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229 results on '"polymer physics"'

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1. Motorized chain models of the ideal chromosome.

2. Physical modeling of nucleosome clustering in euchromatin resulting from interactions between epigenetic reader proteins.

3. Activity-driven chromatin organization during interphase: Compaction, segregation, and entanglement suppression.

4. Coarse-Grained Simulations on Polyethylene Crystal Network Formation and Microstructure Analysis.

5. A polyelectrolyte handle for single‐molecule force spectroscopy.

6. Deciphering the intrinsically disordered characteristics of the FG-Nups through the lens of polymer physics

7. 针对高分子刷构象转变的自振荡模型.

8. The Effect of Drying of Glycerol-Plasticized Starch upon Its Dielectric Relaxation Dynamics and Charge Transport.

9. A general strategy for designing complex brush architecture using star‐like polymeric grafts.

10. The Challenges Facing the Current Paradigm Describing Viscoelastic Interactions in Polymer Melts.

11. Coarse-Grained Simulations on Polyethylene Crystal Network Formation and Microstructure Analysis

12. Robust estimates of solute diffusivity in polymers for predicting patient exposure to medical device leachables.

13. Molecular Simulations in Macromolecular Science.

14. Intramolecular structural heterogeneity altered by long-range contacts in an intrinsically disordered protein.

15. Consistencies and contradictions in different polymer models of chromatin architecture

16. Gaussian basis functions for an orbital‐free‐related density functional theory of atoms.

17. Theory of chromatin organization maintained by active loop extrusion.

18. Maxwell-Dirac Isomorphism Revisited: From Foundations of Quantum Mechanics to Geometrodynamics and Cosmology.

19. Polymer physics-based mathematical models for the correlation of DNA and mRNA in a eukaryotic cell

20. 基于工程教育专业认证构建一致化的教学大纲 ——以高分子物理课程为例.

21. Unveiling the Machinery behind Chromosome Folding by Polymer Physics Modeling.

22. Molecular Dynamics Simulation of Entangled Melts at High Rates: Identifying Entanglement Lockup Mechanism Leading to True Strain Hardening.

23. Topological Considerations in Biomolecular Condensation.

24. Toward a 3D physical model of diffusive polymer chains

25. The Challenges Facing the Current Paradigm Describing Viscoelastic Interactions in Polymer Melts

26. Relation between mechanical response of reinforced elastomers and dynamics of confined polymer chains

27. Fluorescence Resonance Energy Transfer Measurements in Polymer Science: A Review.

28. How enzymatic activity is involved in chromatin organization

29. Polymer Models of Chromatin Imaging Data in Single Cells.

30. Statistics and topology of fluctuating ribbons.

31. The Physics of DNA Folding: Polymer Models and Phase-Separation.

32. Predicting genome organisation and function with mechanistic modelling.

33. Monte Carlo on manifolds in high dimensions.

34. Unveiling the Machinery behind Chromosome Folding by Polymer Physics Modeling

35. Topological Considerations in Biomolecular Condensation

36. Diffusion and distal linkages govern interchromosomal dynamics during meiotic prophase.

37. Physical mechanisms of chromatin spatial organization.

38. Efficient computational implementation of polymer physics models to explore chromatin structure.

39. Fission yeast condensin contributes to interphase chromatin organization and prevents transcription-coupled DNA damage

40. Mechanics and hydraulics of pollen tube growth.

41. Molecular weight effect of PS latex particles on optical and electrical percolations of PS latex/MWCNT nanocomposite films.

42. Segmental Lennard-Jones interactions for semi-flexible polymer networks.

43. Dynamics and rheology of ring-linear blend semidilute solutions in extensional flow: Single molecule experiments.

44. Polymer Models of Chromatin Imaging Data in Single Cells

45. UV-Visible spectroscopic study on multi-staged film formation mechanisms of graphene oxide-doped polystyrene latex (PS latex/GO) nanocomposites.

46. The Physics of DNA Folding: Polymer Models and Phase-Separation

47. Predicting Genome Architecture: Challenges and Solutions

48. Mapping cellular nanoscale viscoelasticity and relaxation times relevant to growth of living Arabidopsis thaliana plants using multifrequency AFM.

49. Predicting Genome Architecture: Challenges and Solutions.

50. Relation between mechanical response of reinforced elastomers and dynamics of confined polymer chains.

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