基于光致发光的金纳米簇作为双光子激发比率型 pH 传感器和光激活过氧化物酶。
Photoluminescent gold nanoclusters as two-photon excited ratiometric pH sensor and photoactivated peroxidase.
机构信息
State Key Laboratory of Precision Spectroscopy, East China Normal University, No.500, Dongchuan Road, Shanghai, 200241, China.
Institut Lumière Matière UMR 5306, Université Claude Bernard Lyon 1, CNRS, Univ Lyon, F69100, Villeurbanne, France.
出版信息
Mikrochim Acta. 2023 May 17;190(6):225. doi: 10.1007/s00604-023-05803-1.
A two-photon excited ratiometric fluorescent pH sensor is reported by combining L-cysteine-protected AuNCs (Cys@AuNCs) with fluorescein isothiocyanate (FITC). Cys@AuNCs were synthesized through a one-step self-reduction route and showed pH-responsive photoluminescence at 650 nm. Benefiting from the opposite pH response of Cys@AuNCs and FITC, the fluorescence ratio (F/F) of FITC&Cys@AuNCs provided a large dynamic range of 200-fold for pH measurement in the response interval of pH 5.0-8.0. Based on the excellent two-photon absorption coefficient of Cys@AuNCs, the sensor was expected to achieve sensitive quantitation of pH in living cells under two-photon excitation. In addition, colorimetric biosensing based on enzyme-like metal nanoclusters has attracted wide attention due to their low-cost, simplicity, and practicality. It is crucial to develop high catalytic activity nanozyme from the viewpoint of practical application. The synthesized Cys@AuNCs exhibited excellent photoactivated peroxidase-like activity with high substrate affinity and catalytic reaction rate, promising for rapid colorimetric biosensing of field analysis and the control of catalytic reactions by photostimulation.
本文报道了一种双光子激发比率荧光 pH 传感器,它是通过将半胱氨酸保护的金纳米团簇(Cys@AuNCs)与异硫氰酸荧光素(FITC)结合而得到的。Cys@AuNCs 通过一步自还原法合成,在 650nm 处表现出 pH 响应的光致发光。受益于 Cys@AuNCs 和 FITC 的相反 pH 响应,FITC&Cys@AuNCs 的荧光比值(F/F)在 pH 5.0-8.0 的响应区间内提供了 200 倍的大动态测量范围。基于 Cys@AuNCs 的优异双光子吸收系数,该传感器有望在双光子激发下实现活细胞中 pH 的灵敏定量。此外,基于酶样金属纳米簇的比色生物传感由于其低成本、简单性和实用性而引起了广泛关注。从实际应用的角度来看,开发具有高催化活性的纳米酶至关重要。合成的 Cys@AuNCs 表现出优异的光激活过氧化物酶样活性,具有高底物亲和力和催化反应速率,有望用于快速比色生物传感现场分析和光刺激控制催化反应。