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同时多激发多光子显微镜提高了成像的灵敏度和特异性。

Simultaneous multiple-excitation multiphoton microscopy yields increased imaging sensitivity and specificity.

机构信息

Department of Neuroscience and Biomedical Graduate Program, Howard Hughes Medical Institute, University of California, San Diego, La Jolla, CA 92093, USA.

出版信息

BMC Biotechnol. 2011 Mar 2;11:20. doi: 10.1186/1472-6750-11-20.

Abstract

BACKGROUND

Multiphoton microscopy (MPM) offers many advantages over conventional wide-field and confocal laser scanning microscopy (CLSM) for imaging biological samples such as 3D resolution of excitation, reduced phototoxicity, and deeper tissue imaging. However, adapting MPM for critical multi-color measurements presents a challenge because of the largely overlapping two-photon absorption (TPA) peaks of common biological fluorophores. Currently, most multi-color MPM relies on the absorbance at one intermediate wavelength of multiple dyes, which introduces problems such as decreased and unequal excitation efficiency across the set of dyes.

RESULTS

Here we describe an MPM system incorporating two, independently controlled sources of two-photon excitation whose wavelengths are adjusted to maximally excite one dye while minimally exciting the other. We report increased signal-to-noise ratios and decreased false positive emission bleed-through using this novel multiple-excitation MPM (ME-MPM) compared to conventional single-excitation MPM (SE-MPM) in a variety of multi-color imaging applications.

CONCLUSIONS

Similar to the tremendous gain in popularity of CLSM after the introduction of multi-color imaging, we anticipate that the ME-MPM system will further increase the popularity of MPM. In addition, ME-MPM provides an excellent tool to more rapidly design and optimize pairs of fluorescence probes for multi-color two-photon imaging, such as CFP/YFP or GFP/DsRed for CLSM.

摘要

背景

多光子显微镜 (MPM) 在对生物样本进行成像时,相较于传统宽场和共聚焦激光扫描显微镜 (CLSM) 具有诸多优势,例如激发的三维分辨率、降低光毒性和更深的组织成像。然而,由于常见生物荧光团的双光子吸收 (TPA) 峰大部分重叠,因此适应 MPM 进行关键的多色测量具有一定挑战性。目前,大多数多色 MPM 依赖于多种染料的一个中间波长的吸收,这会导致激发效率降低和不均一等问题。

结果

在这里,我们描述了一种 MPM 系统,该系统包含两个独立控制的双光子激发源,其波长被调整为最大限度地激发一种染料,同时最小化对另一种染料的激发。与传统的单激发 MPM (SE-MPM) 相比,我们在各种多色成像应用中报告了使用这种新型多激发 MPM (ME-MPM) 可提高信噪比和降低假阳性发射漏泄。

结论

类似于多色成像引入后 CLSM 受欢迎程度的大幅提高,我们预计 ME-MPM 系统将进一步提高 MPM 的受欢迎程度。此外,ME-MPM 为设计和优化多色双光子成像的荧光探针对(如 CFP/YFP 或 GFP/DsRed 用于 CLSM)提供了极好的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/384b/3062589/e71fbd1fba36/1472-6750-11-20-1.jpg

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