simulation model of the sensor magnetic field Search Results


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(a) B2T_TT interacting with insulin's B-chain. (b) The residues of B2T_TT involved in the interaction, (c) 0 ns, 10 ns, 40 ns, 70 ns and 100 ns md simulation run structures of insulin–B2T_TT complex showing peptide binding throughout the 100 ns of md simulation. (d) <t>STD</t> <t>NMR</t> of B2T_TT.
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(a) B2T_TT interacting with insulin's B-chain. (b) The residues of B2T_TT involved in the interaction, (c) 0 ns, 10 ns, 40 ns, 70 ns and 100 ns md simulation run structures of insulin–B2T_TT complex showing peptide binding throughout the 100 ns of md simulation. (d) <t>STD</t> <t>NMR</t> of B2T_TT.
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(a) B2T_TT interacting with insulin's B-chain. (b) The residues of B2T_TT involved in the interaction, (c) 0 ns, 10 ns, 40 ns, 70 ns and 100 ns md simulation run structures of insulin–B2T_TT complex showing peptide binding throughout the 100 ns of md simulation. (d) <t>STD</t> <t>NMR</t> of B2T_TT.
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(a) B2T_TT interacting with insulin's B-chain. (b) The residues of B2T_TT involved in the interaction, (c) 0 ns, 10 ns, 40 ns, 70 ns and 100 ns md simulation run structures of insulin–B2T_TT complex showing peptide binding throughout the 100 ns of md simulation. (d) <t>STD</t> <t>NMR</t> of B2T_TT.
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(a) B2T_TT interacting with insulin's B-chain. (b) The residues of B2T_TT involved in the interaction, (c) 0 ns, 10 ns, 40 ns, 70 ns and 100 ns md simulation run structures of insulin–B2T_TT complex showing peptide binding throughout the 100 ns of md simulation. (d) <t>STD</t> <t>NMR</t> of B2T_TT.
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(a) B2T_TT interacting with insulin's B-chain. (b) The residues of B2T_TT involved in the interaction, (c) 0 ns, 10 ns, 40 ns, 70 ns and 100 ns md simulation run structures of insulin–B2T_TT complex showing peptide binding throughout the 100 ns of md simulation. (d) <t>STD</t> <t>NMR</t> of B2T_TT.
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(a) B2T_TT interacting with insulin's B-chain. (b) The residues of B2T_TT involved in the interaction, (c) 0 ns, 10 ns, 40 ns, 70 ns and 100 ns md simulation run structures of insulin–B2T_TT complex showing peptide binding throughout the 100 ns of md simulation. (d) <t>STD</t> <t>NMR</t> of B2T_TT.
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Metglas Inc magnetic flux concentration effects of
Simulations of <t>magnetic</t> <t>flux</t> <t>concentration</t> <t>effects</t> of the ME laminate with angle rotations, colors indicate the difference of magnetic flux density.
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Simulations of <t>magnetic</t> <t>flux</t> <t>concentration</t> <t>effects</t> of the ME laminate with angle rotations, colors indicate the difference of magnetic flux density.
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Image Search Results


(a) B2T_TT interacting with insulin's B-chain. (b) The residues of B2T_TT involved in the interaction, (c) 0 ns, 10 ns, 40 ns, 70 ns and 100 ns md simulation run structures of insulin–B2T_TT complex showing peptide binding throughout the 100 ns of md simulation. (d) STD NMR of B2T_TT.

Journal: RSC Advances

Article Title: De Novo designed 13 mer hairpin-peptide arrests insulin and inhibits its aggregation: role of OH–π interactions between water and hydrophobic amino acids

doi: 10.1039/d0ra00832j

Figure Lengend Snippet: (a) B2T_TT interacting with insulin's B-chain. (b) The residues of B2T_TT involved in the interaction, (c) 0 ns, 10 ns, 40 ns, 70 ns and 100 ns md simulation run structures of insulin–B2T_TT complex showing peptide binding throughout the 100 ns of md simulation. (d) STD NMR of B2T_TT.

Article Snippet: To study the details mechanism of peptide–insulin interaction we performed STD-NMR (Saturation Transfer Difference) NMR spectroscopy and molecular dynamics ( , and ESI Fig. 1–3 ).

Techniques: Binding Assay

Simulations of magnetic flux concentration effects of the ME laminate with angle rotations, colors indicate the difference of magnetic flux density.

Journal: IEEE transactions on biomedical circuits and systems

Article Title: MagNI: A Magnetoelectrically Powered and Controlled Wireless Neurostimulating Implant

doi: 10.1109/TBCAS.2020.3037862

Figure Lengend Snippet: Simulations of magnetic flux concentration effects of the ME laminate with angle rotations, colors indicate the difference of magnetic flux density.

Article Snippet: We simulate the magnetic flux concentration effects of Metglas in COMSOL. shows that the flux density inside the laminate is much higher than that in the free space even with angle rotations, which means the decrease in flux density due to misalignment can be partially compensated by the magnetic flux concentration effect.

Techniques: Concentration Assay