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Identification of critical chemical modifications and paratope mapping by size exclusion chromatography of stressed
Pavel Bondarenko1, Andrew C Nichols1, Gang Xiao1
1Attribute Sciences, Process Development, Amgen Inc , Thousand Oaks, CA, USA.
Abstract:
Therapeutic proteins including antibodies and Fc-fusion proteins undergo a large number of chemical modifications during cell culture, purification, storage and in human circulation. They are also exposed to harsh conditions during stress studies, including elevated temperature, extremes of pH, forced oxidation, physiological pH, UV light to assess the possible degradation pathways and suitability of methods for detecting them. Some of these modifications are located on residues in binding regions, leading to loss of binding and potency and classified as critical quality attributes. Currently, criticality of modifications is assessed by a laborious process of collecting antibody fractions from the soft chromatography techniques ion exchange and hydrophobic interaction chromatography and characterizing the fractions one-by-one for potency and chemical modifications. Here, we describe a method for large-scale, parallel identification of all critical chemical modifications in one experiment. In the first step, the antibody is stressed by one or several stress methods. It is then mixed with target protein and separated by size-exclusion chromatography (SEC) on bound antibody-target complex and unbound antibody. Peptide mapping of fractions and statistical analysis are performed to identify modifications on amino acid residues that affect binding. To identify the modifications leading to slight decreases in binding, competitive SEC of antibody and antigen mixtures was developed and described in a companion study by Shi et al, where target protein is provided at lower level, below the stoichiometry. The newly described method was successfully correlated to crystallography for assessing criticality of chemical modifications and paratope mapping. It is more sensitive to low-level modifications, better streamlined and platform ready.
Insights
This study introduces a streamlined method to identify critical chemical modifications in therapeutic proteins. The new technique efficiently pinpoints modifications affecting protein binding and potency, improving quality attribute assessment.
Area of Science:
- Biochemistry
- Protein Chemistry
- Analytical Chemistry
Background:
- Therapeutic proteins like antibodies undergo chemical modifications during production and circulation.
- These modifications can impact protein binding and potency, classifying them as critical quality attributes.
- Current methods for assessing modification criticality are laborious and time-consuming.
Purpose of the Study:
- To develop a large-scale, parallel method for identifying all critical chemical modifications in a single experiment.
- To streamline the assessment of modifications affecting therapeutic protein binding and potency.
- To provide a more sensitive and efficient alternative to current laborious characterization techniques.
Main Methods:
- Antibodies are subjected to various stress conditions.
- Stressed antibodies are mixed with target proteins and separated using size-exclusion chromatography (SEC).
- Peptide mapping and statistical analysis of separated fractions identify modifications impacting binding.
Main Results:
- The method enables parallel identification of critical chemical modifications in one experiment.
- It successfully correlates with crystallography for assessing modification criticality and paratope mapping.
- The technique is more sensitive to low-level modifications and offers a streamlined, platform-ready solution.
Conclusions:
- The described method significantly enhances the identification of critical quality attributes in therapeutic proteins.
- It offers a more efficient, sensitive, and streamlined approach compared to traditional methods.
- This advancement facilitates better quality control and development of therapeutic proteins.
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