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When these bands match the blocks, space is altered by the effect of banners hanging from ribbons.
The cutoff value is a threshold of the probability that fingerprint bands match by coincidence.
The numbers of the bands match the activity bands marked in Figure 1.
Cutoff values (probability threshold that fingerprint bands match by coincidence) of 1e-20 - 1e-02 were tested using the entire fingerprint dataset, and the resultant numbers of contigs, singletons, and questionable-clones (Q-clones) were analyzed.
The wide band gap of ∼3.2 eV and the valence band of ∼7.4 eV for both TiO2 and ZnO contributes to form an efficient hole blocking layer while the relatively well matched energy levels of the TiO2 and ZnO conduction bands match well with the work function of graphene (∼4.4 eV), forming an efficient energy transfer layer for fast electron extraction.
We placed the outcomes in one of the following categories: an exact match (i.e., same number and size of bands), an exact match with the exception of one band (match ±1 band), an exact match with the exception of two bands (match ±2 bands), and no match (three or more bands different).
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We then spiked rNG- and rG-irisin into human sera and analyzed bands matched to the size of the recombinant control peptides by HPLC/mass spectrometry (Fig. 5c,d).
According to the above results, a schematic illustration of energy bands matching between SrTiO3 and Bi5O7I and possible ways of charges transfer are depicted in Fig. 9.
The CBB stained bands matching the expected molecular weight regions of selected proteins were excised and subjected to Trypsin digestion.
Two different tryptic peptide fragments, which were identified from both the ∼65-kDa and ∼43-kDa bands, matched to a protein homolog of human NTCP.
Furthermore, these bands were the same size as those predicted and observed for an EcoRI digest of KS14 DNA (with predictions based on a circular genome sequence) and sequences from selected bands matched the KS14 genome sequence.
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