4.7 Article

On-bead DNA synthesis triggered by allosteric probe for detection of carcinoembryonic antigen

期刊

MICROCHIMICA ACTA
卷 189, 期 8, 页码 -

出版社

SPRINGER WIEN
DOI: 10.1007/s00604-022-05404-4

关键词

Allosteric probe; Protein biomarker detection; Colorimetry; DNA synthesis; Magnetic separation; Carcinoembryonic antigen

资金

  1. Guangxi Natural Science Foundation [2021JJB130333]
  2. National Natural Science Foundation of China [81260245]
  3. Middle-aged and Young Teachers' Basic Ability Promotion Project of Guangxi [2020KY03011]

向作者/读者索取更多资源

This article introduces an on-bead DNA synthesis system for amplifying protein signals, which can sensitively quantify protein biomarkers and has great potential for clinical applications.
Sensitive quantification of protein biomarkers is highly desired for clinical diagnosis and treatment. Yet, unlike DNA/RNA which can be greatly amplified by PCR/RT-PCR, the amplification and detection of trace amount of proteins remain a great challenge. Here, we combined allosteric probe (AP) with magnetic bead (MB) for assembling an on-bead DNA synthesis system (named as APMB) to amplify protein signals. The AP is designed and conjugated onto the MB, enabling the protein biomarker to be separated and enriched. Once recognizing the biomarker, the AP alters its conformation to initiate DNA synthesis on beads for primary signal amplification. During the DNA synthesis, biotin-dATPs are incorporated into the newly synthesized DNA strands. Then, the biotin-labeled DNA specifically captures streptavidin (STR)-conjugated horseradish peroxidase (HRP), which is used to catalyze a colorimetric reaction for secondary signal amplification. By using carcinoembryonic antigen (CEA) as a protein model, the APMB can quantify protein biomarkers of as low as 0.01 ng/mL. The response values measured by APMB are linearly related to the protein concentrations in the range 0.05 to 20 ng/mL. Clinical examination demonstrated good practicability of the APMB in quantifying serum protein biomarker. The on-bead DNA synthesis could be exploited to improve protein signal amplification, thus facilitating protein biomarker detection of low abundance for early diagnosis.

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