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020 ▼a 9781687991614
035 ▼a (MiAaPQ)AAI22623119
040 ▼a MiAaPQ ▼c MiAaPQ ▼d 247004
0820 ▼a 542
1001 ▼a Chatterjee, Anupam.
24510 ▼a Simulation Aspects of the Mechanics of Biomolecular Filaments: Crackling in DNA Unzipping and the Contraction of Bacteriophage Tails.
260 ▼a [S.l.]: ▼b University of California, Irvine., ▼c 2019.
260 1 ▼a Ann Arbor: ▼b ProQuest Dissertations & Theses, ▼c 2019.
300 ▼a 92 p.
500 ▼a Source: Dissertations Abstracts International, Volume: 81-06, Section: B.
500 ▼a Advisor: Andricioaei, Ioan.
5021 ▼a Thesis (Ph.D.)--University of California, Irvine, 2019.
506 ▼a This item must not be sold to any third party vendors.
520 ▼a Both DNA and the contractile tail sheaths of bacteriophages are examples of biofilaments, whose monomer subunits consist of nucleotides and proteins respectively. The bending and torsional deformations of tail sheaths and strand separation of ds-DNA are important phenomena essential for their biological functions. Despite the great prevalence and biomedical importance of contractile delivery systems, many fundamental details of their injection machinery and dynamics are still unknown. On a similar note, a detailed theoretical understanding of the monomer-level dynamics of DNA unzipping under constant force is also lacking in literature. In the subsequent chapters of this thesis, I will describe how computer simulations can be used to perform an in-depth study of both of the above phenomena. I would begin by describing a method which uses molecular dynamics simuations to calculate the bending and torsional stiffness constants of two biologically relevant contractile tail sheaths: bacteriophage T4 and R2-pyocin. Next, I would describe how the stiffness constants can be incorporated in a continuum dynamic model to simulate the dynamics of contractile nano-injection machineries. Finally, I would describe how MD simuations can be used to study the unzipping dynamics of a long DNA homopolymer, which would to a fascinating discovery where the 'avalanches' in the unzipping velocity time series show a power law variation in avalanche size and time similar to crackling noise in other unrelated physical systems. The studies of these phenomena are of great biological significance
590 ▼a School code: 0030.
650 4 ▼a Chemistry.
650 4 ▼a Computational chemistry.
690 ▼a 0485
690 ▼a 0219
71020 ▼a University of California, Irvine. ▼b Chemistry - Ph.D..
7730 ▼t Dissertations Abstracts International ▼g 81-06B.
773 ▼t Dissertation Abstract International
790 ▼a 0030
791 ▼a Ph.D.
792 ▼a 2019
793 ▼a English
85640 ▼u http://www.riss.kr/pdu/ddodLink.do?id=T15493973 ▼n KERIS ▼z 이 자료의 원문은 한국교육학술정보원에서 제공합니다.
980 ▼a 202002 ▼f 2020
990 ▼a ***1008102
991 ▼a E-BOOK