Near-Infrared Fluorescent Proteins and Their Applications

被引:0
作者
M. M. Karasev
O. V. Stepanenko
K. A. Rumyantsev
K. K. Turoverov
V. V. Verkhusha
机构
[1] Russian Academy of Sciences,Institute of Cytology
[2] Medicum,undefined
[3] University of Helsinki,undefined
[4] Albert Einstein College of Medicine,undefined
[5] Loginov Moscow Clinical Scientific Center,undefined
[6] Peter the Great St. Petersburg Polytechnic University,undefined
来源
Biochemistry (Moscow) | 2019年 / 84卷
关键词
fluorescent proteins; biomarkers; bacterial phytochromes; visualization; fluorescence; bioluminescence; biosensors;
D O I
暂无
中图分类号
学科分类号
摘要
High transparency, low light-scattering, and low autofluorescence of mammalian tissues in the near-infrared (NIR) spectral range (~650–900 nm) open a possibility for in vivo imaging of biological processes at the micro-and macroscales to address basic and applied problems in biology and biomedicine. Recently, probes that absorb and fluoresce in the NIR optical range have been engineered using bacterial phytochromes–natural NIR light-absorbing photoreceptors that regulate metabolism in bacteria. Since the chromophore in all these proteins is biliverdin, a natural product of heme catabolism in mammalian cells, they can be used as genetically encoded fluorescent probes, similarly to GFP-like fluorescent proteins. In this review, we discuss photophysical and biochemical properties of NIR fluorescent proteins, reporters, and biosensors and analyze their characteristics required for expression of these molecules in mammalian cells. Structural features and molecular engineering of NIR fluorescent probes are discussed. Applications of NIR fluorescent proteins and biosensors for studies of molecular processes in cells, as well as for tissue and organ visualization in whole-body imaging in vivo, are described. We specifically focus on the use of NIR fluorescent probes in advanced imaging technologies that combine fluorescence and bioluminescence methods with photoacoustic tomography.
引用
收藏
页码:32 / 50
页数:18
相关论文
共 706 条
[1]  
Weissleder R.(2003)Shedding light onto live molecular targets Nat. Med. 9 123-128
[2]  
Ntziachristos V.(2001)A clearer vision for in vivo imaging Nat. Biotechnol. 19 316-317
[3]  
Weissleder R.(2017)Near–infrared fluorophores for biomedical imaging Nat. Biomed. Eng. 1 0010-319
[4]  
Hong G.(2014)In vivo image analysis using iRFP transgenic mice Exp. Anim. 63 311-1894
[5]  
Antaris A. L.(2014)Assessing in vitro stem–cell function and tracking engraftment of stem cells in ischaemic hearts by using novel iRFP gene labelling J. Cell. Mol. Med. 18 1889-88
[6]  
Dai H.(2013)Extended stokes shift in fluorescent proteins: chro–mophore–protein interactions in a near–infrared TagRFP675 variant Sci. Rep. 3 1847-761
[7]  
Tran M. T. N.(2011)Bacterial phy–tochromes: more than meets the light Crit. Rev. Biochem. Mol. Biol. 46 67-754
[8]  
Tanaka J.(2011)Bright and stable near–infrared fluorescent protein for in vivo imaging Nat. Biotechnol. 29 757-807
[9]  
Hamada M.(2013)Near–infrared fluorescent proteins for multicolor in vivo imaging Nat. Methods 10 751-17339
[10]  
Sugiyama Y.(2009)Mammalian expression of infrared fluorescent proteins engineered from a bacterial phytochrome Science 324 804-1180