TY - JOUR
T1 - Rapid multi-reagents exchange TIRFM microfluidic system for single biomolecular imaging
AU - Arakawa, Takahiro
AU - Sameshima, Tomoya
AU - Sato, Yukiko
AU - Ueno, Taro
AU - Shirasaki, Yoshitaka
AU - Funatsu, Takashi
AU - Shoji, Shuichi
N1 - Funding Information:
This work was partly supported by SENTAN JST, JSPS grant Wakate B-18760309, and Grants-in Aid for COE Research “Molecular Nano-engineering and Its Development into Microsystem” and SCOE “ASMew” from the Ministry of Education, Culture, Sports, Science & Technology of Japan.
PY - 2007/12/12
Y1 - 2007/12/12
N2 - A rapid multi-reagents switching microvalve system integrated with a total internal reflection fluorescence microscopy (TIRFM) was developed for real time imaging of a single protein behavior. The binding and dissociation process between a chaperonin GroEL and cochaperonin GroES was observed in this TIRFM microfluidic system. This TIRFM microfluidic system was constructed by a smooth glass in microchannel surface, that is essential for TIR imaging, and the polydimethylesiloxane (PDMS) microvalves that is operatable with a rapid response of around 100 ms. The smooth glass surface was etched with an optimized hydrofluoric acid and nitric acid (HF-HNO3) solution and had the average surface roughness of 3.2 nm. The microvalves were based on a pneumatic PDMS membrane that is beneficial for a rapid (<100 ms) response. This TIRFM microfluidic system contains three inlet channels and one outlet channel and the flow in every inlet channel were precisely controlled by the PDMS microvalves. These microvalves were operated by air pressure pulses of 100 ms to hold, open or closed for switching. This TIRFM microfluidic system enabled a reagent exchange within 100 ms with TIRFM observation. For single molecular imaging in this system, biotinylated GroEL (D490C) was immobilized to the glass microchannel surface through streptavidin and biotinylated BSA. A solution including 1 nM IC5-GroES was introduced for 100 ms into the observation area and then washed out with 2 mM ATP buffer solution. Fluorescence spots of IC5-GroES appeared after rapid solution switching, and disappeared several seconds later. As a result, we succeeded in detecting fluorescence signal from single molecules in TIRFM microfluidic system. The micro-constructed TIRFM microfluidic system can realize dynamic analysis of the single molecule level protein-protein binding and dissociation under a controlled multi-reagent exchange.
AB - A rapid multi-reagents switching microvalve system integrated with a total internal reflection fluorescence microscopy (TIRFM) was developed for real time imaging of a single protein behavior. The binding and dissociation process between a chaperonin GroEL and cochaperonin GroES was observed in this TIRFM microfluidic system. This TIRFM microfluidic system was constructed by a smooth glass in microchannel surface, that is essential for TIR imaging, and the polydimethylesiloxane (PDMS) microvalves that is operatable with a rapid response of around 100 ms. The smooth glass surface was etched with an optimized hydrofluoric acid and nitric acid (HF-HNO3) solution and had the average surface roughness of 3.2 nm. The microvalves were based on a pneumatic PDMS membrane that is beneficial for a rapid (<100 ms) response. This TIRFM microfluidic system contains three inlet channels and one outlet channel and the flow in every inlet channel were precisely controlled by the PDMS microvalves. These microvalves were operated by air pressure pulses of 100 ms to hold, open or closed for switching. This TIRFM microfluidic system enabled a reagent exchange within 100 ms with TIRFM observation. For single molecular imaging in this system, biotinylated GroEL (D490C) was immobilized to the glass microchannel surface through streptavidin and biotinylated BSA. A solution including 1 nM IC5-GroES was introduced for 100 ms into the observation area and then washed out with 2 mM ATP buffer solution. Fluorescence spots of IC5-GroES appeared after rapid solution switching, and disappeared several seconds later. As a result, we succeeded in detecting fluorescence signal from single molecules in TIRFM microfluidic system. The micro-constructed TIRFM microfluidic system can realize dynamic analysis of the single molecule level protein-protein binding and dissociation under a controlled multi-reagent exchange.
KW - GroEL
KW - GroES
KW - Microvalve
KW - Multi-reagent exchange
KW - PDMS
KW - Single biomolecular imaging
KW - TIRFM microfluidic system
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UR - http://www.scopus.com/inward/citedby.url?scp=35748964432&partnerID=8YFLogxK
U2 - 10.1016/j.snb.2007.06.014
DO - 10.1016/j.snb.2007.06.014
M3 - Article
AN - SCOPUS:35748964432
SN - 0925-4005
VL - 128
SP - 218
EP - 225
JO - Sensors and Actuators, B: Chemical
JF - Sensors and Actuators, B: Chemical
IS - 1
ER -