Laboratory for Fundamental BioPhotonics (LBP), Institute of Bioengineering (IBI), School of Engineerinsg (STI), École Polytechnique Fédérale de Lausanne (EPFL), CH-1015 Lausanne, Switzerland.
Ekspla Ltd., Savanoriu Ave. 237, LT-02300 Vilnius, Lithuania.
Biointerphases. 2023 May 1;18(3). doi: 10.1116/6.0002640.
Cell-sized giant unilamellar vesicles (GUVs) are an ideal tool for understanding lipid membrane structure and properties. Label-free spatiotemporal images of their membrane potential and structure would greatly aid the quantitative understanding of membrane properties. In principle, second harmonic imaging is a great tool to do so, but the low degree of spatial anisotropy that arises from a single membrane limits its application. Here, we advance the use of wide-field high throughput SH imaging by SH imaging with the use of ultrashort laser pulses. We achieve a throughput improvement of 78% of the maximum theoretical value and demonstrate subsecond image acquisition times. We show how the interfacial water intensity can be converted into a quantitative membrane potential map. Finally, for GUV imaging, we compare this type of nonresonant SH imaging to resonant SH imaging and two photon imaging using fluorophores.
细胞大小的巨型单分子层囊泡 (GUVs) 是理解脂质膜结构和性质的理想工具。对其膜电位和结构进行无标记的时空成像将极大地帮助人们定量理解膜性质。原则上,二次谐波成像 (SHG) 是一种很好的工具,但由于单个膜产生的低空间各向异性限制了其应用。在这里,我们通过使用超短激光脉冲的 SHG 来推进宽场高通量 SH 成像的应用。我们实现了最大理论值的 78%的吞吐量提高,并展示了亚秒级的图像采集时间。我们展示了如何将界面水强度转换为定量的膜电位图。最后,对于 GUV 成像,我们将这种类型的非共振 SH 成像与使用荧光团的共振 SH 成像和双光子成像进行了比较。