Corey O'Hern, PhD
Research & Publications
Biography
News
Research Summary
My research in biological physics employs both theoretical and
computational approaches, including statistical mechanics descriptions
and coarse-grained and atomistic molecular dynamics simulations, to study
important biological problems ranging from determining the
mechanical properties of skin cancer cells to understanding protein
misfolding and aggregation. A key feature of my work is that it involves close collaborations with experimental biologists and students from varied backgrounds (e.g. Engineering, Physics, Biochemistry, and Computational Biology) and multi-disciplinary training.
Extensive Research Description
My research effort in biological physics employs both theoretical and computational approaches, including statistical mechanics descriptions
and coarse-grained and atomistic molecular dynamics simulations, to study
important biological problems ranging from determining the
mechanical properties of skin cancer cells to understanding protein
misfolding and aggregation. All of the projects described below involve close collaborations with experimental biologists.
1. Smart, designer, protein-based nanogels: We design, create, and characterize new classes of
stimuli-responsive biomaterials. A distinguishing feature of these
materials is the incorporation of tetratricopeptide (TPR) modules of
defined structure and stability and cross-linkers between TPRs to
create a scaffold with structural integrity. Cross-linking in these
novel materials is governed by specific TPR-peptide
interactions. We are able to design and manipulate the
microscopic components and their interactions with unprecedented
control in these materials. We combine experimental measurements
with coarse-grained computer simulations to understand and define the
macroscopic consequences of particular designs. This coordinated process will lead to a new generation of
active biomaterials with unprecedented, highly-specific molecular
recognition capabilities and response to external stimuli. Collaborators
on this project include Profs. Eric Dufresne (Mechanical Engineering,
Chemical Engineering, Cell Biology, and Physics) and Lynne Regan (Molecular Biophysics & Biochemistry, Chemistry).
2. Understanding the structural and mechanical properties of epithelial cells:
The goal of this project is to first determine the structural
properties (cell size and shape) and mechanical constraints
(intercellular forces and packing geometry) of normal epithelial
tissue and then identify how these properties evolve during cancer
progression and wound healing. This work is based on the hypothesis that tumor
formation and cell motion during wound healing can be directly linked
to changes in the mechanical properties of the tissue. We will address three
fundamental open questions in this project: 1) Does the structure,
packing geometry, and force-bearing properties of cells and tissues
change during tumorigenesis? 2) Is there a feedback effect, in which
these changes promote the progression of tumorigenesis? and 3) To what extent can wound healing be modeled by mechanical response without biochemical signaling?
Collaborators on this project include Profs. Eric Dufresne (Mechanical Engineering & Materials Science,
Chemical Engineering, Cell Biology) and Valerie
Horsley (MCDB).
4. Nanoscale approaches to screening small molecule inhibitors of
toxic amyloid species in neurodegenerative disease: Single molecule measurements are uniquely capable of characterizing
the dynamic set of molecular species that are populated during amyloid
aggregation. We will combine experimental single molecule
fluorescence methods with computer simulations to develop a novel
approach to determine how soluble amyloid species interact with small
organic molecules. We will develop our methods using the Parkinson's
Disease associated protein, alpha-synuclein, and the Alzheimer's
Disease associated protein, tau. Using small molecules that have been
identified for their ability to perturb aggregation of these proteins, we will study their effects on protein conformational dynamics and
oligomerization process. We will specifically address two questions: (1) how do small molecules affect monomer structures and
their dynamics and (2) what is the effect of small molecules on
oligomerization. The results of these investigations will provide an
ultrasensitive, robust assay for screening small molecules that
perturb soluble pre-fibrillar amyloid species. Thus, if successful,
our proposed research will lead to a transformative change in the way
small-molecule drugs are screened, the ultimate outcome of which is
the development of drugs to treat or prevent Parkinson's, Alzheimer's,
and other amyloid diseases. This work will be performed
in collaboration with Prof. Elizabeth Rhoades (MB&B, Physics).
- Prediction of the Binding Affinity for Hydrophobic Protein-Protein Interactions
- Modeling the Conformational Dynamics of the Intrinsically Disordered Proteins alpha-synuclein and tau.
