Analytical ultracentrifugation with fluorescence detection system reveals differences in complex formation between

Elena Krayukhina1,2, Masanori Noda1,2, Kentaro Ishii3

  • 1a Graduate School of Engineering, Osaka University , Yamadaoka, Suita , Osaka , Japan.

Mabs
|April 8, 2017
PubMed

Insights

This study reveals how tumor necrosis factor (TNF) antagonists like adalimumab and infliximab form different-sized complexes with TNF in serum, impacting their biological activity and potential side effects.

Area of Science:

  • Biochemistry
  • Immunology
  • Pharmacology

Background:

  • Understanding tumor necrosis factor (TNF) antagonist binding is crucial for predicting therapeutic efficacy and adverse effects.
  • Previous studies lacked physiologically relevant conditions, leaving the relationship between complex size and biological activity unclear.

Purpose of the Study:

  • To characterize the binding stoichiometry and size distribution of TNF-antagonist complexes under near-physiologic conditions.
  • To correlate biophysical complex characteristics with the biological activity of adalimumab, infliximab, and etanercept.

Main Methods:

  • Fluorescence-detected sedimentation velocity analytical ultracentrifugation (FDSV-AUC) was used to analyze TNF-antagonist complexes in human serum and phosphate-buffered saline (PBS).
  • Reporter assays were employed to assess FcγRIIa- and FcγRIIIa-mediated cell signaling.

Main Results:

  • Adalimumab and infliximab formed a range of complexes with TNF, predominantly 3:1 (antagonist:TNF) or 3:2 stoichiometry.
  • Infliximab exhibited higher levels of high-molecular-weight complexes in human serum compared to adalimumab.
  • Etanercept primarily formed 1:1 complexes, with minor higher-order complexes in serum.
  • Adalimumab and infliximab, unlike etanercept, mediated cell signaling in a TNF-dependent manner, with infliximab showing greater potency.

Conclusions:

  • Complex size distribution and stoichiometry vary significantly among TNF antagonists and are influenced by the in vivo environment (human serum).
  • These biophysical differences correlate with distinct biological activities and potencies, offering insights into therapeutic outcomes.
  • Assessing TNF-antagonist complex profiles in serum is essential for a comprehensive understanding of their in vivo behavior and clinical performance.

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