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May 11, 2026Biosensors and Bioelectronics1 citationsOpen Access

MoS2-Supported Multiepitope Protein Electrochemical Biosensors: A Simple and Highly Selective Approach for the Diagnosis of Systemic Mycoses

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NMNicole Graça MaiaUniversidade Federal do ParanáAPAmanda F. PereiraUniversidade Federal do ParanáJVJaqueline VolpeUniversidade Federal do Paraná

Key Points

  • The aim is to create a highly sensitive and selective electrochemical immunosensor for diagnosing cryptococcosis.
  • Developed a multiepitope chimeric protein-based immunosensor using a MoS2-functionalized gold electrode.
  • Conducted evaluations with human serum samples to assess performance and selectivity against other mycoses.
  • Employed Square Wave Voltammetry for detection and ROC analysis for clinical validation.
  • Achieved a limit of detection of 0.124 fmol L-1 and a sensitivity of 100%.
  • Demonstrated specificity of 87.5% with an area under the ROC curve of 0.987.
  • Showed high selectivity against five other systemic mycoses, reducing specificity gaps of existing diagnostics.

Abstract

Cryptococcosis is a life-threatening fungal infection with global public health impact, affecting both immunocompromised individuals and the general population. Accurate clinical management requires differentiation of Cryptococcus species and detection of subclinical infections. However, current diagnostic methods suffer from limited sensitivity and, notably, selectivity. Here, we report a highly sensitive and selective electrochemical immunosensor for rapid and simple serological diagnosis of cryptococcosis. The sensor employs novel multi-epitope chimeric proteins (A, B, C, and D) directly anchored onto a molybdenum disulfide (MoS 2 )-functionalized gold electrode, enabling simplified construction and stable bioreceptor immobilization without chemical cross-linkers. Comprehensive physicochemical characterization by SPR, AFM, EDS, SEM, Raman spectroscopy, and electrochemical techniques provided essential structural information governing the synergistic integration of MoS 2 and chimeric proteins. Using Square Wave Voltammetry (SWV), a comparative evaluation against human serum samples identified Protein D as the main bioreceptor, providing the highest discrimination between positive and negative groups. The optimized MoS 2 /Protein D immunosensor achieved an outstanding limit of detection (LOD) of 0.124 fmol L -1 and a wide linear range spanning from fmol L -1 to nmol L -1 . Clinical validation via ROC curve analysis demonstrated excellent diagnostic performance, with 100% sensitivity, 87.5% specificity, and an area under the curve (AUC) of 0.987. Furthermore, the sensor exhibited high selectivity against a panel of five other systemic mycoses (aspergillosis, histoplasmosis, sporotrichosis, coccidioidomycosis, and paracoccidioidomycosis), overcoming the specificity gaps of routine assays. These results represent a significant advance for clinical practice and highlight the potential of simple electrochemical approaches to resolve complex diagnostic problems.

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Cite This Study

Maia et al. (2026) studied this question.

synapsesocial.com/papers/6a0171983a9f334c28271b44https://doi.org/10.1016/j.bios.2026.118761
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