- Modeling the Collective Motion of Epithelial Cells in Response to Wounding
- Modeling Changes in the Structural and Mechanical Properties of Epithelial Cells during Tumor Formation
Coauthors
Research Interests
Protein Conformation; Thermodynamics; Protein Folding; Cell Shape
Selected Publications
- Contact network changes in ordered and disordered disk packingsTuckman PJ, VanderWerf K, Yuan Y, Zhang S, Zhang J, Shattuck MD, O'Hern CS. Contact network changes in ordered and disordered disk packings Soft Matter 2020, 16: 9443-9455. PMID: 32940321, PMCID: PMC9118336, DOI: 10.1039/d0sm01137a.
- Using physical features of protein core packing to distinguish real proteins from decoysGrigas AT, Mei Z, Treado JD, Levine ZA, Regan L, O'Hern CS. Using physical features of protein core packing to distinguish real proteins from decoys Protein Science 2020, 29: 1931-1944. PMID: 32710566, PMCID: PMC7454528, DOI: 10.1002/pro.3914.
- Analyses of protein cores reveal fundamental differences between solution and crystal structuresMei Z, Treado JD, Grigas AT, Levine ZA, Regan L, O'Hern CS. Analyses of protein cores reveal fundamental differences between solution and crystal structures Proteins Structure Function And Bioinformatics 2020, 88: 1154-1161. PMID: 32105366, PMCID: PMC7415476, DOI: 10.1002/prot.25884.
- Pressure Dependent Shear Response of Jammed Packings of Frictionless Spherical ParticlesVanderWerf K, Boromand A, Shattuck MD, O'Hern CS. Pressure Dependent Shear Response of Jammed Packings of Frictionless Spherical Particles Physical Review Letters 2020, 124: 038004. PMID: 32031840, PMCID: PMC9128574, DOI: 10.1103/physrevlett.124.038004.
- Jammed packings of 3D superellipsoids with tunable packing fraction, coordination number, and orderingYuan Y, VanderWerf K, Shattuck MD, O'Hern CS. Jammed packings of 3D superellipsoids with tunable packing fraction, coordination number, and ordering Soft Matter 2019, 15: 9751-9761. PMID: 31742301, PMCID: PMC6902436, DOI: 10.1039/c9sm01932d.
- The role of deformability in determining the structural and mechanical properties of bubbles and emulsionsBoromand A, Signoriello A, Lowensohn J, Orellana CS, Weeks ER, Ye F, Shattuck MD, O'Hern CS. The role of deformability in determining the structural and mechanical properties of bubbles and emulsions Soft Matter 2019, 15: 5854-5865. PMID: 31246221, DOI: 10.1039/c9sm00775j.
- Organization of Embryonic Morphogenesis via Mechanical InformationDas D, Jülich D, Schwendinger-Schreck J, Guillon E, Lawton AK, Dray N, Emonet T, O'Hern CS, Shattuck MD, Holley SA. Organization of Embryonic Morphogenesis via Mechanical Information Developmental Cell 2019, 49: 829-839.e5. PMID: 31178400, PMCID: PMC6590525, DOI: 10.1016/j.devcel.2019.05.014.
- Active acoustic switches using two-dimensional granular crystalsWu Q, Cui C, Bertrand T, Shattuck MD, O'Hern CS. Active acoustic switches using two-dimensional granular crystals Physical Review E 2019, 99: 062901. PMID: 31330653, DOI: 10.1103/physreve.99.062901.
- Void distributions reveal structural link between jammed packings and protein coresTreado JD, Mei Z, Regan L, O'Hern CS. Void distributions reveal structural link between jammed packings and protein cores Physical Review E 2019, 99: 022416. PMID: 30934238, PMCID: PMC6902428, DOI: 10.1103/physreve.99.022416.
- Jamming of Deformable PolygonsBoromand A, Signoriello A, Ye F, O'Hern CS, Shattuck MD. Jamming of Deformable Polygons Physical Review Letters 2018, 121: 248003. PMID: 30608748, DOI: 10.1103/physrevlett.121.248003.
- A threonine zipper that mediates protein–protein interactions: Structure and predictionOi C, Treado JD, Levine ZA, Lim CS, Knecht KM, Xiong Y, O'Hern CS, Regan L. A threonine zipper that mediates protein–protein interactions: Structure and prediction Protein Science 2018, 27: 1969-1977. PMID: 30198622, PMCID: PMC6201716, DOI: 10.1002/pro.3505.
- Critical scaling near the yielding transition in granular mediaClark AH, Thompson JD, Shattuck MD, Ouellette NT, O'Hern CS. Critical scaling near the yielding transition in granular media Physical Review E 2018, 97: 062901. PMID: 30011584, DOI: 10.1103/physreve.97.062901.
