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Dive into the research topics where Cole D. Chapman is active.

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Featured researches published by Cole D. Chapman.


Soft Matter | 2012

Complex effects of molecular topology on diffusion in entangled biopolymer blends

Cole D. Chapman; Sachin Shanbhag; Douglas E. Smith; Rae M. Robertson-Anderson

By combining single-molecule tracking with bond-fluctuation model simulations, we show that diffusion is intricately linked to molecular topology in blends of entangled linear and ring biopolymers, namely DNA. Most notably, we find a previously unreported non-monotonic dependence of the self-diffusion coefficient for linear DNA on the fraction of linear DNA comprising the ring-linear blend, which we argue arises from a second-order effect of ring DNA molecules being threaded by varying numbers of linear DNA molecules. Results address several debated issues regarding molecular dynamics in biopolymer blends, which can be used to develop novel tunable biomaterials.


Biophysical Journal | 2015

Crowding Induces Complex Ergodic Diffusion and Dynamic Elongation of Large DNA Molecules

Cole D. Chapman; Stephanie M. Gorczyca; Rae M. Robertson-Anderson

Despite the ubiquity of molecular crowding in living cells, the effects of crowding on the dynamics of genome-sized DNA are poorly understood. Here, we track single, fluorescent-labeled large DNA molecules (11, 115 kbp) diffusing in dextran solutions that mimic intracellular crowding conditions (0-40%), and determine the effects of crowding on both DNA mobility and conformation. Both DNAs exhibit ergodic Brownian motion and comparable mobility reduction in all conditions; however, crowder size (10 vs. 500 kDa) plays a critical role in the underlying diffusive mechanisms and dependence on crowder concentration. Surprisingly, in 10-kDa dextran, crowder influence saturates at ∼20% with an ∼5× drop in DNA diffusion, in stark contrast to exponentially retarded mobility, coupled to weak anomalous subdiffusion, with increasing concentration of 500-kDa dextran. Both DNAs elongate into lower-entropy states (compared to random coil conformations) when crowded, with elongation states that are gamma distributed and fluctuate in time. However, the broadness of the distribution of states and the time-dependence and length scale of elongation length fluctuations depend on both DNA and crowder size with concentration having surprisingly little impact. Results collectively show that mobility reduction and coil elongation of large crowded DNAs are due to a complex interplay between entropic effects and crowder mobility. Although elongation and initial mobility retardation are driven by depletion interactions, subdiffusive dynamics, and the drastic exponential slowing of DNA, up to ∼300×, arise from the reduced mobility of larger crowders. Our results elucidate the highly important and widely debated effects of cellular crowding on genome-sized DNA.


Macromolecules | 2014

Onset of Non-Continuum Effects in Microrheology of Entangled Polymer Solutions

Cole D. Chapman; Kent Lee; Dean Henze; D. Smith; Rae M. Robertson-Anderson


Physical Review Letters | 2014

Nonlinear Microrheology Reveals Entanglement-Driven Molecular-Level Viscoelasticity of Concentrated DNA

Cole D. Chapman; Rae M. Robertson-Anderson


Soft Matter | 2015

Universal scaling of crowding-induced DNA mobility is coupled with topology-dependent molecular compaction and elongation

Stephanie M. Gorczyca; Cole D. Chapman; Rae M. Robertson-Anderson


Bulletin of the American Physical Society | 2014

Depletion Zone Effects in Active Microrheology Studies of DNA Solutions

Cole D. Chapman; D. Smith; Rae M. Robertson-Anderson


Bulletin of the American Physical Society | 2014

Effects of Crowding on DNA Self-Diffusion Using Single Molecule Methods

Stephanie M. Gorczyca; Cole D. Chapman; Rae M. Robertson-Anderson


Bulletin of the American Physical Society | 2013

Active Microrheology Using Optical Tweezers to Characterize Viscoelastic Properties of Entangled DNA

Cole D. Chapman; Kent Lee; Dean Henze; D. Smith; Rae Anderson


Biophysical Journal | 2012

Single-Molecule Studies of DNA Self-Diffusion in Entangled Blends of Linear and Circular DNA

Cole D. Chapman; Sachin Shanbhag; Douglas E. Smith; Rae M. Robertson-Anderson


Bulletin of the American Physical Society | 2011

Single-molecule studies of DNA self-diffusion in entangled linear and circular DNA blends

Cole D. Chapman; Michael Harlander-Locke; D. Smith; Rae M. Robertson-Anderson

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Kent Lee

University of San Diego

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