4.6 Article

Functional Consequences of Complementarity-determining Region Deactivation in a Multifunctional Anti-nucleic Acid Antibody

Journal

JOURNAL OF BIOLOGICAL CHEMISTRY
Volume 288, Issue 50, Pages 35877-35885

Publisher

AMER SOC BIOCHEMISTRY MOLECULAR BIOLOGY INC
DOI: 10.1074/jbc.M113.508499

Keywords

Antibodies; Antibody Engineering; Autoimmunity; Immunology; Molecular Biology; Anti-DNA Antibody; CDR Deactivation; Cell Penetration; DNA Hydrolysis; Multifunctional Antibody

Funding

  1. Science Research Center Program of the National Research Foundation of Korea [20110030043]
  2. Basic Science Research Program of the National Research Foundation of Korea [2011-0007358]
  3. Department of Medical Sciences, the Graduate School, Ajou University
  4. National Research Foundation of Korea [2011-0007358] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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Background: A subset of anti-DNA antibodies have DNA-hydrolysis and/or cell-penetration activity. Results: Deactivation of different complementarity-determining regions (CDRs) in a multifunctional anti-nucleic acid antibody alters the properties of the antibody. Conclusion: CDR1 of the light chain plays a crucial role in maintaining the properties of 3D8 scFv. Significance: Single complete CDR deactivation allows exploration of the molecular features of multifunctional anti-DNA antibodies. Many murine monoclonal anti-DNA antibodies (Abs) derived from mice models for systemic lupus erythematosus have additional cell-penetration and/or nucleic acid-hydrolysis properties. Here, we examined the influence of deactivating each complementarity-determining region (CDR) within a multifunctional anti-nucleic acid antibody (Ab) that possesses these activities, the catalytic 3D8 single chain variable fragment (scFv). CDR-deactivated 3D8 scFv variants were generated by replacing all of the amino acids within each CDR with Gly/Ser residues. The structure of 3D8 scFv accommodated single complete CDR deactivations. Different functional activities of 3D8 scFv were affected differently depending on which CDR was deactivated. The only exception was CDR1, located within the light chain (LCDR1); deactivation of LCDR1 abolished all of the functional activities of 3D8 scFv. A hybrid Ab, HW6/3D8L1, in which the LCDR1 from an unrelated Ab (HW6) was replaced with the LCDR1 from 3D8, acquired all activities associated with the 3D8 scFv. These results suggest that the activity of a multifunctional 3D8 scFv Ab can be modulated by single complete CDR deactivation and that the LCDR1 plays a crucial role in maintaining Ab properties. This study presents a new approach for determining the role of individual CDRs in multifunctional Abs with important implications for the future of Ab engineering.

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