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A nonlinear least-squares technique is then implemented to extract system parameters from laser vibrometry data of the diaphragm motion.
In vitro systems such as the Xenopus egg extract system, have played, and still play, an important role in deciphering the molecular details of these processes.
Here we describe how the Xenopus egg extract system, in combination with specifically designed DNA templates, contributed to our detailed understanding of these pathways.
Recently proposed data analysis methods include, for example, multi-parameter estimation from hypersurface models [15, 16], artificial neural networks for classifying voltammetric signals by reaction mechanism [17], and bootstrap resampling to extract system parameters and their error distributions [18].
Given the system matrices at different values of the parameters or realizations of random variables, we extract system matrices which are independent of the parameters (random variables), so that parametric models can be constructed, and the parameters (random variables) symbolically appear in the model.
The separation of sister chromatids that occurs during mitosis in the Xenopus egg extract system also depends on PIASγ.
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Overall, these results demonstrate that our identified substrate can be used in multiple different extract systems and furthermore that ABPs that target multiple related enzymes can be used to identify specific substrates.
For the synthesis of recombinant proteins by wheat germ extract systems, pF3KWG (BYDV) FlexiR Vector (Promega, Madison, WI, USA) was used.
(1) Heliquinomycin was originally identified as an inhibitor of in vitro replication in cell extract systems [ 126] and was later shown to biochemically inhibit the DNA unwinding properties of a specific Mcm subcomplex (Mcm467).
Leveraging modern bioinformatic analytics against intricate stem cell transcriptome readouts can extract systems biology features intractable to other approaches, and demonstrates a novel capacity for stem cells as advanced high resolution diagnostic tools (Fig. 6).
The NTC (NineTeen Complex), named after its founding member Saccharomyces cerevisiae (Sc) Prp19, is a conserved protein-only spliceosome subcomplex that has been isolated in both human and S. cerevisiae splicing extract systems.
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Justyna Jupowicz-Kozak
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