- Comparing side chain packing in soluble proteins, protein‐protein interfaces, and transmembrane proteinsGaines JC, Acebes S, Virrueta A, Butler M, Regan L, O'Hern CS. Comparing side chain packing in soluble proteins, protein‐protein interfaces, and transmembrane proteins Proteins Structure Function And Bioinformatics 2018, 86: 581-591. PMID: 29427530, PMCID: PMC5912992, DOI: 10.1002/prot.25479.
- Hypostatic jammed packings of frictionless nonspherical particlesVanderWerf K, Jin W, Shattuck MD, O'Hern CS. Hypostatic jammed packings of frictionless nonspherical particles Physical Review E 2018, 97: 012909. PMID: 29448406, PMCID: PMC6295208, DOI: 10.1103/physreve.97.012909.
- Response of jammed packings to thermal fluctuationsWu Q, Bertrand T, Shattuck MD, O'Hern CS. Response of jammed packings to thermal fluctuations Physical Review E 2017, 96: 062902. PMID: 29347455, DOI: 10.1103/physreve.96.062902.
- Local and global avalanches in a two-dimensional sheared granular mediumBarés J, Wang D, Wang D, Bertrand T, O'Hern CS, Behringer RP. Local and global avalanches in a two-dimensional sheared granular medium Physical Review E 2017, 96: 052902. PMID: 29347774, DOI: 10.1103/physreve.96.052902.
- Particle rearrangement and softening contributions to the nonlinear mechanical response of glassesFan M, Zhang K, Schroers J, Shattuck MD, O'Hern CS. Particle rearrangement and softening contributions to the nonlinear mechanical response of glasses Physical Review E 2017, 96: 032602. PMID: 29346996, DOI: 10.1103/physreve.96.032602.
- Correction: Stable small bubble clusters in two-dimensional foamsZhang K, Kuo CC, See N, O'Hern C, Dennin M. Correction: Stable small bubble clusters in two-dimensional foams Soft Matter 2017, 13: 4402-4402. PMID: 28597897, DOI: 10.1039/c7sm90097j.
- Stable small bubble clusters in two-dimensional foamsZhang K, Kuo CC, See N, O'Hern C, Dennin M. Stable small bubble clusters in two-dimensional foams Soft Matter 2017, 13: 4370-4380. PMID: 28513729, DOI: 10.1039/c7sm00723j.
- Effects of cooling rate on particle rearrangement statistics: Rapidly cooled glasses are more ductile and less reversibleFan M, Wang M, Zhang K, Liu Y, Schroers J, Shattuck MD, O'Hern CS. Effects of cooling rate on particle rearrangement statistics: Rapidly cooled glasses are more ductile and less reversible Physical Review E 2017, 95: 022611. PMID: 28297989, DOI: 10.1103/physreve.95.022611.
- Promoting convergence: The integrated graduate program in physical and engineering biology at Yale University, a new model for graduate educationNoble DB, Mochrie SG, O'Hern CS, Pollard TD, Regan L. Promoting convergence: The integrated graduate program in physical and engineering biology at Yale University, a new model for graduate education Biochemistry And Molecular Biology Education 2016, 44: 537-549. PMID: 27292366, PMCID: PMC5132113, DOI: 10.1002/bmb.20977.
- Understanding the physical basis for the side‐chain conformational preferences of methionineVirrueta A, O'Hern CS, Regan L. Understanding the physical basis for the side‐chain conformational preferences of methionine Proteins Structure Function And Bioinformatics 2016, 84: 900-911. PMID: 26917446, DOI: 10.1002/prot.25026.
- Random close packing in protein coresGaines JC, Smith WW, Regan L, O'Hern CS. Random close packing in protein cores Physical Review E 2016, 93: 032415. PMID: 27078398, DOI: 10.1103/physreve.93.032415.
- Protocol dependence of the jamming transitionBertrand T, Behringer RP, Chakraborty B, O'Hern CS, Shattuck MD. Protocol dependence of the jamming transition Physical Review E 2016, 93: 012901. PMID: 26871137, DOI: 10.1103/physreve.93.012901.
- Onset and cessation of motion in hydrodynamically sheared granular bedsClark AH, Shattuck MD, Ouellette NT, O'Hern CS. Onset and cessation of motion in hydrodynamically sheared granular beds Physical Review E 2015, 92: 042202. PMID: 26565230, DOI: 10.1103/physreve.92.042202.
