Ultrasensitive detection of nonlabelled bovine serum albumin using photothermal optical phase shift detection with UV excitation
Literature Information
Hisashi Shimizu, Shigenori Takeda, Kazuma Mawatari, Takehiko Kitamori
Ultrasensitive detection of nonlabelled bovine serum albumin is performed in micro/nanofluidic chips using a photothermal optical phase shift (POPS) detection system. Currently, micro- and nanofluidics allow the analysis of various single cells, and their targets of interest are shifting from nucleic acids to proteins. Previously, our group developed photothermal detection techniques for the sensitive detection of nonfluorescent molecules. For example, we developed a thermal lens microscope (TLM) with ultrahigh sensitivity at the single-molecule level and a POPS detector that is applicable to nanochannels smaller than the wavelength of light. The POPS detector also realized the detection of nonlabelled proteins in nanochannels, although its detection sensitivity is less than that of the TLM in microchannels due to insufficient background light reduction. To overcome this problem, we developed a new POPS detector using relay optics for further reduction of the background light. In addition, heat transfer from the sample solution to the nanochannel wall was thoroughly investigated to achieve ultrahigh sensitivity. The limit of detection (LOD) obtained with the new POPS detector is 30 molecules in 1.0 fL. Considering this LOD, the performance of the new POPS detector is comparable with that of the TLM. Owing to the applicability of the POPS detector for sensitive detection even in nanochannels or single-μm channels, which cannot be realized with the TLM, combinations of the POPS detector and separation techniques employing unique nanochannel properties will contribute to advances in single-cell proteomics in the future.
Related Literature
The reactions of cytidine and 2′-deoxycytidine with SO4˙− revisited. Pulse radiolysis and product studies
Charuvila T. Aravindakumar, Man Nien Schuchmann, Balijepalli S. M. Rao, Justus von Sonntag
DOI: 10.1039/B209626A
A cascade synthesis of S-allyl benzoylcarbamothioates via Mumm-type rearrangement
Anjali Dahiya, Wajid Ali, Tipu Alam, Bhisma K. Patel
DOI: 10.1039/C8OB02293C
Total synthesis, structural revision and biological evaluation of γ-elemene-type sesquiterpenes
Changchun Yuan, Shangyong Zhong, Xingyi Li, Yanhong Wang, Miao-Miao Xun, Yunli Bai, Kongkai Zhu
DOI: 10.1039/C8OB02005A
A radical cyclization cascade of 2-alkynylbenzonitriles with sodium arylsulfinates
Bang Zhou, Wenqi Chen, Yuzhong Yang, Yuan Yang, Guobo Deng, Yun Liang
DOI: 10.1039/C8OB02288G
Enhanced π⋯π interactions in α,β-unsaturated carbonyls
Lisa D. Harris, James A. Platts, Nicholas C. O. Tomkinson
DOI: 10.1039/B210497K
Synthesis of benzimidazoles by CuI-catalyzed three-component reaction of 2-haloaniline, ammonia and aldehyde in water
Fang Ke, Peng Zhang, Chen Lin, Xiaoyan Lin, Jianhua Xu, Xiangge Zhou
DOI: 10.1039/C8OB02172D
Preparation of a unique glucan with large intervals in molecular weight distribution. Controlled ring-opening polymerization of O-permethylcyclodextrin
Masato Suzuki, Tomofumi Shimazaki
DOI: 10.1039/B210122J
Recent advances in the synthesis of azaphenalene alkaloids: first enantioselective approaches
Sílvia Alujas-Burgos, Pau Bayón, Marta Figueredo
DOI: 10.1039/C8OB01443D
Synthesis and properties of a lysosome-targeting fluorescent ionophore based on coumarins and squaramides
Xiao-Qiao Hong, Xi-Hui Yu, Wen-Hua Chen
DOI: 10.1039/C8OB01957F
DNA recognition by the anthracycline antibiotic respinomycin D: NMR structure of the intercalation complex with d(AGACGTCT)2
Mark S. Searle, Allister J. Maynard, Huw E. L. Williams
DOI: 10.1039/B208622K
You might also like
How should waste containing 4-Bromo-3-methyl-2-thiophenecarboxylic acid (CAS: 265652-39-9) be handled?
Waste containing 4-Bromo-3-methyl-2-thiophenecarboxylic acid (CAS: 265652-39-9) ...
What industries use (2S,5S,2'S,5'S)-1,1'-(1,2-Ethanediyl)bis(2,5-dimethylphospholane) (CAS: 136779-26-5)?
(2S,5S,2'S,5'S)-1,1'-(1,2-Ethanediyl)bis(2,5-dimethylphospholane) is primarily u...
What industries use Ethyl 2-(2-bromo-5-fluorophenyl)acetate (CAS: 1214910-61-8)?
Ethyl 2-(2-bromo-5-fluorophenyl)acetate (CAS: 1214910-61-8) is used in the pharm...
How is 4-Methyl-2-benzofuran-1,3-dione (CAS: 4792-30-7) typically synthesized?
4-Methyl-2-benzofuran-1,3-dione (CAS: 4792-30-7) can be synthesized through seve...
What industries use 4,6-Dichloroquinoline-3-carbonitrile (CAS: 936498-04-3)?
4,6-Dichloroquinoline-3-carbonitrile (CAS: 936498-04-3) is used in the pharmaceu...
What are the main uses of Chloro[tris(para-trifluoromethylphenyl)phosphine]gold(I) (CAS: 385815-83-8)?
Chloro[tris(para-trifluoromethylphenyl)phosphine]gold(I) is primarily used in or...
Is 2-Bromo-5-nitrofuran (CAS: 823-73-4) safe?
2-Bromo-5-nitrofuran (CAS: 823-73-4) is generally considered safe when handled w...
How should 5-Bromo-2,3,4-trifluorobenzoic acid (CAS: 212631-85-1) be stored?
5-Bromo-2,3,4-trifluorobenzoic acid should be stored in a cool, dry place away f...
What are the main uses of Zinc bis(aminoacetate) (CAS: 7214-08-6)?
Zinc bis(aminoacetate) (CAS: 7214-08-6) is primarily used in the pharmaceutical ...
How should Adamantan-1-ylmethanol (CAS: 770-71-8) be stored?
Adamantan-1-ylmethanol should be stored in a cool, dry, and well-ventilated plac...
Source Journal
Analyst

Analyst publishes analytical and bioanalytical research that reports premier fundamental discoveries and inventions, and the applications of those discoveries, unconfined by traditional discipline barriers.














![(1S,2R,4S)-1,7,7-Trimethylbicyclo[2.2.1]heptan-2-ol structure (1S,2R,4S)-1,7,7-Trimethylbicyclo[2.2.1]heptan-2-ol structure](https://static.chemtradehub.com/structs/464/464-45-9-f88b.webp)