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随着脉冲重复率的增加改善时间聚焦显微镜的信号和光漂白特性

Improving Signal and Photobleaching Characteristics of Temporal Focusing Microscopy with the Increase in Pulse Repetition Rate.

作者信息

Lisicovas Viktoras, Mariserla Bala Murali Krishna, Sahoo Chakradhar, Harding Reuben T, Man Michael K L, Wong E Laine, Madéo Julien, Dani Keshav M

机构信息

Femtosecond Spectroscopy Unit, Okinawa Institute of Science and Technology Graduate University, 1919-1 Tancha, Onna-son, Okinawa 904-0495, Japan.

Department of Physics, Indian Institute of Technology, Jodhpur, Rajasthan 342037, India.

出版信息

Methods Protoc. 2019 Jul 28;2(3):65. doi: 10.3390/mps2030065.

Abstract

Wide-field temporal focused (WF-TeFo) two-photon microscopy allows for the simultaneous imaging of a large planar area, with a potential order of magnitude enhancement in the speed of volumetric imaging. To date, low repetition rate laser sources with over half a millijoule per pulse have been required in order to provide the high peak power densities for effective two-photon excitation over the large area. However, this configuration suffers from reduced signal intensity due to the low repetition rate, saturation effects due to increased excitation fluences, as well as faster photobleaching of the fluorescence probe. In contrast, with the recent advent of high repetition rate, high pulse energy laser systems could potentially provide the advantages of high repetition rate systems that are seen in traditional two-photon microscopes, while minimizing the negatives of high fluences in WF-TeFo setups to date. Here, we use a 100 microjoule/high repetition rate (50-100 kHz) laser system to investigate the performance of a WF-TeFo two-photon microscope. While using micro-beads as a sample, we demonstrate a proportionate increase in signal intensity with repetition rate, at no added cost in photobleaching. By decreasing pulse intensity, via a corresponding increase in repetition rate to maintain fluorescence signal intensity, we find that the photobleaching rate is reduced by ~98.4%. We then image live at a high repetition rate for 25 min. as a proof-of-principle. Lastly, we identify the steady state temperature increase as the limiting process in further increasing the repetition rate, and we estimate that repetition rate in the range between 0.5 and 5 MHz is ideal for live imaging with a simple theoretical model. With new generation low-cost fiber laser systems offering high pulse energy/high repetition rates in what is essentially a turn-key solution, we anticipate increased adoption of this microscopy technique by the neuroscience community.

摘要

宽场时间聚焦(WF-TeFo)双光子显微镜能够同时对大面积平面区域进行成像,在体积成像速度上有潜在的数量级提升。迄今为止,为了在大面积上提供有效的双光子激发所需的高峰值功率密度,一直需要使用每脉冲能量超过半毫焦的低重复率激光源。然而,这种配置存在因重复率低导致信号强度降低、因激发通量增加导致饱和效应以及荧光探针更快光漂白等问题。相比之下,随着高重复率、高脉冲能量激光系统的近期出现,有可能提供传统双光子显微镜中所见的高重复率系统的优势,同时将迄今为止WF-TeFo设置中高通量的负面影响降至最低。在这里,我们使用一个100微焦/高重复率(50 - 100千赫)的激光系统来研究WF-TeFo双光子显微镜的性能。在使用微珠作为样本时,我们证明了信号强度随重复率成比例增加,且光漂白没有额外成本。通过降低脉冲强度,相应提高重复率以保持荧光信号强度,我们发现光漂白率降低了约98.4%。然后我们以高重复率对活样本成像25分钟作为原理验证。最后,我们确定稳态温度升高是进一步提高重复率的限制过程,并且我们用一个简单的理论模型估计,0.5至5兆赫范围内的重复率对于活样本成像来说是理想的。随着新一代低成本光纤激光系统以基本上是交钥匙解决方案的形式提供高脉冲能量/高重复率,我们预计神经科学界会更多地采用这种显微镜技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2af3/6789829/253b57e6778f/mps-02-00065-g001.jpg

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