Feng Guangfu, Zhang Huaizu, Zhu Xiaohua, Zhang Jiaheng, Fang Jun
School of Bioscience and Biotechnology Hunan Agricultural University, Changsha 410128, China.
Key Laboratory of Chemical Biology and Traditional Chinese Medicine Research (Hunan Normal University), Ministry of Education, Changsha, Hunan 410081, China.
Biomater Sci. 2022 Apr 12;10(8):1855-1882. doi: 10.1039/d1bm01912k.
The rapid advancement of thermal materials and fluorescence spectroscopy has extensively promoted the development of micro-scale fluorescence thermometry in recent years. Based on their advantages of fast response, high sensitivity, simple operation, high spatial resolution, and non-destructive detection, fluorescence thermometers have become powerful analysis tools used to sense temperature fluctuations through fluorescent signals, especially to accurately capture living cells fluorescent signals and local temperature variations in living bodies, thus providing the most direct means for the in-depth understanding of biological processes in cells. Herein, we systematically categorize the currently reported fluorescence thermometers based on the aspects of fluorescence intensity and wavelength, reveal the intrinsic relationship between fluorescence (intensity and wavelength) and temperature response, expound the applications of fluorescence thermometers in the fields of chemical sensing and biomedicine, and analyze the challenges faced by current fluorescence thermometers based on fundamental problems and practical applications simultaneously, thus highlighting the future directions of fluorescence thermometers.
近年来,热学材料和荧光光谱技术的快速发展极大地推动了微尺度荧光测温技术的发展。基于其响应速度快、灵敏度高、操作简单、空间分辨率高和无损检测等优点,荧光温度计已成为通过荧光信号来感知温度波动的强大分析工具,尤其是能够准确捕捉活细胞的荧光信号和生物体内的局部温度变化,从而为深入了解细胞内的生物过程提供了最直接的手段。在此,我们基于荧光强度和波长方面对目前报道的荧光温度计进行系统分类,揭示荧光(强度和波长)与温度响应之间的内在关系,阐述荧光温度计在化学传感和生物医学领域的应用,并同时从基本问题和实际应用的角度分析当前荧光温度计面临的挑战,从而突出荧光温度计的未来发展方向。