Mahle Reddhy, Mandal Debabrata, Kumbhakar Partha, Chandra Amreesh, Tiwary Chandra Sekhar, Banerjee Rintu
Agricultural and Food Engineering Department, Indian Institute of Technology Kharagpur, India.
Biomater Sci. 2021 Jan 5;9(1):157-166. doi: 10.1039/d0bm01206h.
Quantum dots (QDs) as bio-detectors have been intensively explored owing to their size dependent optical properties and are still envisioned to be used in a plethora of biomedical and healthcare areas. However, the medical application of the biosensors demands the ultrasensitive detection of the analytes, which is usually limited for the conventional methods of colorimetric and fluorescence detection. The Fluorescence Resonance Energy Transfer (FRET) process, exploited by QDs, translates the close association between the analyte and the detector into optical properties and thus promises the effective detection of biomolecules. FRET based detection systems for biomolecules utilize surface-functionalized QDs which are usually modified post production using different organic groups. In this work, a novel protocol was formulated to produce bio-functionalized QDs with controlled chemical and optical characteristics. Here, we demonstrate the first-ever biological green synthesis of MoS2 QDs using Pseudomonas aeruginosa. The bio-functionalized QDs show green luminescence with a quantum yield of 42%, supporting their application as an optical sensor. These QDs are utilized to detect the pico-molar concentration of glucose, which makes them ideal for early diabetes detection and many biomedical applications. Also, the ability to sense pico-molar levels of H2O2 opens the path for its utilization in apprehending the plant signaling pathways under stress conditions.
量子点(QDs)作为生物探测器,因其依赖尺寸的光学特性而受到广泛研究,并且仍被设想用于众多生物医学和医疗保健领域。然而,生物传感器的医学应用需要对分析物进行超灵敏检测,这对于传统的比色和荧光检测方法来说通常是有限的。量子点利用的荧光共振能量转移(FRET)过程,将分析物与探测器之间的紧密关联转化为光学特性,从而有望有效检测生物分子。基于FRET的生物分子检测系统使用表面功能化的量子点,这些量子点通常在生产后使用不同的有机基团进行修饰。在这项工作中,制定了一种新颖的方案来生产具有可控化学和光学特性的生物功能化量子点。在此,我们展示了首次使用铜绿假单胞菌进行二硫化钼量子点的生物绿色合成。生物功能化量子点呈现绿色发光,量子产率为42%,支持它们作为光学传感器的应用。这些量子点用于检测皮摩尔浓度的葡萄糖,这使其非常适合早期糖尿病检测和许多生物医学应用。此外,检测皮摩尔水平过氧化氢的能力为其在应激条件下理解植物信号通路的应用开辟了道路。