Fluorescent protein applications in plants

被引:55
作者
Berg, R. Howard [1 ]
Beachy, Roger N. [1 ]
机构
[1] Donald Danforth Plant Sci Ctr, Integrated Microscopy Facil, St Louis, MO 63132 USA
来源
FLUORESCENT PROTEINS, SECOND EDITION | 2008年 / 85卷
关键词
D O I
10.1016/S0091-679X(08)85008-X
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Study of plant cell biology has benefited tremendously from the use of fluorescent proteins (FPs). Development of well-established techniques in genetics, by transient expression or by Agrobacterium-mediated plant cell transformation, makes it possible to readily create material for imaging molecules tagged with FPs. Confocal microscopy of FPs is routine and, in highly scattering tissues, multiphoton microscopy improves deep imaging. The abundance of autofluorescent compounds in plants in some cases potentially interferes with FP signals, but spectral imaging is an effective tool in unmixing overlapping signals. This approach allows separate detection of DsRed and chlorophyll, DsRed and GFP, and green fluorescent protein (GFP) and yellow fluorescent protein (YFP). FPs have been targeted to most plant organelles. Free (untargeted) FPs in plant cells are not only cytoplasmic, but also go into the nucleus due to their small size. FP fluorescence is potentially unstable in acidic vacuoles. FPs have been targeted to novel compartments, including protein storage vacuoles in seeds. Endoplasmic reticulum (ER)-targeted GFP has identified novel inclusion bodies that are surprisingly dynamic. FP-tagged Rab GTPases have allowed documentation of the dynamics of membrane trafficking. Investigation of virus infections has progressed significantly with the aid of FP-tagged virus proteins. Advanced techniques are giving plant scientists the ability to quantitatively analyze the behavior of FP-tagged proteins. Fluorescence lifetime microscopy is becoming the method of choice for fluorescence resonance energy transfer (FRET) analysis of FP-tagged proteins. Fluorescence correlation spectroscopy (FCS) of FPs provides information on molecular diffusion and intermolecular interactions. Use of FPs in elucidating the behavior of plant cells has a bright future.
引用
收藏
页码:153 / +
页数:27
相关论文
共 63 条
[31]   Two fluorescent markers identify the vacuolar system of Schizophyllum commune [J].
Inselman, AL ;
Gathman, AC ;
Lilly, WW .
CURRENT MICROBIOLOGY, 1999, 38 (05) :295-299
[32]  
Kohl T, 2005, ADV BIOCHEM ENG BIOT, V95, P107
[33]  
Köhler RH, 2000, J CELL SCI, V113, P3921
[34]   Ecdysone agonist-inducible expression of a coat protein gene from tobacco mosaic virus confers viral resistance in transgenic Arabidopsis [J].
Koo, JC ;
Asurmendi, S ;
Bick, J ;
Woodford-Thomas, T ;
Beachy, RN .
PLANT JOURNAL, 2004, 37 (03) :439-448
[35]   Shining light on signaling and metabolic networks by genetically encoded biosensors [J].
Lalonde, S ;
Ehrhardt, DW ;
Frommer, WB .
CURRENT OPINION IN PLANT BIOLOGY, 2005, 8 (06) :574-581
[36]   Viral movement proteins as probes for intracellular and intercellular trafficking in plants [J].
Lazarowitz, SG ;
Beachy, RN .
PLANT CELL, 1999, 11 (04) :535-548
[37]  
Lorence Argelia, 2004, Methods Mol Biol, V267, P329
[38]  
Lukyanov KA, 2006, METHOD BIOCHEM ANAL, V47, P121
[39]   Distribution of TMV movement protein in single living protoplasts immobilized in agarose [J].
Más, P ;
Beachy, RN .
PLANT JOURNAL, 1998, 15 (06) :835-842
[40]   NAI1 gene encodes a basic-helix-loop-helix-type putative transcription factor that regulates the formation of an endoplasmic reticulum-derived structure, the ER body [J].
Matsushima, R ;
Fukao, Y ;
Nishimura, M ;
Hara-Nishimura, I .
PLANT CELL, 2004, 16 (06) :1536-1549