Search alternatives:
nm decrease » nn decrease (Expand Search), we decrease (Expand Search), gy decreased (Expand Search)
ng decrease » nn decrease (Expand Search), we decrease (Expand Search), gy decreased (Expand Search)
a decrease » _ decreased (Expand Search), _ decreases (Expand Search)
_ decrease » _ decreased (Expand Search)
10 nm » 100 nm (Expand Search), 10 mm (Expand Search)
nm decrease » nn decrease (Expand Search), we decrease (Expand Search), gy decreased (Expand Search)
ng decrease » nn decrease (Expand Search), we decrease (Expand Search), gy decreased (Expand Search)
a decrease » _ decreased (Expand Search), _ decreases (Expand Search)
_ decrease » _ decreased (Expand Search)
10 nm » 100 nm (Expand Search), 10 mm (Expand Search)
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The motor torque curves of load increase/decrease (A) the load of 10 N • m (B) the load of 20 N • m.
Published 2025“…<p>The motor torque curves of load increase/decrease (A) the load of 10 N • m (B) the load of 20 N • m.…”
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The motor speed curves of load increase/decrease (A) the load of 10 N • m (B) the load of 20 N • m.
Published 2025“…<p>The motor speed curves of load increase/decrease (A) the load of 10 N • m (B) the load of 20 N • m.…”
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Delphinidin alters VEGF-A splicing to increase VEGF-A<sub>165</sub>b and decrease total VEGF-A expression.
Published 2019“…<p><b>A)</b> Treatment of podocytes with delphinidin chloride (10 μg/ml) under normal glucose (NG; 5 mM glucose + 25 mM mannitol) and high glucose (HG; 30 mM glucose, 1 ng/ml TNFα, 1 ng/ml IL-6, and 100 nM insulin) for 48 hrs increased the protein expression of VEGF-A<sub>165</sub>b relative to total VEGF-A<sub>165</sub> (quantified in <b>B</b>; *p<0.05 vs NG, †p<0.05 vs HG; n = 3 biological repeats; One-way ANOVA with Bonferroni post-hoc test for comparison between pairs; <b>A</b>—the same blot was first probed with VEGF-A<sub>165</sub>b before stripping and reprobing with panVEGF-A). …”
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Evidence of Formation of 1–10 nm Diameter Ice Nanotubes in Double-Walled Carbon Nanotube Capillaries
Published 2023“…However, the single-walled INTs reported in the literature all possess subnanometer diameters (<1 nm). Herein, based on systematic and large-scale molecular dynamics simulations, we demonstrate the spontaneous freezing transition of liquid water to single-walled INTs with diameters reaching ∼10 nm when confined to capillaries of double-walled carbon nanotubes (DW-CNTs). …”
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Evidence of Formation of 1–10 nm Diameter Ice Nanotubes in Double-Walled Carbon Nanotube Capillaries
Published 2023“…However, the single-walled INTs reported in the literature all possess subnanometer diameters (<1 nm). Herein, based on systematic and large-scale molecular dynamics simulations, we demonstrate the spontaneous freezing transition of liquid water to single-walled INTs with diameters reaching ∼10 nm when confined to capillaries of double-walled carbon nanotubes (DW-CNTs). …”
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Evidence of Formation of 1–10 nm Diameter Ice Nanotubes in Double-Walled Carbon Nanotube Capillaries
Published 2023“…However, the single-walled INTs reported in the literature all possess subnanometer diameters (<1 nm). Herein, based on systematic and large-scale molecular dynamics simulations, we demonstrate the spontaneous freezing transition of liquid water to single-walled INTs with diameters reaching ∼10 nm when confined to capillaries of double-walled carbon nanotubes (DW-CNTs). …”
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Evidence of Formation of 1–10 nm Diameter Ice Nanotubes in Double-Walled Carbon Nanotube Capillaries
Published 2023“…However, the single-walled INTs reported in the literature all possess subnanometer diameters (<1 nm). Herein, based on systematic and large-scale molecular dynamics simulations, we demonstrate the spontaneous freezing transition of liquid water to single-walled INTs with diameters reaching ∼10 nm when confined to capillaries of double-walled carbon nanotubes (DW-CNTs). …”