Aptamer-enabled electrochemical bioplatform utilizing surface-modified g-C3N4/MoS2/PANI nanocomposite for detection of CA125 biomarker

IF 5.4 Q1 CHEMISTRY, ANALYTICAL Sensing and Bio-Sensing Research Pub Date : 2024-06-27 DOI:10.1016/j.sbsr.2024.100669
Amin Foroozandeh , Mehrab Pourmadadi , Hossein SalarAmoli , Majid Abdouss
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Abstract

Detecting ovarian cancer at an early stage is crucial for enhancing patient outcomes, underscoring the demand for an efficient and non-invasive detection method. Cancer antigen 125 (CA125) is a vital biomarker in ovarian cancer detection, and there is a pressing demand to develop a quick, sensitive, and simple detection method. Nanobiosensors are increasingly being used by scientists due to their high selectivity and sensitivity, allowing for the swift and precise detection of a wide range of biomarkers. This study aimed to design and fabricate an electrochemical nanobiosensor that could accurately and selectively detect CA125. The nanobiosensor employed graphitic carbon nitrides, molybdenum disulfide, and polyaniline (g-C3N4/MoS2/PANI) to stabilize aptamer strands on a modified glassy carbon electrode. The aptasensor was used to perform electrochemical detection of labeled CA125, utilizing methylene blue and label-free ferrocyanide methods. Ferrocyanide and methylene blue detection limits were determined to be 0.196 U.mL−1 for ferrocyanide and 0.196 U.mL−1 for methylene blue, with a linear detection range of 2–10 U.mL−1 for linear detection. The study results showed that the modified electrode exhibited high selectivity towards CA125 and superior stability compared to other biomolecules. The electrochemical aptasensor also displayed impressive performance when analyzing the serum of patients and healthy people. These findings hold significant promise for future investigation in ovarian cancer diagnosis. This novel electrochemical nanobiosensor may aid in the early detection and management of ovarian cancer, ultimately leading to better patient outcomes.

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利用表面修饰的 g-C3N4/MoS2/PANI 纳米复合材料检测 CA125 生物标记物的色素赋能电化学生物平台
早期检测卵巢癌对提高患者的预后至关重要,因此需要一种高效、无创的检测方法。癌症抗原 125 (CA125) 是检测卵巢癌的重要生物标志物,因此迫切需要开发一种快速、灵敏、简单的检测方法。纳米生物传感器具有高选择性和高灵敏度,可快速、精确地检测多种生物标记物,因此越来越多地被科学家采用。本研究旨在设计和制造一种能够准确、选择性地检测 CA125 的电化学纳米生物传感器。该纳米生物传感器采用石墨碳氮化物、二硫化钼和聚苯胺(g-C3N4/MoS2/PANI)在改性玻璃碳电极上稳定aptamer链。该适配体传感器利用亚甲基蓝和无标记的亚铁氰化钾法对标记的 CA125 进行电化学检测。经测定,亚铁氰化铁和亚甲基蓝的检测限分别为 0.196 U.mL-1 和 0.196 U.mL-1,线性检测范围为 2-10 U.mL-1。研究结果表明,改性电极对 CA125 具有较高的选择性,而且与其他生物大分子相比具有更高的稳定性。该电化学适配传感器在分析病人和健康人的血清时也表现出令人印象深刻的性能。这些发现为未来卵巢癌诊断研究带来了重大希望。这种新型电化学纳米生物传感器可能有助于卵巢癌的早期检测和治疗,最终改善患者的预后。
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来源期刊
Sensing and Bio-Sensing Research
Sensing and Bio-Sensing Research Engineering-Electrical and Electronic Engineering
CiteScore
10.70
自引率
3.80%
发文量
68
审稿时长
87 days
期刊介绍: Sensing and Bio-Sensing Research is an open access journal dedicated to the research, design, development, and application of bio-sensing and sensing technologies. The editors will accept research papers, reviews, field trials, and validation studies that are of significant relevance. These submissions should describe new concepts, enhance understanding of the field, or offer insights into the practical application, manufacturing, and commercialization of bio-sensing and sensing technologies. The journal covers a wide range of topics, including sensing principles and mechanisms, new materials development for transducers and recognition components, fabrication technology, and various types of sensors such as optical, electrochemical, mass-sensitive, gas, biosensors, and more. It also includes environmental, process control, and biomedical applications, signal processing, chemometrics, optoelectronic, mechanical, thermal, and magnetic sensors, as well as interface electronics. Additionally, it covers sensor systems and applications, µTAS (Micro Total Analysis Systems), development of solid-state devices for transducing physical signals, and analytical devices incorporating biological materials.
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