Fluorescent Proteins as Genetically Encoded FRET Biosensors in Life Sciences

被引:129
作者
Hochreiter, Bernhard [1 ]
Garcia, Alan Pardo [1 ]
Schmid, Johannes A. [1 ]
机构
[1] Med Univ Vienna, Inst Vasc Biol & Thrombosis Res, A-1090 Vienna, Austria
基金
奥地利科学基金会;
关键词
FRET; fluorescence; biosensors; imaging; RESONANCE ENERGY-TRANSFER; LIVING CELLS; DYNAMIC-RANGE; EXTRACELLULAR-MATRIX; MOLECULAR-STRUCTURE; MECHANICAL TENSION; CASPASE ACTIVATION; FORSTER DISTANCES; KINASE-ACTIVITIES; GREEN;
D O I
10.3390/s151026281
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Fluorescence- or Forster resonance energy transfer (FRET) is a measurable physical energy transfer phenomenon between appropriate chromophores, when they are in sufficient proximity, usually within 10 nm. This feature has made them incredibly useful tools for many biomedical studies on molecular interactions. Furthermore, this principle is increasingly exploited for the design of biosensors, where two chromophores are linked with a sensory domain controlling their distance and thus the degree of FRET. The versatility of these FRET-biosensors made it possible to assess a vast amount of biological variables in a fast and standardized manner, allowing not only high-throughput studies but also sub-cellular measurements of biological processes. In this review, we aim at giving an overview over the recent advances in genetically encoded, fluorescent-protein based FRET-biosensors, as these represent the largest and most vividly growing group of FRET-based sensors. For easy understanding, we are grouping them into four categories, depending on their molecular mechanism. These are based on: (a) cleavage; (b) conformational-change; (c) mechanical force and (d) changes in the micro-environment. We also address the many issues and considerations that come with the development of FRET-based biosensors, as well as the possibilities that are available to measure them.
引用
收藏
页码:26281 / 26314
页数:34
相关论文
共 156 条
  • [1] Abbe E., 1881, J. R. Microscop. Soc., V1, P388, DOI [10.1111/j.1365-2818.1881.tb05909.x, DOI 10.1111/J.1365-2818.1881.TB05909.X]
  • [2] Crystal Structures of the GCaMP Calcium Sensor Reveal the Mechanism of Fluorescence Signal Change and Aid Rational Design
    Akerboom, Jasper
    Rivera, Jonathan D. Velez
    Guilbe, Maria M. Rodriguez
    Malave, Elisa C. Alfaro
    Hernandez, Hector H.
    Tian, Lin
    Hires, S. Andrew
    Marvin, Jonathan S.
    Looger, Loren L.
    Schreiter, Eric R.
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2009, 284 (10) : 6455 - 6464
  • [3] Forster distances for fluorescence resonant energy transfer between mCherry and other visible fluorescent proteins
    Akrap, Nina
    Seidel, Thorsten
    Barisas, B. George
    [J]. ANALYTICAL BIOCHEMISTRY, 2010, 402 (01) : 105 - 106
  • [4] Modeling T cell antigen discrimination based on feedback control of digital ERK responses
    Altan-Bonnet, G
    Germain, RN
    [J]. PLOS BIOLOGY, 2005, 3 (11) : 1925 - 1938
  • [5] Application of a fluorescence resonance energy transfer (FRET)-based biosensor for detection of drug-induced apoptosis in a 3D breast tumor model
    Anand, Padmaja
    Fu, Afu
    Teoh, Swee H.
    Luo, Kathy Q.
    [J]. BIOTECHNOLOGY AND BIOENGINEERING, 2015, 112 (08) : 1673 - 1682
  • [6] Stochastic ERK Activation Induced by Noise and Cell-to-Cell Propagation Regulates Cell Density-Dependent Proliferation
    Aoki, Kazuhiro
    Kumagai, Yuka
    Sakurai, Atsuro
    Komatsu, Naoki
    Fujita, Yoshihisa
    Shionyu, Clara
    Matsuda, Michiyuki
    [J]. MOLECULAR CELL, 2013, 52 (04) : 529 - 540
  • [7] Novel green fluorescent protein-based ratiometric indicators for monitoring pH in defined intracellular microdomains
    Awaji, T
    Hirasawa, A
    Shirakawa, H
    Tsujimoto, G
    Miyazaki, S
    [J]. BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2001, 289 (02) : 457 - 462
  • [8] Molecular nanosprings in spider capture-silk threads
    Becker, N
    Oroudjev, E
    Mutz, S
    Cleveland, JP
    Hansma, PK
    Hayashi, CY
    Makarov, DE
    Hansma, HG
    [J]. NATURE MATERIALS, 2003, 2 (04) : 278 - 283
  • [9] Fluorescence lifetime imaging - techniques and applications
    Becker, W.
    [J]. JOURNAL OF MICROSCOPY, 2012, 247 (02) : 119 - 136
  • [10] Type I cell ROS kinetics under hypoxia in the intact mouse carotid body ex vivo: a FRET-based study
    Bernardini, A.
    Brockmeier, U.
    Metzen, E.
    Berchner-Pfannschmidt, U.
    Harde, E.
    Acker-Palmer, A.
    Papkovsky, D.
    Acker, H.
    Fandrey, J.
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2015, 308 (01): : C61 - C67