to engineer antibodies and antibody fragments.
- Leveraging antibody specificity for targeted delivery of toxins, radio-labeled agents, or chemotherapeutics.
- Employing antibodies for immune response recruitment and diagnostic applications like Radio-immuno-guided Surgery (RIGS).
Main Results:
- Engineered antibodies can specifically identify and target cancer cells based on unique antigens.
- The Fc region of antibodies can initiate Antigen Dependent Cell-mediated Cytotoxicity (ADCC) and Complement Dependent Cytotoxicity (CDC) responses, leading to apoptosis.
- Recombinant antibodies can be conjugated with toxins, radio-labels, or prodrug-catalytic subunits for enhanced cancer cell killing.
Conclusions:
- Engineered antibodies represent a new era of targeted cancer pharmaceuticals with significant therapeutic and diagnostic potential.
- Antibody-based therapies offer versatile strategies for cancer treatment, including direct cell killing and immune system modulation.
- Antibodies are valuable tools in cancer detection and surgical guidance, improving patient outcomes.
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