Showing 921 - 940 results of 22,062 for search '(( a web decrease ) OR ( 100 ((mean decrease) OR (((nn decrease) OR (a decrease)))) ))', query time: 0.80s Refine Results
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    Analysis of the <sup>1</sup>H–<sup>15</sup>N HSQC spectrum of the labeled RAGE V domain with unlabeled S100A12. by Jian Wei Chiou (3106578)

    Published 2016
    “…<p>(a) Overlay of the <sup>1</sup>H–<sup>15</sup>N HSQC spectra of 0.5 mM <sup>15</sup>N-labeled RAGE V domain (red) and the spectra of the complex with 0.5 mM unlabeled S100A12 (blue). …”
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    Analysis of the <sup>1</sup>H–<sup>15</sup>N HSQC spectra of S100A12 in complex with the unlabeled RAGE V domain. by Jian Wei Chiou (3106578)

    Published 2016
    “…<p>(a) Overlay of the <sup>1</sup>H–<sup>15</sup>N HSQC spectra of 0.76 mM <sup>15</sup>N-labeled S100A12 (red) and S100A12 in complex with 0.76 mM unlabeled RAGE V domain (green). …”
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    Species richness (<i>SR</i>, upper panels) and Shannon’s entropy (<i>SE</i>, lower panels) vs. the rate in which new species are trying to invade the community, <i>νN</i>. by Immanuel Meyer (12306666)

    Published 2022
    “…However, as the number of temporal niches decreases global competition puts a hurdle against invasion, as every invader must compete with niche-specialists. …”
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    Effects of S100A6 on CayBP/SIP-mediated β –catenin degradation. by Xiaoxuan Ning (334218)

    Published 2013
    “…<p>(A) Co-immunoprecipitation assay showed that truncated mutant CacyBP/SIPΔS100 bind both Skp1 and Siah1, suggesting S100A6 did not affect the formation of Siah1-CacyBP/SIP-Skp1 unbiquitin ligase complex. …”
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    Parrotfish Teeth: Stiff Biominerals Whose Microstructure Makes Them Tough and Abrasion-Resistant To Bite Stony Corals by Matthew A. Marcus (115744)

    Published 2017
    “…To investigate how their teeth endure the associated contact stresses, we examine the chemical composition, nano- and microscale structure, and the mechanical properties of the steephead parrotfish <i>Chlorurus microrhinos</i> tooth. Its enameloid is a fluorapatite (Ca<sub>5</sub>(PO<sub>4</sub>)<sub>3</sub>F) biomineral with outstanding mechanical characteristics: the mean elastic modulus is 124 GPa, and the mean hardness near the biting surface is 7.3 GPa, making this one of the stiffest and hardest biominerals measured; the mean indentation yield strength is above 6 GPa, and the mean fracture toughness is ∼2.5 MPa·m<sup>1/2</sup>, relatively high for a highly mineralized material. …”