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Published on: November 13, 2012
Progress and Challenges in the Design and Clinical Development of Antibodies for Cancer Therapy
Juan C Almagro1, Tracy R Daniels-Wells2, Sonia Mayra Perez-Tapia3
1GlobalBio, Inc., Cambridge, MA, United States.
Abstract:
The remarkable progress in engineering and clinical development of therapeutic antibodies in the last 40 years, after the seminal work by Köhler and Milstein, has led to the approval by the United States Food and Drug Administration (FDA) of 21 antibodies for cancer immunotherapy. We review here these approved antibodies, with emphasis on the methods used for their discovery, engineering, and optimization for therapeutic settings. These methods include antibody engineering via chimerization and humanization of non-human antibodies, as well as selection and further optimization of fully human antibodies isolated from human antibody phage-displayed libraries and immunization of transgenic mice capable of generating human antibodies. These technology platforms have progressively led to the development of therapeutic antibodies with higher human content and, thus, less immunogenicity. We also discuss the genetic engineering approaches that have allowed isotype switching and Fc modifications to modulate effector functions and bioavailability (half-life), which together with the technologies for engineering the Fv fragment, have been pivotal in generating more efficacious and better tolerated therapeutic antibodies to treat cancer.
Insights
Therapeutic antibodies have advanced significantly, with 21 approved for cancer immunotherapy. Engineering techniques enhance efficacy and reduce immunogenicity for better cancer treatment.
Area of Science:
- Immunology
- Biotechnology
- Oncology
Background:
- Therapeutic antibody development has seen substantial progress over 40 years.
- The United States Food and Drug Administration (FDA) has approved 21 antibodies for cancer immunotherapy.
Purpose of the Study:
- To review approved cancer immunotherapy antibodies.
- To emphasize discovery, engineering, and optimization methods for therapeutic antibodies.
Main Methods:
- Antibody engineering via chimerization and humanization.
- Selection and optimization of fully human antibodies from phage-displayed libraries and transgenic mice.
- Genetic engineering for isotype switching and Fc modifications.
Main Results:
- Technology platforms have yielded antibodies with higher human content and reduced immunogenicity.
- Fc modifications and Fv fragment engineering improve effector functions and bioavailability.
- These advancements have led to more efficacious and better-tolerated cancer therapeutics.
Conclusions:
- Engineering strategies are crucial for developing advanced therapeutic antibodies.
- Continuous innovation in antibody technology enhances cancer treatment outcomes.
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