Person: Xie, Xiaoliang
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Publication Multicolored Stain-Free Histopathology with Coherent Raman Imaging
(Nature Publishing Group, 2012) Xie, Xiaoliang; Freudiger, Christian Wilhelm; Orringer, Daniel A.; Saar, Brian G.; Ji, Minbiao; Zeng, Qing; Ottoboni, Linda; Ying, Wei; Waeber, Christian; Sims, John R.; De Jager, Philip; Sagher, Oren; Philbert, Martin A.; Xu, Xiaoyin; Kesari, Santosh; Young, Geoffrey; Pfannl, RolfConventional histopathology with hematoxylin & eosin (H&E) has been the gold standard for histopathological diagnosis of a wide range of diseases. However, it is not performed in vivo and requires thin tissue sections obtained after tissue biopsy, which carries risk, particularly in the central nervous system. Here we describe the development of an alternative, multicolored way to visualize tissue in real-time through the use of coherent Raman imaging (CRI), without the use of dyes. CRI relies on intrinsic chemical contrast based on vibrational properties of molecules and intrinsic optical sectioning by nonlinear excitation. We demonstrate that multicolor images originating from (CH_2) and (CH_3) vibrations of lipids and protein, as well as two-photon absorption of hemoglobin, can be obtained with subcellular resolution from fresh tissue. These stain-free histopathological images show resolutions similar to those obtained by conventional techniques, but do not require tissue fixation, sectioning or staining of the tissue analyzed.
Publication Multicolor stimulated Raman scattering microscopy
(Informa UK (Taylor & Francis), 2012) Lu, Fake; Ji, Minbiao; Fu, Dan; Ni, Xiaohui; Freudiger, Christian Wilhelm; Holtom, Gary; Xie, XiaoliangStimulated Raman scattering (SRS) microscopy has opened up a wide range of biochemical imaging applications by probing a particular Raman-active molecule vibrational mode in the specimen. However, the original implementation with picosecond pulse excitation can only realize rapid chemical mapping with a single Raman band. Here we present a novel SRS microscopic technique using a grating-based pulse shaper for excitation and a grating-based spectrograph for detection to achieve simultaneous multicolor SRS imaging with high sensitivity and high acquisition speeds. In particular, we use a linear combination of the measured (CH_2) and (CH_3) stretching signals to map the distributions of protein and lipid contents simultaneously.
Publication Label-Free Live-Cell Imaging of Nucleic Acids Using Stimulated Raman Scattering Microscopy
(John Wiley and Sons, 2012) Zhang, Xu; Roeffaers, Maarten B. J.; Basu, Srinjan; Daniele, Joseph R.; Fu, Dan; Freudiger, Christian Wilhelm; Holtom, Gary R.; Xie, XiaoliangImaging of nucleic acids is important for studying cellular processes such as cell division and apoptosis. A noninvasive label-free technique is attractive. Raman spectroscopy provides rich chemical information based on specific vibrational peaks. However, the signal from spontaneous Raman scattering is weak and long integration times are required, which drastically limits the imaging speed when used for microscopy. Coherent Raman scattering techniques, comprising coherent anti-Stokes Raman scattering (CARS) and stimulated Raman scattering (SRS) microscopy, overcome this problem by enhancing the signal level by up to five orders of magnitude. CARS microscopy suffers from a nonresonant background signal, which distorts Raman spectra and limits sensitivity. This makes CARS imaging of weak transitions in spectrally congested regions challenging. This is especially the case in the fingerprint region, where nucleic acids show characteristic peaks. The recently developed SRS microscopy is free from these limitations; excitation spectra are identical to those of spontaneous Raman and sensitivity is close to shot-noise limited. Herein we demonstrate the use of SRS imaging in the fingerprint region to map the distribution of nucleic acids in addition to proteins and lipids in single salivary gland cells of Drosophila larvae, and in single mammalian cells. This allows the imaging of DNA condensation associated with cell division and opens up possibilities of imaging such processes in vivo.