Pantl Orsolya, Chiovini Balázs, Szalay Gergely, Turczel Gábor, Kovács Ervin, Mucsi Zoltán, Rózsa Balázs, Cseri Levente
BrainVisionCenter, 43-45 Liliom Str., H-1094 Budapest, Hungary.
Laboratory of 3D Functional Network and Dendritic Imaging, HUN-REN Institute of Experimental Medicine, 43 Szigony Str., H-1083 Budapest, Hungary.
ACS Appl Mater Interfaces. 2024 Oct 5;16(41):55107-17. doi: 10.1021/acsami.4c10861.
The advancements in targeted drug release and experimental neuroscience have amplified the scientific interest in photolabile protecting groups (PPGs) and photouncaging. The growing need for the detection of uncaging events has led to the development of reporters with fluorescence turn-on upon uncaging. In contrast, fluorescent tags with turn-off properties have been drastically underexplored, although there are applications where they would be sought after. In this work, a rhodamine-based fluorescent tag is developed with signal turn-off following photouncaging. One-photon photolysis experiments reveal a ready loss of red fluorescence signal upon UV (365 nm) irradiation, while no significant change is observed in control experiments in the absence of PPG or with irradiation around the absorption maximum of the fluorophore (595 nm). The two-photon photolysis of the turn-off fluorescent tag is explored in hydrogel photolithography experiments. The hydrogel-bound tag enables the power-, dwell time-, and wavelength-dependent construction of intricate patterns and gradients. Finally, a prominent caged neurotransmitter (MNI-Glu) is modified with the fluorescent tag, resulting in the glutamate precursor named as GlutaTrace with fluorescence traceability and turn-off upon photouncaging. GlutaTrace is successfully applied for the visualization of glutamate precursor distribution following capillary microinjection and for the selective excitation of neurons in a mouse brain model.
靶向药物释放和实验神经科学的进展激发了科学界对光不稳定保护基团(PPG)和光解笼技术的兴趣。对解笼事件检测的需求不断增加,促使人们开发出在解笼时荧光开启的报告分子。相比之下,具有荧光关闭特性的荧光标签尽管在某些应用中备受青睐,但却未得到充分研究。在这项工作中,我们开发了一种基于罗丹明的荧光标签,其在光解笼后信号关闭。单光子光解实验表明,在紫外光(365nm)照射下,红色荧光信号迅速消失,而在没有PPG或在荧光团吸收最大值附近(595nm)照射的对照实验中未观察到明显变化。在水凝胶光刻实验中探索了这种关闭型荧光标签的双光子光解。与水凝胶结合的标签能够构建出依赖于功率、停留时间和波长的复杂图案和梯度。最后,一种著名的笼形神经递质(MNI-Glu)用这种荧光标签进行了修饰,得到了名为GlutaTrace的谷氨酸前体,它具有荧光可追溯性且在光解笼时荧光关闭。GlutaTrace成功应用于毛细管显微注射后谷氨酸前体分布的可视化以及小鼠脑模型中神经元的选择性激发。