Bar Ilan University, The Faculty of Engineering and the Institute of Nanotechnology and Advanced Materials, Ramat Gan, Israel.
J Biomed Opt. 2023 May;28(5):056001. doi: 10.1117/1.JBO.28.5.056001. Epub 2023 May 23.
Wide-field measurements of time-resolved fluorescence anisotropy (TR-FA) provide pixel-by-pixel information about the rotational mobility of fluorophores, reflecting changes in the local microviscosity and other factors influencing the fluorophore's diffusional motion. These features offer promising potential in many research fields, including cellular imaging and biochemical sensing, as demonstrated by previous works. Nevertheless, imaging is still rarely investigated in general and in carbon dots (CDs) in particular.
To extend existing frequency domain (FD) fluorescence lifetime (FLT) imaging microscopy (FLIM) to FD TR-FA imaging (TR-FAIM), which produces visual maps of the FLT and , together with the steady-state images of fluorescence intensity (FI) and FA ().
The proof of concept of the combined FD FLIM/ FD TR-FAIM was validated on seven fluorescein solutions with increasing viscosities and was applied for comprehensive study of two types of CD-gold nano conjugates.
The FLT of fluorescein samples was found to decrease from to , whereas both and were significantly increased from to and to , respectively. In addition, the attachment of gold to the two CDs resulted in an increase in the FI due to metal-enhanced fluorescence. Moreover, it resulted in an increase of from to and from to for the first CDs and from to and to for the second CDs. These trends are due to the size increase of the CDs-gold compared to CDs alone. The FLT presented relatively modest changes in CDs.
Through the combined FD FLIM/ FD TR-FAIM, a large variety of information can be probed (FI, FLT, , and ). Nevertheless, was the most beneficial, either by probing the spatial changes in viscosity or by evident variations in the peak and full width half maximum.
宽场测量时间分辨荧光各向异性(TR-FA)提供了关于荧光团旋转迁移率的逐像素信息,反映了局部微粘度和其他影响荧光团扩散运动的因素的变化。这些特性在许多研究领域都具有很大的潜力,包括细胞成像和生化传感,正如之前的工作所证明的那样。然而,总的来说,成像在一般情况下,特别是在碳点(CDs)中,仍然很少被研究。
将现有的频域(FD)荧光寿命(FLT)成像显微镜(FLIM)扩展到 FD TR-FA 成像(TR-FAIM),该方法生成 FLT 和 的可视化图谱,以及荧光强度(FI)和 FA()的稳态图像。
在七种具有不同粘度的荧光素溶液上验证了联合 FD FLIM/FD TR-FAIM 的概念验证,并将其应用于两种类型的 CD-金纳米复合物的综合研究。
荧光素样品的 FLT 从 降低到 ,而 和 分别从 增加到 和 到 。此外,金与两种 CDs 的结合导致由于金属增强荧光,FI 增加。此外,对于第一类 CDs,从 增加到 ,从 增加到 ,对于第二类 CDs,从 增加到 ,从 增加到 。这些趋势是由于 CDs-金的尺寸与 CDs 相比增加所致。FLT 在 CDs 中变化相对较小。
通过联合 FD FLIM/FD TR-FAIM,可以探测到大量的信息(FI、FLT、、)。然而,是最有益的,无论是通过探测粘度的空间变化,还是通过明显的峰值和半峰全宽变化。