Aug 2026· Analytical Chemistry· Vol 98 32, pp.
23662-23671
· 0 citations· 48 references
Medicine
TL;DR
An antifouling electrochemical biosensor is constructed, which effectively resists nonspecific adsorption while maintaining high enzymatic stability, enabling the direct detection of carbohydrate antigen 15-3 in human serum with a detection limit of 2.64 mU·mL-1.
Abstract
The precise detection of biomarkers in complex biofluids remains a significant challenge for electrochemical biosensors, largely due to the nonspecific adsorption of proteins and other molecules. While zwitterionic peptides offer excellent antifouling properties, their typical linear architectures are prone to protease hydrolysis, compromising performance and limiting practical use. To overcome this limitation, we engineered a linear peptide through structural modulation, stabilizing it into a hairpin-shaped conformation by introducing two disulfide-directed bridges, and designated it as the hairpin-shaped antifouling peptide (HAP). This structural modulation maintains its inherent antifouling properties while the conferred conformational constraints significantly enhance its resistance to enzymatic hydrolysis. Based on this HAP, an antifouling electrochemical biosensor was constructed, which effectively resists nonspecific adsorption while maintaining high enzymatic stability, enabling the direct detection of carbohydrate antigen 15-3 (CA15-3) in human serum with a detection limit of 2.64 mU·mL-1. Importantly, the HAP-based biosensor demonstrates reliability on par with commercial enzyme-linked immunosorbent assay methods and successfully discriminates between healthy individuals and cancer patients. With its high accuracy and capacity for direct detection, the platform offers a promising strategy for analyzing cancer biomarkers in serum, potentially enabling more timely and effective clinical diagnosis and treatment.
The reliable electrochemical detection of immunoglobulin G (IgG) in complex biological fluids is severely hampered by nonspecific protein fouling and enzymatic degradation. Inspired by natural lasso peptides, we engineer a multifunctional lasso-like peptide (LaP) composed entirely of D-amino acids that uniquely integra...
A β-d-glucose (β-d-Glc) moiety is introduced at the C-terminus of sensor-integrated peptide sequences to markedly enhance peptide–water interactions, reduce nonspecific adsorption, and protect the peptide backbone from proteolytic cleavage.
Yan-Xin Li, Yinan Zhan, Jie Yang et al.· Chemical Science· 0 citations
A facile and versatile antifouling sensor capable of assaying targets in diverse biological fluids was developed based on engineered peptoids with improved proteolytic stability. As peptidomimetics featuring N-substituted glycine backbones, the engineered peptoids are anchored by d-Cys, linked by (d-Pro)4 fragment, a...
Min Chen, Meng-Yan Li, Gui-Xiang Wang et al.· Analytical Chemistry· 0 citations
Catalytic hairpin assembly (CHA), as an enzyme-free isothermal nucleic acid amplification technique, offers significant advantages in biosensing owing to its exponential signal gain. Integrating CHA with dual-modal signal output holds promise for further improving the sensitivity and reliability of pathogen detection i...
Water-soluble heavy metal ions pose persistent threats to ecosystems and human health, necessitating highly sensitive and selective detection strategies. Herein, we report a nanochannel sensing platform for sequential ion detection, constructed via a protein-phase-transition-induced in situ interface engineering strate...
Jin-Can Yang, Xue Dong, Fei Sun et al.· ACS Applied Materials and In...· 0 citations
Electrochemical aptamer-based (EAB) sensors have emerged as a promising framework for reagentless, real-time molecular monitoring in complex biological matrices. Signal transduction in a prominent benchmark system—targeting aminoglycoside antibiotics—has been nearly universally attributed to target-specific, binding-in...
Steven Yee, Grace M. Maddocks, H. T. Soh· bioRxiv· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.