- Protein design: Past, present, and futureRegan L, Caballero D, Hinrichsen MR, Virrueta A, Williams DM, O'Hern CS. Protein design: Past, present, and future Biopolymers 2015, 104: 334-350. PMID: 25784145, PMCID: PMC4856012, DOI: 10.1002/bip.22639.
- Equilibrium transitions between side‐chain conformations in leucine and isoleucineCaballero D, Smith WW, O'Hern CS, Regan L. Equilibrium transitions between side‐chain conformations in leucine and isoleucine Proteins Structure Function And Bioinformatics 2015, 83: 1488-1499. PMID: 26018846, DOI: 10.1002/prot.24837.
- Asymmetric crystallization during cooling and heating in model glass-forming systemsWang M, Zhang K, Li Z, Liu Y, Schroers J, Shattuck MD, O'Hern CS. Asymmetric crystallization during cooling and heating in model glass-forming systems Physical Review E 2015, 91: 032309. PMID: 25871112, DOI: 10.1103/physreve.91.032309.
- Shear-accelerated crystallization in a supercooled atomic liquidShao Z, Singer JP, Liu Y, Liu Z, Li H, Gopinadhan M, O'Hern CS, Schroers J, Osuji CO. Shear-accelerated crystallization in a supercooled atomic liquid Physical Review E 2015, 91: 020301. PMID: 25768445, DOI: 10.1103/physreve.91.020301.
- Calibrated Langevin-dynamics simulations of intrinsically disordered proteinsSmith WW, Ho PY, O'Hern CS. Calibrated Langevin-dynamics simulations of intrinsically disordered proteins Physical Review E 2014, 90: 042709. PMID: 25375525, DOI: 10.1103/physreve.90.042709.
- Connection between the packing efficiency of binary hard spheres and the glass-forming ability of bulk metallic glassesZhang K, Smith WW, Wang M, Liu Y, Schroers J, Shattuck MD, O'Hern CS. Connection between the packing efficiency of binary hard spheres and the glass-forming ability of bulk metallic glasses Physical Review E 2014, 90: 032311. PMID: 25314450, DOI: 10.1103/physreve.90.032311.
- Statistics of Frictional FamiliesShen T, Papanikolaou S, O'Hern CS, Shattuck MD. Statistics of Frictional Families Physical Review Letters 2014, 113: 128302. PMID: 25279647, DOI: 10.1103/physrevlett.113.128302.
- Predicting the side‐chain dihedral angle distributions of nonpolar, aromatic, and polar amino acids using hard sphere modelsZhou AQ, O'Hern CS, Regan L. Predicting the side‐chain dihedral angle distributions of nonpolar, aromatic, and polar amino acids using hard sphere models Proteins Structure Function And Bioinformatics 2014, 82: 2574-2584. PMID: 24912976, DOI: 10.1002/prot.24621.
- Hypocoordinated solids in particulate mediaBertrand T, Schreck CF, O'Hern CS, Shattuck MD. Hypocoordinated solids in particulate media Physical Review E 2014, 89: 062203. PMID: 25019766, DOI: 10.1103/physreve.89.062203.
- Intrinsic α‐helical and β‐sheet conformational preferences: A computational case study of alanineCaballero D, Määttä J, Zhou AQ, Sammalkorpi M, O'Hern CS, Regan L. Intrinsic α‐helical and β‐sheet conformational preferences: A computational case study of alanine Protein Science 2014, 23: 970-980. PMID: 24753338, PMCID: PMC4088981, DOI: 10.1002/pro.2481.
- Which Biomarkers Reveal Neonatal Sepsis?Wang K, Bhandari V, Chepustanova S, Huber G, O'Hara S, O'Hern CS, Shattuck MD, Kirby M. Which Biomarkers Reveal Neonatal Sepsis? PLOS ONE 2013, 8: e82700. PMID: 24367543, PMCID: PMC3867385, DOI: 10.1371/journal.pone.0082700.
- Particle-scale reversibility in athermal particulate media below jammingSchreck CF, Hoy RS, Shattuck MD, O'Hern CS. Particle-scale reversibility in athermal particulate media below jamming Physical Review E 2013, 88: 052205. PMID: 24329257, DOI: 10.1103/physreve.88.052205.
- Computational studies of the glass-forming ability of model bulk metallic glassesZhang K, Wang M, Papanikolaou S, Liu Y, Schroers J, Shattuck MD, O'Hern CS. Computational studies of the glass-forming ability of model bulk metallic glasses The Journal Of Chemical Physics 2013, 139: 124503. PMID: 24089782, DOI: 10.1063/1.4821637.
