Parallel confocal detection of single biomolecules using diffractive optics and integrated detector units

被引:10
作者
Blom, H [1 ]
Gösch, M [1 ]
机构
[1] Karolinska Inst, Dept Med Biophys, SE-17177 Stockholm, Sweden
关键词
multiplexed excitation and detection; parallel confocal spectroscopy; high throughput screening; and fluorescence; fluctuation analysis;
D O I
10.2174/1389201043377011
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The past few years we have witnessed a tremendous surge of interest in so-called array-based miniaturised analytical systems due to their value as extremely powerful tools for high-throughput sequence analysis, drug discovery and development, and diagnostic tests in medicine (see articles in Issue 1). Terminologies that have been used to describe these array-based bioscience systems include (but are not limited to): DNA-chip, microarrays, microchip, biochip, DNA-microarrays and genome chip. Potential technological benefits of introducing these miniaturised analytical systems include improved accuracy, multiplexing, lower sample and reagent consumption, disposability, and decreased analysis times, just to mention a few examples. Among the many alternative principles of detection-analysis (e.g. chemiluminescence, electroluminescence and conductivity), fluo re scence-based techniques are widely used, examples being fluorescence resonance energy transfer, fluorescence quenching, fluorescence polarisation, time-resolved fluorescence, and fluorescence fluctuation spectroscopy (see articles in Issue II). Time-dependent fluctuations of fluorescent biomolecules with different molecular properties, like molecular weight, translational and rotational diffusion time, colour and lifetime, potentially provide all the kinetic and thermodynamic information required in analysing complex interactions. In this mini-review article, we present recent extensions aimed to implement parallel laser excitation and parallel fluorescence detection that can lead to even further increase in throughput in miniaturised array-based analytical systems. We also report on developments and characterisations of multiplexing extension that allow multifocal laser excitation together with matched parallel fluorescence detection for parallel confocal dynamical fluorescence fluctuation studies at the single biomolecule level.
引用
收藏
页码:231 / 241
页数:11
相关论文
共 85 条
[1]   Design of diffractive optical elements for multiple wavelengths [J].
Arieli, Y ;
Noach, S ;
Ozeri, S ;
Eisenberg, N .
APPLIED OPTICS, 1998, 37 (26) :6174-6177
[2]   OBSERVATION OF A SINGLE-BEAM GRADIENT FORCE OPTICAL TRAP FOR DIELECTRIC PARTICLES [J].
ASHKIN, A ;
DZIEDZIC, JM ;
BJORKHOLM, JE ;
CHU, S .
OPTICS LETTERS, 1986, 11 (05) :288-290
[3]   History of optical trapping and manipulation of small-neutral particle, atoms, and molecules [J].
Ashkin, A .
IEEE JOURNAL OF SELECTED TOPICS IN QUANTUM ELECTRONICS, 2000, 6 (06) :841-856
[4]   Fluorescence correlation spectroscopy: lead discovery by miniaturized HTS [J].
Auer, M ;
Moore, KJ ;
Meyer-Almes, FJ ;
Guenther, R ;
Pope, AJ ;
Stoeckli, KA .
DRUG DISCOVERY TODAY, 1998, 3 (10) :457-465
[5]  
BEUHLER C, 2001, NEW TREND FLUORESCEN, P331
[6]   Multifocal multiphoton microscopy [J].
Bewersdorf, J ;
Pick, R ;
Hell, SW .
OPTICS LETTERS, 1998, 23 (09) :655-657
[7]   Parallel flow measurements in microstructures by use of a multifocal 4 x 1 diffractive optical fan-out element [J].
Blom, H ;
Johansson, M ;
Gösch, M ;
Sigmundsson, T ;
Holm, J ;
Hård, S ;
Rigler, R .
APPLIED OPTICS, 2002, 41 (31) :6614-6620
[8]   Parallel fluorescence detection of single biomolecules in microarrays by a diffractive-optical-designed 2 x 2 fan-out element [J].
Blom, H ;
Johansson, M ;
Hedman, AS ;
Lundberg, L ;
Hanning, A ;
Hård, S ;
Rigler, R .
APPLIED OPTICS, 2002, 41 (16) :3336-3342
[9]  
BRINAC SJ, 1999, IEEE ENG MED BIOL, V18, P120
[10]  
Brinkmeier M., 1995, Experimental Technique of Physics, V41, P205