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Modeling and Analysis of Intercalant Effects on Circular DNA Conformation
Eric Krueger
, Jiwook Shim
, Arman Fathizadeh
, Angela Nicole Chang
, Basheer Subei
, Katie M. Yocham
, Paul H. Davis
, Elton Graugnard
, Fatemeh Khalili-Araghi
,
Rashid Bashir
, David Estrada
, Daniel Fologea
Bioengineering
Materials Research Lab
Beckman Institute for Advanced Science and Technology
Mechanical Science and Engineering
Carl R. Woese Institute for Genomic Biology
Molecular and Integrative Physiology
Electrical and Computer Engineering
National Center for Supercomputing Applications (NCSA)
Grainger College of Engineering
Materials Science and Engineering
Biomedical and Translational Sciences
Coordinated Science Lab
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Keyphrases
DNA Conformation
100%
Circular DNA
100%
Structural Change
40%
Ethidium Bromide
40%
DNA Molecule
20%
Structural Properties
20%
All-atom Molecular Dynamics Simulation
20%
Atomic Force Microscopy
20%
Silicon Nitride
20%
Biomolecules
20%
Conformational Change
20%
Solid-state Nanopore
20%
Fold Increase
20%
Tumor Growth
20%
Inhibit Tumor
20%
Tertiary Structure
20%
Translocation Time
20%
Loop Structure
20%
Microscopic Analysis
20%
Rapid Screening
20%
Interaction Mechanism
20%
Nanopore Technology
20%
Cancer Drugs
20%
Current Blockade
20%
Branched Structure
20%
Anthracyclines
20%
Biochemistry, Genetics and Molecular Biology
DNA Conformation
100%
Ethidium Bromide
100%
Atomic Force Microscopy
50%
Conformation
50%
Conformational Change
50%
Tertiary Structure
50%
Tumor Progression
50%
Anthracycline
50%
Engineering
Nanopore
100%
Atomic Force Microscopy
50%
Nitride
50%
Biomolecule
50%
Structural Property
50%
Fold Increase
50%
Critical Role
50%
Material Science
Nanopore
100%
Tumor
50%
Structural Property
50%
Silicon Nitride
50%
Atomic Force Microscopy
50%
Tertiary Structure
50%