- Highly evolved grainsO'Hern CS, Shattuck MD. Highly evolved grains Nature Materials 2013, 12: 287-288. PMID: 23511577, DOI: 10.1038/nmat3609.
- Structural relaxation in dense liquids composed of anisotropic particlesShen T, Schreck C, Chakraborty B, Freed DE, O'Hern CS. Structural relaxation in dense liquids composed of anisotropic particles Physical Review E 2012, 86: 041303. PMID: 23214576, DOI: 10.1103/physreve.86.041303.
- Calculations of the structure of basin volumes for mechanically stable packingsAshwin SS, Blawzdziewicz J, O'Hern CS, Shattuck MD. Calculations of the structure of basin volumes for mechanically stable packings Physical Review E 2012, 85: 061307. PMID: 23005086, DOI: 10.1103/physreve.85.061307.
- Constraints and vibrations in static packings of ellipsoidal particlesSchreck CF, Mailman M, Chakraborty B, O'Hern CS. Constraints and vibrations in static packings of ellipsoidal particles Physical Review E 2012, 85: 061305. PMID: 23005084, DOI: 10.1103/physreve.85.061305.
- The Power of Hard-Sphere Models: Explaining Side-Chain Dihedral Angle Distributions of Thr and ValZhou AQ, O'Hern CS, Regan L. The Power of Hard-Sphere Models: Explaining Side-Chain Dihedral Angle Distributions of Thr and Val Biophysical Journal 2012, 102: 2345-2352. PMID: 22677388, PMCID: PMC3353012, DOI: 10.1016/j.bpj.2012.01.061.
- Contact percolation transition in athermal particulate systemsShen T, O'Hern CS, Shattuck MD. Contact percolation transition in athermal particulate systems Physical Review E 2012, 85: 011308. PMID: 22400566, DOI: 10.1103/physreve.85.011308.
- Revisiting the Ramachandran plot from a new angleZhou AQ, O'Hern CS, Regan L. Revisiting the Ramachandran plot from a new angle Protein Science 2011, 20: 1166-1171. PMID: 21538644, PMCID: PMC3149190, DOI: 10.1002/pro.644.
- Short-range order and near-field effects on optical scattering and structural coloration.Liew SF, Forster J, Noh H, Schreck CF, Saranathan V, Lu X, Yang L, Prum RO, O'Hern CS, Dufresne ER, Cao H. Short-range order and near-field effects on optical scattering and structural coloration. Optics Express 2011, 19: 8208-17. PMID: 21643071, DOI: 10.1364/oe.19.008208.
- Biomimetic Isotropic Nanostructures for Structural ColorationForster JD, Noh H, Liew SF, Saranathan V, Schreck CF, Yang L, Park J, Prum RO, Mochrie SG, O'Hern CS, Cao H, Dufresne ER. Biomimetic Isotropic Nanostructures for Structural Coloration Advanced Materials 2010, 22: 2939-2944. PMID: 20414884, DOI: 10.1002/adma.200903693.
- Non-random-coil Behavior as a Consequence of Extensive PPII Structure in the Denatured StateCortajarena AL, Lois G, Sherman E, O'Hern CS, Regan L, Haran G. Non-random-coil Behavior as a Consequence of Extensive PPII Structure in the Denatured State Journal Of Molecular Biology 2008, 382: 203-212. PMID: 18644382, PMCID: PMC2603145, DOI: 10.1016/j.jmb.2008.07.005.
- Effective Temperature in Athermal Systems Sheared at Fixed Normal LoadXu N, O'Hern CS. Effective Temperature in Athermal Systems Sheared at Fixed Normal Load Physical Review Letters 2005, 94: 055701. PMID: 15783661, DOI: 10.1103/physrevlett.94.055701.
- Velocity Profiles in Repulsive Athermal Systems under ShearXu N, O'Hern CS, Kondic L. Velocity Profiles in Repulsive Athermal Systems under Shear Physical Review Letters 2005, 94: 016001. PMID: 15698098, DOI: 10.1103/physrevlett.94.016001.
- Random Packings of Frictionless ParticlesO'Hern CS, Langer SA, Liu AJ, Nagel SR. Random Packings of Frictionless Particles Physical Review Letters 2002, 88: 075507. PMID: 11863912, DOI: 10.1103/physrevlett.88.075507.