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1

D, Knudsen Walter, and Bruns Sam S, eds. Bacterial DNA, DNA polymerase, and DNA helicases. Hauppauge, NY: Nova Science, 2009.

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2

Spies, Maria, ed. DNA Helicases and DNA Motor Proteins. New York, NY: Springer New York, 2013. http://dx.doi.org/10.1007/978-1-4614-5037-5.

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3

Helicases: Methods and protocols. New York, N.Y: Humana Press, 2010.

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4

Lombard, David B. Biochemistry and genetics of recq-helicases. Boston, MA: Kluwer Academic Publishers, 2001.

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5

Lombard, David B. Biochemistry and genetics of recq-helicases. Boston, MA: Kluwer Academic Publishers, 2001.

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6

N, Potaman Vladimir, ed. Triple-helical nucleic acids. New York: Spinger, 1996.

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7

Spies, Maria. DNA Helicases and DNA Motor Proteins. Springer New York, 2014.

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8

Spies, Maria. DNA Helicases and DNA Motor Proteins. Springer London, Limited, 2012.

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9

Abdelhaleem, Mohamed M. Helicases: Methods and Protocols. Humana Press, 2012.

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10

Lombard, David B. Biochemistry and Genetics of RecQ-Helicases. Springer, 2012.

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11

Lombard, David B. Biochemistry and Genetics of Recq-Helicases. Springer London, Limited, 2012.

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12

Lombard, David B. Biochemistry and Genetics of RecQ-Helicases. Springer, 2000.

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13

Tuteja, Renu. Helicases from All Domains of Life. Elsevier Science & Technology Books, 2018.

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14

Tuteja, Renu. Helicases from All Domains of Life. Elsevier Science & Technology, 2018.

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15

Soyfer, Valery N., and Vladimir N. Potaman. Triple-Helical Nucleic Acids. Springer London, Limited, 2012.

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16

Uchiumi, Fumiaki, Masayuki Seki, and Yasuhiro Furuichi, eds. DNA helicases: expression, functions and clinical implications. Frontiers Media SA, 2015. http://dx.doi.org/10.3389/978-2-88919-575-6.

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17

Soyfer, Valery N. Triple-Helical Nucleic Acids. Springer, 2011.

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18

Soyfer, Valery N., and Vladimir N. Potaman. Triple Helical Nucleic Acids. Springer, 1996.

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19

DNA Helicases and DNA Motor Proteins Advances in Experimental Medicine and Biology. Springer, 2012.

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20

Bensimon, David, Vincent Croquette, Jean-François Allemand, Xavier Michalet, and Terence Strick. Single-Molecule Studies of Nucleic Acids and Their Proteins. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198530923.001.0001.

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This book presents a comprehensive overview of the foundations of single-molecule studies, based on manipulation of the molecules and observation of these with fluorescent probes. It first discusses the forces present at the single-molecule scale, the methods to manipulate them, and their pros and cons. It goes on to present an introduction to single-molecule fluorescent studies based on a quantum description of absorption and emission of radiation due to Einstein. Various considerations in the study of single molecules are introduced (including signal to noise, non-radiative decay, triplet states, etc.) and some novel super-resolution methods are sketched. The elastic and dynamic properties of polymers, their relation to experiments on DNA and RNA, and the structural transitions observed in those molecules upon stretching, twisting, and unzipping are presented. The use of these single-molecule approaches for the investigation of DNA–protein interactions is highlighted via the study of DNA and RNA polymerases, helicases, and topoisomerases. Beyond the confirmation of expected mechanisms (e.g., the relaxation of DNA torsion by topoisomerases in quantized steps) and the discovery of unexpected ones (e.g., strand-switching by helicases, DNA scrunching by RNA polymerases, and chiral discrimination by bacterial topoII), these approaches have also fostered novel (third generation) sequencing technologies.
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21

Mabuto, Yolanda. Identification of Protein Interaction Partners of Chromodomain Helicase DNA Binding Protein 6. Independently Published, 2018.

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22

Kalnik, Matthew Walter. NMR solution studies of covalent carcinogenic adducts and helical lesions in DNA. 1989.

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23

Molecular Mechanisms of Werner's Syndrome. Springer, 2004.

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24

Goto, M., ed. From Premature Gray Hair To Helicase - Werner Syndrome: Implications for Aging and Cancer (Gann Monographs on Cancer Research). Karger, 2001.

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25

wallace, linet. Scientist Lined Notebook Journal. If I Were an Enzyme I'd Be DNA Helicase So That I Can Unzip Your Genes Gift. Independently Published, 2020.

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26

Money, Nicholas P. 3. Microbial genetics and molecular microbiology. Oxford University Press, 2014. http://dx.doi.org/10.1093/actrade/9780199681686.003.0003.

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Cell structures and metabolic processes are specified by genes. The genomes of bacteria, archaea, and eukaryotic microorganisms are encoded in double-stranded helices of DNA. ‘Genetics and molecular microbiology’ explains that advances in sequencing techniques and the development of automated sequencing methods have allowed scientists to sequence the genomes of 4,000 bacterial genomes, 200 archaea, and 200 eukaryotes. Genome sizes vary a great deal within each category of microorganism and the largest prokaryote genomes overlap the smallest eukaryote genomes. Natural mutations in microorganisms play a primary role in evolution. Reproduction in prokaryotes is always asexual, whereas mechanisms of sexual reproduction have been studied in eukaryotic microorganisms belonging to all of the supergroups.
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27

Chems, Sebastian. I Wish I Was DNA Helicase So: Kalender 2022 Für Notizen und Termine Im A5 Format. Klassisches Softcover Biologie Für Biologielehrer und Biologen. Independently Published, 2021.

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28

La Doble Helice: Relato Personal Del Descubrimiento De La Estructura Del Adn / a Personal Account of the Discovery of the Structure of ... (Ciencia Y Tecnica / Science and Technology). Alianza, 2005.

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