Showing 20,121 - 20,134 results of 20,134 for search '(( 50 ((ng decrease) OR (((we decrease) OR (mean decrease)))) ) OR ( 10 nm decrease ))', query time: 0.66s Refine Results
  1. 20121

    Fast Magnetization Tunneling in Tetranickel(II) Single-Molecule Magnets by En-Che Yang (2092804)

    Published 2006
    “…Magnetic ordering temperatures due to intermolecular dipolar and magnetic exchange interactions were determined by means of very low-temperature ac susceptibility measurements; complex <b>1</b> orders at 1100 mK, complex <b>3</b> at 290 mK, complex <b>4</b> at ∼80 mK, and complex <b>6</b> at <50 mK. …”
  2. 20122

    Length-dependent activation in NF trabeculae (<i>n</i> = 9) vs. failing trabeculae with no hypothyroidism (FNH; <i>n</i> = 9) and failing trabeculae with hypothyroidism (FH; <i>n</... by Nancy S. Saad (2615341)

    Published 2022
    “…<b>(D)</b> TTP in NF myocardium was markedly slowed down as muscle length increased rather than the two failing groups, while trabeculae isolated from FNH hearts showed a prolonged TTP overall different muscle lengths compered to both NF and FH hearts and became significantly different compared to NF at L<sub>85</sub> (<i>P</i> = 0.013) and L<sub>90</sub> (<i>P</i> = 0.032). <b>(E)</b> RT50 decreased as muscles were shortened from L<sub>100</sub> to L<sub>85</sub> and the degree of shortening was much obvious in NF group. …”
  3. 20123

    Fast Magnetization Tunneling in Tetranickel(II) Single-Molecule Magnets by En-Che Yang (2092804)

    Published 2006
    “…Magnetic ordering temperatures due to intermolecular dipolar and magnetic exchange interactions were determined by means of very low-temperature ac susceptibility measurements; complex <b>1</b> orders at 1100 mK, complex <b>3</b> at 290 mK, complex <b>4</b> at ∼80 mK, and complex <b>6</b> at <50 mK. …”
  4. 20124

    Sound evoked cortical activity across vigilance states before and after NOE. by Linus Milinski (10532121)

    Published 2024
    “…Sounds were one octave narrow band noise (NBN) bursts centred at 1, 4, 8, and 16 kHz, at a stimulus level of 40, 50, 60, and 65 dB SPL, with a duration of 820 ms that included a silent gap of 38 ms. …”
  5. 20125

    Fast Magnetization Tunneling in Tetranickel(II) Single-Molecule Magnets by En-Che Yang (2092804)

    Published 2006
    “…Magnetic ordering temperatures due to intermolecular dipolar and magnetic exchange interactions were determined by means of very low-temperature ac susceptibility measurements; complex <b>1</b> orders at 1100 mK, complex <b>3</b> at 290 mK, complex <b>4</b> at ∼80 mK, and complex <b>6</b> at <50 mK. …”
  6. 20126

    Fast Magnetization Tunneling in Tetranickel(II) Single-Molecule Magnets by En-Che Yang (2092804)

    Published 2006
    “…Magnetic ordering temperatures due to intermolecular dipolar and magnetic exchange interactions were determined by means of very low-temperature ac susceptibility measurements; complex <b>1</b> orders at 1100 mK, complex <b>3</b> at 290 mK, complex <b>4</b> at ∼80 mK, and complex <b>6</b> at <50 mK. …”
  7. 20127

    S1 Data - by Dénes Pauka (16955686)

    Published 2023
    “…Comparing the histological groups by the measured parameters (<i>F</i><sub>max</sub>, <i>L</i><sub>max</sub>, <i>F</i><sub>break</sub>, <i>L</i><sub>break</sub>) showed a significant difference in the means (p<0.001, p = 0.003, p<0.001 respectively). …”
  8. 20128

    Fast Magnetization Tunneling in Tetranickel(II) Single-Molecule Magnets by En-Che Yang (2092804)

    Published 2006
    “…Magnetic ordering temperatures due to intermolecular dipolar and magnetic exchange interactions were determined by means of very low-temperature ac susceptibility measurements; complex <b>1</b> orders at 1100 mK, complex <b>3</b> at 290 mK, complex <b>4</b> at ∼80 mK, and complex <b>6</b> at <50 mK. …”
  9. 20129

    Fast Magnetization Tunneling in Tetranickel(II) Single-Molecule Magnets by En-Che Yang (2092804)

    Published 2006
    “…Magnetic ordering temperatures due to intermolecular dipolar and magnetic exchange interactions were determined by means of very low-temperature ac susceptibility measurements; complex <b>1</b> orders at 1100 mK, complex <b>3</b> at 290 mK, complex <b>4</b> at ∼80 mK, and complex <b>6</b> at <50 mK. …”
  10. 20130

    Phenotypic characterization of <i>CsIVP</i>-RNAi transgenic plants. by Shuangshuang Yan (798064)

