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May 6, 2026Biosensors0 citationsOpen Access

Ultrasensitive Dopamine Detection in Undiluted Serum with a Disposable Electrochemical Sensor Employing MOF-Derived Gold Nanocomposites

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RSRohan SagarHWHsiao‐Wei WenCWChing-Chou Wu

Key Points

  • This research aims to develop a high-performance electrochemical sensor for dopamine detection in undiluted serum samples.
  • Utilized screen-printed carbon electrodes modified with MOF-derived gold nanocomposites for sensor construction.
  • Optimized the synthesis of gold nanocomposites through varying NaBH4 reduction times.
  • Evaluated sensor performance in undiluted porcine and human serum samples, assessing detection limits and dynamic range.
  • Achieved a dynamic range of 2.5–500 nM in porcine serum and 5–100 nM in human serum.
  • The sensor demonstrated detection limits of 0.5 nM for porcine serum and 4.4 nM for human serum.
  • Showed excellent reproducibility with a 3% relative standard deviation over seven days and only 7.5% current loss.

Abstract

Dopamine (DA) is essential for motor control, motivation, and cognition, and its dysregulation is associated with neurological and psychiatric disorders such as Parkinson’s disease, schizophrenia, and addiction. Accurate and selective DA quantification in complex biological matrices is important, but remains challenging because of coexisting interferents and the low physiological concentration of DA. Here, we report a disposable electrochemical DA sensor based on screen-printed carbon electrodes (SPCEs) modified with metal–organic framework-derived gold nanocomposites (MOFD-AuNCs). The optimal material, synthesized with a 60 min NaBH4 reduction step (MOFD-AuNC-60), exhibited superior electron-transfer kinetics compared with materials prepared at other reduction times. A single coating of MOFD-AuNC-60 on SPCEs enabled DA oxidation at a low potential (~0.05 V) with high selectivity in the presence of ascorbic acid and uric acid. In undiluted porcine serum, the sensor exhibited a dynamic range of 2.5–500 nM with a calculated detection limit of 0.5 nM. In undiluted human serum, it exhibited a dynamic range of 5–100 nM with a calculated detection limit of 4.4 nM. The MOFD-AuNC-60/SPCEs further demonstrated excellent reproducibility (relative standard deviation, 3%) and stability (7.5% current loss over 7 days). These results demonstrate that the proposed sensor provides a disposable, robust, and reliable sensing platform for direct DA detection in undiluted serum, showing promise for practical applications.

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Cite This Study

Sagar et al. (2026) studied this question.

synapsesocial.com/papers/69fa97ce04f884e66b531983https://doi.org/10.3390/bios16050255
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