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Author

Zhiwei Chen

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Jul 2026

Spatially Driven DNA-Based Probe Proximity Assay for Total Antibody Quantification in Antibody-Drug Conjugates.

Antibody-drug conjugates (ADCs) face challenges in accurate total antibody quantification due to their complex composition, low in vivo concentrations, and interference from the serum matrix. The dynamic decrease in the drug-antibody ratio (DAR) during metabolism, varying affinities among different DAR species, and discrepancies between standards and actual samples further compromise the analytical accuracy. Herein, inspired by an aptamer targeting the non-complementarity determining region (nCDR), we developed a novel spatially driven DNA-based probe proximity assay for rapid, sensitive, and high-throughput total antibody quantification, using two oligonucleotides separately labeled with fluorescent or quenching groups. The high affinity and selectivity of the probes for trastuzumab and ADCs were confirmed by microscale thermophoresis, native PAGE, and molecular docking. Systematic spatial screening was used to further identify the optimal stem, spacer, and orientation between the two probes for collaborative recognition. Moreover, the proposed homogeneous detection method achieved superior recovery for trastuzumab and successfully quantified total antibodies in trastuzumab emtansine (T-DM1) and trastuzumab deruxtecan (T-DXd). In contrast to the conventional indirect enzyme-linked immunosorbent assay (ELISA), our method reduces the recovery loss caused by decreased affinity from payload conjugation and delivers comparable signals for trastuzumab, T-DM1, and T-DXd, which provides a novel approach to address accuracy issues arising from affinity changes due to ADC dynamics in vivo. Finally, the proposed assay was applied to a series of spiked serum samples and clinical samples, demonstrating its feasibility and proof of concept. This strategy may facilitate the development of bioanalytical techniques for ADC characterization and monitoring.

Zhiwei Chen, Yu-Ling Liao, Ying Zhou et al. · 0 citations
Aug 2026

Super-antifouling electrochemical biosensor based on a biomimetic gemini zwitterionic interface for sensitive detection of therapeutic antibodies.

Biofouling, arising from the nonspecific adsorption of proteins, cells, and other biomolecules, remains a major challenge that compromises the stability and reliability of diagnostic and therapeutic platforms. To address this issue, a super-antifouling electrochemical aptasensor was developed by integrating a biomimetic "gemini" zwitterionic monomer (BSMMP) with polydopamine (PDA). The covalent assembly of BSMMP and PDA forms a multi-site anchoring layer that enables the stable functionalization of the affinity aptamer GC20. Owing to its dense hydration shell, the PDA-BSMMP hybrid interface acts as a physical barrier against nonspecific adsorption, maintaining electron-transfer stability in undiluted human serum. Differential pulse voltammetry confirmed that this interface markedly reduced biofouling-induced signal loss, limiting attenuation to less than 15%, nearly fourfold lower than that of the unmodified surface. The platform achieved a low limit of detection of 0.97 ng/mL, a broad linear range from 1 ng/mL to 100 μg/mL, and high selectivity for trastuzumab in a label-free format without secondary antibodies or additional signal amplification. Finally, this platform successfully quantified trastuzumab in serum from breast cancer patients, with results consistent with commercial ELISA kits. Overall, this super-antifouling aptasensor offers great potential for therapeutic drug monitoring, advancing zwitterionic interface-based biosensing strategies for point-of-care diagnostics.

Zheng Zhao, Wan-Qing Yu, Haidong Li et al. · 0 citations

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