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March 14, 2026Analytical Chemistry0 citations

Microwave-Assisted Synthesis of PNA@AuNRs with Temperature Gating for Precise Amplification of Nucleic Acids

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YLYirui LiZWZhipeng WangXSXiaodong Sun

Key Points

  • This research aims to enhance the specificity of nucleic acid amplification tests by using temperature-gated PNA@AuNRs.
  • Developed microwave-assisted method for PNA immobilization on gold nanorods
  • Utilized temperature-gated conditions for primer capture and release
  • Conducted LAMP and qPCR assays to evaluate amplification performance
  • Analyzed PNA-primer interactions and thermal effects at 60 °C
  • Tested in spiked equine serum and nasal samples for accuracy
  • Achieved limit of quantification of 10<sup>2</sup> copies/μL for PNA@AuNRs-LAMP with strong linearity (R<sup>2</sup> = 0.991)
  • Reached 10 copies/μL limit for PNA@AuNRs-qPCR with excellent linearity (R<sup>2</sup> = 0.998)
  • PNA@AuNRs eliminated nonspecific amplification and improved detection accuracy in all tested samples
  • Demonstrated strong PNA-primer affinity and unique thermal-start effect

Abstract

Nucleic acid amplification tests are widely used for molecular diagnostics. However, primer-dimer formation and nonspecific amplification may compromise analytical accuracy and increase the risk of false-positive results. Here, temperature-gated PNA@AuNRs (peptide nucleic acid-modified gold nanorods) were introduced to improve amplification specificity. A microwave-assisted modification method efficiently immobilized PNA onto AuNRs, enabling directional primer capture at low temperature and controlled release near polymerase-optimal conditions. PNA@AuNRs-LAMP achieved a limit of quantification (LOQ) of 102 copies/μL with strong linearity (R2 = 0.991), while PNA@AuNRs-qPCR reached 10 copies/μL with excellent linearity (R2 = 0.998). Mechanistic analysis demonstrated strong PNA-primer affinity and a distinct thermal-start effect at 60 °C, absent in traditional LAMP. In spiked equine serum and nasal samples, PNA@AuNRs effectively eliminated nonspecific amplification and improved detection accuracy. These results highlight PNA@AuNRs-gated amplification as a promising strategy for high-specificity molecular diagnostics.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69b4fbeab39f7826a300c69ehttps://doi.org/10.1021/acs.analchem.5c07246
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