    Published 2020
    “…(I) Reduced mature fruit length and decreased seed viability in the <i>CsIVP</i>-RNAi lines. …”
  11. 20131

    Data_Sheet_1_The effect of Ba Duan Jin exercise intervention on cardiovascular disease: a meta-analysis of randomized controlled trials.PDF by Jiali Chen (5696)

    Published 2024
    “…Subgroup analyses reveal that Ba Duan Jin exercise therapy decreases SBP (MD = −4.05, 95% CI = −6.84 to −1.26, p < 0.01) and DBP (MD = −3.21, 95% CI = −5.22 to −1.20, p < 0.01) levels in patients with essential hypertension, significantly reduces serum TC (MD = −0.78, 95% CI = −1.06 to −0.50, p < 0.01), TG (MD = −0.78, 95% CI = −0.93 to −0.62, p < 0.01), and LDL-C (MD = −0.76, 95% CI = −0.92 to −0.60, p < 0.01) levels in patients with hyperlipidemia, increases HDL-C (MD = 0.32, 95% CI = 0.14–0.51, p < 0.01) levels, and produces beneficial effects on cardiovascular function. …”
  12. 20132

    The point mutants E559A, E563A and K567A display altered DNA-binding kinetics. by Bettina Hüntelmann (566945)

    Published 2014
    “…(D) Mutation of either glutamic acid 559 or 563 to alanines results in decreased dissociation rates from DNA and high-affinity GAS binding. …”
  13. 20133

    IPC activity levels are correlated with the incidence of reproductive dormancy. by Noriyuki Ojima (5367824)

    Published 2018
    “…Scale bars: 100 μm (A); 50 μm (C”). (G) The brain region examined for quantification of the TRIC-signal intensity (I<sub>TRIC</sub>). …”
  14. 20134

    Update on trimethylamine N-oxide (TMAO) as a piezolyte and cryoprotectant: its role in a depth limit for marine fishes and loss from hadal fish during capture by Paul Yancey (14354982)

    Published 2025
    “…</p><p dir="ltr">Jamieson AJ, Yancey PH (2012). doi/10.1086/BBLv222n3p171</p><p dir="ltr">Lantz C, Xi Z, Rider RL, Walker TE, Hebert M, Russell DH (2024). doi.org/10.1021/acs.jpcb.4c04951</p><p dir="ltr">Laurent H, Youngs TGA, Headen TF, Soper AK, Dougan L (2022). doi.org/10.1038/s42004-022-00726-z</p><p dir="ltr">Li X, Wang C, Yanagita T, Xue C, Zhang T, Wang Y (2024). doi.org/10.1021/acs.jafc.4c01974</p><p dir="ltr">Linley T, Gerringer M, Yancey PH, Drazen JC, Weinstock C, Jamieson A (2016). doi.org/10.1016/j.dsr.2016.05.003</p><p dir="ltr">Liu Q, Jiang S, Li W, Pan B, Xu Q (2022). doi.org/10.3390/jmse10040454</p><p dir="ltr">Liu T-H, Okuno M (2024). doi.org/10.1039/D4CP01025F</p><p dir="ltr">Loo RL, Chan Q, Nicholson JK, Holmes E (2022). doi.org/10.1021/acs.jproteome.1c00851</p><p dir="ltr">Mueller-Dieckmann C, Kauffmann B, Weiss MS (2011). doi.org/10.1107/S0021889811000</p><p dir="ltr">Mu Y, Bian C, Liu R, Wang Y, Shao G, Li J, et al. (2021). doi.org/10.1371/journal.pgen.1009530</p><p dir="ltr">Raymond JA, Devries AL (1998). doi.org/10.1023/a:1007778728627</p><p dir="ltr">Raymond JA, Hassel A (2005). doi.org/10.1111/j.1095-8649.2000.tb02240.x</p><p dir="ltr">Roche J, Royer CA (2018). doi.org/10.1098/rsif.2018.0244</p><p dir="ltr">Samerotte AL, Drazen JC, Brand GL, Seibel BA, Yancey PH (2007). doi/10.1086/510566</p><p dir="ltr">Swan JA, Jamieson AJ, Linley TD, Yancey PH (2021). doi.org/10.1093/jcbiol/ruaa102</p><p dir="ltr">Treberg JR, Bystriansky JS, Driedzic WR (2005). doi.org/10.1002/jez.a.140</p><p dir="ltr">Wang K, Shen Y, Yang Y, Gan X, Liu G, Hu K, et al. (2019). doi.org/10.1038/s41559-019-0864-8</p><p dir="ltr">Xu H, Fang C, Xu W, Wang C, Song Y, Zhu C, et al. (2025). doi.org/10.1016/j.cell.2025.01.002</p><p dir="ltr">Yancey PH, Speers-Roesch B, Atchison A, Reist JD., Treberg JR (2018). doi.org/10.1086/696157</p><p dir="ltr">Yancey PH (2020). doi.org/10.1002/jez.2354</p><p dir="ltr">Yancey PH (2023). doi/10.33594/000000661</p>…”