ADC Characterization

ADC characterization covers several critical quality attributes — DAR, drug load distribution, aggregation, free drug/linker, and higher-order structure — each requiring specific analytical techniques.

Drug-to-Antibody Ratio (DAR)

DAR (the average number of payload molecules per antibody) is the single most important quality attribute, since a too-low DAR reduces potency while a too-high DAR can impair stability, antigen binding, and pharmacokinetics. Four main methods are used, each with different trade-offs:

Method What It Measures Strengths Limitations
UV/Vis spectroscopy Average DAR only, via absorbance at 280 nm (antibody) and payload λmax Fast, simple, minimal sample prep No drug-load distribution; less accurate; requires distinct payload/antibody spectra
Hydrophobic interaction chromatography (HIC) Average DAR + full drug-load distribution, under native (non-denaturing) conditions Gold standard for cysteine-linked ADCs; resolves DAR0, DAR2, DAR4, etc. as separate peaks Cannot identify peaks by retention time alone; less suited to site-specific/non-cysteine ADCs
Reversed-phase LC (RP-HPLC) DAR + drug-load distribution at the light/heavy chain level after reduction Orthogonal to HIC; works well for lysine-linked and site-specific ADCs Requires disulfide reduction (loses native conformation info)
LC-MS (intact or reduced) Precise DAR, drug-load distribution, and mass confirmation Most detailed; deconvoluted zero-charge mass spectra directly show each DAR species More complex instrumentation and data analysis; can be challenging for highly heterogeneous samples

For cysteine-linked ADCs, HIC is considered the gold standard, while RP-HPLC and LC-MS serve as orthogonal confirmation methods, and newer hybrid approaches like native RPLC-MS or HIC×SEC-IM×MS combine chromatographic separation with mass accuracy for resolving even positional isomers within the same DAR class.

Primary Structure and Conjugation Site Verification

Intact, reduced, and deglycosylated mass determination by high-resolution LC-MS (e.g., Orbitrap) confirms that the measured mass matches the theoretical mass, accounting for glycosylation, terminal modifications, and linker-payload conjugation on each chain. Peptide mapping (enzymatic digestion followed by LC-MS/MS) is commonly used to pinpoint exactly which residues carry the payload, which is especially important for confirming site-specificity in engineered-cysteine or non-natural-amino-acid ADCs.

Residual unconjugated payload or linker-payload must be quantified and controlled, typically via RP-HPLC or LC-MS after removing the ADC by protein precipitation or affinity capture, since free drug is separately regulated and impacts safety assessment. Capillary electrophoresis (CE) is also used to profile drug-load distribution and detect low-abundance species that chromatography might miss.

Biophysical and Higher-Order Structure

Beyond composition, ADC developability requires assessing conformational stability and aggregation propensity, since payload conjugation itself can destabilize the antibody. Common techniques include:

  • Thermal/conformational stability: differential scanning calorimetry (DSC), differential scanning fluorimetry (DSF), circular dichroism, and intrinsic fluorescence spectroscopy

  • Aggregation/self-association: size-exclusion chromatography with multi-angle light scattering (SEC-MALS), dynamic and static light scattering (DLS/SLS), analytical ultracentrifugation (AUC), and fluorescence correlation spectroscopy (FCS)

  • Structural dynamics: hydrogen-deuterium exchange mass spectrometry (HDX-MS), which reveals how conjugation affects protein folding and flexibility

Charge Variants and Potency

Charge heterogeneity (from deamidation, glycation, or conjugation-induced charge changes) is assessed by capillary isoelectric focusing (cIEF) or ion-exchange chromatography, since it can affect immunogenicity and antigen binding. Functional potency and target engagement are confirmed with ligand-binding assays (LBA) and cell-based cytotoxicity assays, which verify that the conjugated ADC still binds its antigen and kills target cells effectively, distinguishing total antibody from actively conjugated ADC.

Practical Testing Sequence

A typical characterization package for a new ADC batch would combine: UV/Vis for a quick DAR estimate, HIC or RP-HPLC for full drug-load distribution, intact/reduced LC-MS for mass confirmation and orthogonal DAR verification, SEC(-MALS) for aggregation, peptide mapping for conjugation-site confirmation, and a cell-based potency assay to confirm biological activity. This multi-orthogonal approach is standard because no single method fully captures all critical quality attributes of these structurally complex molecules.

Reviews:

(1) Dumontet, C., Reichert, J. M., Senter, P. D., Lambert, J. M., & Beck, A. (2023). Antibody–drug conjugates come of age in oncology. In Nature Reviews Drug Discovery (Vol. 22, Issue 8, pp. 641–661). Nature Research. https://doi.org/10.1038/s41573-023-00709-2