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1 s a critical step towards the untethering of single molecule spectroscopy.
2 w we present several examples of femtosecond single molecule spectroscopy.
3 vestigate dibenzoterrylene (DBT) by bulk and single molecule spectroscopy.
4 time observed in slower folding proteins by single-molecule spectroscopy.
5 LASR combines temperature-jump kinetics and single-molecule spectroscopy.
6 what we believe is a novel approach based on single-molecule spectroscopy.
7 used an IDP as a crowding sensor for in-cell single-molecule spectroscopy.
8 V centers as a tool for chemical sensing and single-molecule spectroscopy.
9 ng rapid biomolecular kinetics with confocal single-molecule spectroscopy.
10 e recent progress in nanotechnology(1,2) and single-molecule spectroscopy(3-5) paves the way for emer
11 energy transfer together with colocalization single-molecule spectroscopy, a combination of methods t
13 biochemical and biophysical applications of single molecule spectroscopy and fluorescence microscopy
14 focuses on recent advances in colocalization single molecule spectroscopy and how this technique has
17 the stability demands on fluorescent dyes in single-molecule spectroscopy and fluorescence microscopy
20 the development of biophysical tools such as single-molecule spectroscopy and noncovalent mass spectr
22 ange of in vitro studies of GPCRs, including single-molecule spectroscopy, and is a promising platfor
23 riving force for these developments has been single-molecule spectroscopy, as it allows structural he
24 nt advances in single-molecule detection and single-molecule spectroscopy at room temperature by lase
25 temporal limitations of conventional protein single-molecule spectroscopy by employing correlation an
26 y encapsulation in trehalose are examined by single-molecule spectroscopy by means of a two-channel c
29 phy gel filtration data and demonstrate that single-molecule spectroscopy can provide useful insights
31 recruitment directly, we used Colocalization Single Molecule Spectroscopy (CoSMoS) to study the dynam
35 es a promoter by FD using the colocalization single-molecule spectroscopy (CoSMoS) multiwavelength fl
38 a fluorescence method called colocalization single-molecule spectroscopy (CoSMoS), Friedman and Gell
44 out local physicochemical parameters through single-molecule spectroscopy, here, we uncover nanoscale
45 le level and quantified using colocalization single-molecule spectroscopy, in which individual labele
46 ess of such techniques in the life sciences, single-molecule spectroscopy is finding increasing appli
48 ple experiment types, e.g. for time-resolved single-molecule spectroscopy, laser scanning microscopy,
51 inding and encapsulation by GroEL/GroES with single-molecule spectroscopy, microfluidic mixing, and e
53 Excitonic energy migration was studied using single molecule spectroscopy of individual conjugated po
54 This work presents for the first time the single-molecule spectroscopy of a new molecular probe wh
64 approach with a broad array of fluorescence single-molecule spectroscopy (SMS) tools (FRET, molecule
65 ng way since the early demonstrations of the single-molecule spectroscopy studies of enzymatic dynami
67 Such high temperatures, so far unreached in single-molecule spectroscopy studies, were achieved usin
68 ility of this method with different types of single molecule spectroscopy techniques, including confo
71 re we use quantitative live-cell imaging and single-molecule spectroscopy to analyze how different tr
74 ccus lactis, were characterized by employing single-molecule spectroscopy to follow the turnover kine
82 tion of mutagenesis, structural biology, and single molecule spectroscopy, we show how Lnk2 influence