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本文引用的文献

1
Ultraviolet confocal fluorescence microscopy of the in vitro cornea: redox metabolic imaging.体外角膜的紫外共聚焦荧光显微镜检查:氧化还原代谢成像
Appl Opt. 1993 Feb 1;32(4):592-6. doi: 10.1364/AO.32.000592.
2
Intratissue surgery with 80 MHz nanojoule femtosecond laser pulses in the near infrared.使用近红外波段80兆赫兹纳焦飞秒激光脉冲进行组织内手术。
Opt Express. 2002 Feb 11;10(3):171-6. doi: 10.1364/oe.10.000171.
3
Interphotoreceptor retinoid-binding protein is the physiologically relevant carrier that removes retinol from rod photoreceptor outer segments.光感受器间类视黄醇结合蛋白是从视杆光感受器外段移除视黄醇的生理相关载体。
Biochemistry. 2007 Jul 24;46(29):8669-79. doi: 10.1021/bi7004619. Epub 2007 Jun 30.
4
Second-harmonic imaging microscopy of normal human and keratoconus cornea.正常人及圆锥角膜的二次谐波成像显微镜检查
Invest Ophthalmol Vis Sci. 2007 Mar;48(3):1087-94. doi: 10.1167/iovs.06-1177.
5
Four-dimensional multiphoton confocal microscopy: the new frontier in cellular imaging.四维多光子共聚焦显微镜:细胞成像的新前沿。
Ocul Surf. 2004 Jan;2(1):10-20. doi: 10.1016/s1542-0124(12)70020-4.
6
Noninvasive assessment of collagen gel microstructure and mechanics using multiphoton microscopy.使用多光子显微镜对胶原凝胶微观结构和力学进行无创评估。
Biophys J. 2007 Mar 15;92(6):2212-22. doi: 10.1529/biophysj.106.097998. Epub 2006 Dec 15.
7
Multiphoton fluorescence and second harmonic generation imaging of the structural alterations in keratoconus ex vivo.圆锥角膜离体结构改变的多光子荧光和二次谐波产生成像
Invest Ophthalmol Vis Sci. 2006 Dec;47(12):5251-9. doi: 10.1167/iovs.06-0386.
8
Adaptive wavefront correction in two-photon microscopy using coherence-gated wavefront sensing.基于相干选通波前传感的双光子显微镜自适应波前校正
Proc Natl Acad Sci U S A. 2006 Nov 14;103(46):17137-42. doi: 10.1073/pnas.0604791103. Epub 2006 Nov 6.
9
Noninvasive corneal stromal collagen imaging using two-photon-generated second-harmonic signals.利用双光子产生的二次谐波信号进行无创角膜基质胶原成像。
J Cataract Refract Surg. 2006 Nov;32(11):1784-91. doi: 10.1016/j.jcrs.2006.08.027.
10
All-trans retinol in rod photoreceptor outer segments moves unrestrictedly by passive diffusion.视杆光感受器外段中的全反式视黄醇通过被动扩散不受限制地移动。
Biophys J. 2006 Dec 15;91(12):4678-89. doi: 10.1529/biophysj.106.086728. Epub 2006 Sep 29.

双光子显微镜:揭示视觉的化学奥秘。

Two-photon microscopy: shedding light on the chemistry of vision.

作者信息

Imanishi Yoshikazu, Lodowski Kerrie H, Koutalos Yiannis

机构信息

Department of Pharmacology, School of Medicine, Case Western Reserve University, Cleveland, Ohio 44106-4965, USA.

出版信息

Biochemistry. 2007 Aug 28;46(34):9674-84. doi: 10.1021/bi701055g. Epub 2007 Aug 3.

DOI:10.1021/bi701055g
PMID:17676772
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2718834/
Abstract

Two-photon microscopy (TPM) has come to occupy a prominent place in modern biological research with its ability to resolve the three-dimensional distribution of molecules deep inside living tissue. TPM can employ two different types of signals, fluorescence and second harmonic generation, to image biological structures with subcellular resolution. Two-photon excited fluorescence imaging is a powerful technique with which to monitor the dynamic behavior of the chemical components of tissues, whereas second harmonic imaging provides novel ways to study their spatial organization. Using TPM, great strides have been made toward understanding the metabolism, structure, signal transduction, and signal transmission in the eye. These include the characterization of the spatial distribution, transport, and metabolism of the endogenous retinoids, molecules essential for the detection of light, as well as the elucidation of the architecture of the living cornea. In this review, we present and discuss the current applications of TPM for the chemical and structural imaging of the eye. In addition, we address what we see as the future potential of TPM for eye research. This relatively new method of microscopy has been the subject of numerous technical improvements in terms of the optics and indicators used, improvements that should lead to more detailed biochemical characterizations of the eyes of live animals and even to imaging of the human eye in vivo.

摘要

双光子显微镜(TPM)凭借其解析活体组织深处分子三维分布的能力,在现代生物学研究中占据了显著地位。TPM可利用两种不同类型的信号,即荧光和二次谐波产生,以亚细胞分辨率对生物结构进行成像。双光子激发荧光成像技术强大,可用于监测组织化学成分的动态行为,而二次谐波成像则为研究其空间组织提供了新方法。利用TPM,在理解眼睛的代谢、结构、信号转导和信号传递方面取得了巨大进展。这些进展包括对作为光检测必需分子的内源性视黄醛的空间分布、转运和代谢的表征,以及对活体角膜结构的阐明。在本综述中,我们展示并讨论了TPM在眼睛化学和结构成像方面的当前应用。此外,我们探讨了TPM在眼睛研究方面的未来潜力。这种相对较新的显微镜方法在所用光学器件和指示剂方面经历了众多技术改进,这些改进应能对活体动物的眼睛进行更详细的生化表征,甚至实现对人眼的活体成像。