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May 29, 2026mAbs0 citationsOpen Access

High-throughput small-angle X-ray scattering reveals effective structure factor transitions linked to high-concentration antibody viscosity

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LKLateefat KalejayeIWI-En WuJCJia‐Min Chu

Key Points

  • This research aims to improve the assessment of viscosity in high-concentration monoclonal antibody formulations using SAXS.
  • Developed a high-throughput SAXS protocol for analyzing mAb self-association at dilute concentrations.
  • Conducted automated measurements on 21 mAbs in histidine buffer at pH 6.0.
  • Classified mAbs based on effective structure factor transitions to identify viscosity at various concentrations.
  • High-viscosity mAbs showed detectable low-q upturns at concentrations ≤10 mg/mL (p<0.01).
  • Effective structure factor transitions consistently emerged below 25 mg/mL across all analyzed mAbs.
  • The classification criterion accurately identified all mAbs at 150 mg/mL, highlighting the method's efficiency and accuracy.

Abstract

High-concentration monoclonal antibody (mAb) formulations are often constrained by elevated viscosity, largely driven by protein-protein interactions, which complicates manufacturing and limits subcutaneous delivery. Early viscosity risk assessment is essential during discovery, yet traditional measurements require large sample volumes, and lack high-throughput capability. Here, we develop a high-throughput small-angle X-ray scattering (SAXS) protocol to detect mAb self-association at dilute concentrations, enabling early predictive insights into high-concentration viscosity. Synchrotron SAXS measurements were conducted for 21 mAbs formulated in a histidine buffer at pH 6.0. An initial subset of 10 mAbs analyzed across 1-150 mg/mL revealed that effective structure factor transitions in the low-q region, indicative of interparticle interactions, consistently emerged below 25 mg/mL. Subsequently, 11 additional mAbs were analyzed at 1-25 mg/mL using automated liquid handling and flow cells to enable high-throughput screening. High-viscosity mAbs exhibited detectable low-q upturns at concentrations ≤10 mg/mL, whereas low-viscosity mAbs showed downturns. A classification criterion based on effective structure factor transitions accurately classified all high- and low-viscosity mAbs at 150 mg/mL, offering a scalable, sample-efficient alternative to conventional methods. These results extend recent findings on the concentration-dependent sensitivity of SAXS to short-range attractions, demonstrating that they can emerge at lower concentrations than previously reported. This study presents the most comprehensive and diverse SAXS dataset for mAbs reported to date within a single formulation, providing a valuable resource for developing and validating coarse-grained models that can more accurately capture intermolecular interactions governing high-concentration solution behavior, thereby enabling rational antibody engineering and improved developability.

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Cite This Study

Kalejaye et al. (2026) studied this question.

synapsesocial.com/papers/6a192da0fab5b468c4416739https://doi.org/10.1080/19420862.2026.2677285
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