| Literature DB >> 23794522 |
Reza Esfandiary1, David B Hayes, Arun Parupudi, Jose Casas-Finet, Shufeng Bai, Hardeep S Samra, Ambarish U Shah, Hasige A Sathish.
Abstract
In addition to controlling typical instabilities such as physical and chemical degradations, understanding monoclonal antibodies' (mAbs) solution behavior is a key step in designing and developing process and formulation controls during their development. Reversible self-association (RSA), a unique solution property in which native, reversible oligomeric species are formed as a result of the noncovalent intermolecular interactions has been recognized as a developability risk with the potential to negatively impact manufacturing, storage stability, and delivery of mAbs. Therefore, its identification, characterization, and mitigation are key requirements during formulation development. Considering the large number of available analytical methods, choice of the employed technique is an important contributing factor for successful investigation of RSA. Herein, a multitechnique (dynamic light scattering, multiangle static light scattering, and analytical ultracentrifugation) approach is employed to comprehensively characterize the self-association of a model immunoglobulin G1 molecule. Studies herein discuss an effective approach for detection and characterization of RSA during biopharmaceutical development based on the capabilities of each technique, their complementarity, and more importantly their suitability for the stage of development in which RSA is investigated.Entities:
Keywords: analytical ultracentrifugation; biotechnology; formulation; high-throughput technologies; intermolecular interaction; light scattering (dynamic); light scattering (static); monoclonal antibody; reversible self-association; screening
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Year: 2013 PMID: 23794522 DOI: 10.1002/jps.23654
Source DB: PubMed Journal: J Pharm Sci ISSN: 0022-3549 Impact factor: 3.534