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1

Schweda, Elke. Structural studies of some bacterial lipopolysaccharides and NMR and conformational studies of some mono- and disaccharide derivatives. Stockholm: Dept. of Organic Chemistry, Arrhenius Laboratory, University of Stockholm, 1987.

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2

Bryars, Karen Helen. Synthesis, characterisation and conformational studies of six membered platinacycles. [s.l.]: typescript, 1988.

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3

Herlihy, Kara M. Conformational and biomimetic studies on hydroxamic acids and their metal complexes. Dublin: University College Dublin, 1997.

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4

Elizabe, Laurent. Conformational and structural studies of urea inclusion compounds and other molecular solids. Birmingham: University of Birmingham, 1998.

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5

service), SpringerLink (Online, ed. Molecular Conformation and Organic Photochemistry: Time-resolved Photoionization Studies. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012.

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6

Argent, Richard Harry. Studies on the in vivo processing and in vitro conformational changes of ricin A-chain. [s.l.]: typescript, 1997.

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7

Holmström, Mikael. Quantitative studies on conformation and trotting gaits in the Swedish Warmblood riding horse. Uppsala: Dept. of Anatomy and Histology, Faculty of Veterinary Medicine, Swedish University of Agricultural Sciences, 1994.

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8

Studies of the structure of potassium channel KcsA in the open conformation and the effect of anionic lipids on channel inactivation. [New York, N.Y.?]: [publisher not identified], 2019.

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9

Molecular Conformation And Organic Photochemistry Timeresolved Photoionization Studies. Springer, 2012.

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10

Duchesne, J. Structural Studies on Nucleic Acids and Other Biopolymers. Elsevier Science & Technology Books, 2012.

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11

Brogaard, Rasmus Y. Molecular Conformation and Organic Photochemistry: Time-resolved Photoionization Studies. Springer, 2014.

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12

Brogaard, Rasmus Y. Molecular Conformation and Organic Photochemistry: Time-resolved Photoionization Studies. Springer, 2012.

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13

Fee, John Gerald. Studies of the conformational properties of simple alkyl sulphones and poly(olefin sulphone)s. 1985.

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14

Michnick, Stephen William. Solution conformation studies of "Urtica dioica" agglutinin by two dimensional-nuclear magnetic resonance spectroscopy. 1990.

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15

Young, San Land. Effect of molecular conformation on the surface properties of polyelectrolyte solutions: Xanthan gum model studies. 1986.

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16

R, Srinivasan. Diffraction and Related Studies, Proceedings of the International Symposium on Biomolecular Structure, Conformation, Function and Evolution, Madras, January 1978, Biomolecular Structure, Conformation, Function, and Evolution: Proceedings of the International Symposium on Biomolecular Structure, Conformation, Function and Evolution, Madras, January 1978. Elsevier Science & Technology Books, 2013.

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17

Lattman, Eaton E., Thomas D. Grant, and Edward H. Snell. Distinct Instrumental Approaches to SAXS. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199670871.003.0010.

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There are more specialized applications of SAXS and SANS which require specific experimental considerations. This chapter covers size exclusion chromatography which has proven to be useful to study both soluble and membrane bound proteins allowing the study of samples that show time and concentration dependent dynamics. It also describes iime-resolved techniques for SAXS and in a few cases, SANS. Finally, with improved X-ray sources, detectors, sample handling, and compute power, the ability to perform SAXS data in high-throughput is available. This is discussed in enabling the use of SAXS to study protein interactions, map macromolecular conformation, and rapidly characterize samples amongst other applications.
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18

Diffraction and Related Studies: Proceedings of the International Symposium on Biomolecular Structure, Conformation, Function and Evolution, Madras, January 1978. Elsevier Science & Technology Books, 2013.

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19

Maher, Christopher J., and Elaine R. Mardis. Genomic Landscape of Cancer. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780190238667.003.0004.

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The study of cancer genomics has advanced rapidly during the last decade due to the development of next generation or massively parallel technology for DNA sequencing. The resulting knowledge is transforming the understanding of both inherited (germline) genetic susceptibility and the somatic changes in tumor tissue that drive abnormal growth and progression. The somatic alterations in tumor tissue vary depending on the type of cancer and its characteristic “genomic landscape.” New technologies have increased the speed and lowered the cost of DNA sequencing and have enabled high-volume characterization of RNA, DNA methylation, DNA-protein complexes, DNA conformation, and a host of other factors that, when altered, can contribute to the development and/or progression of the cancer. Technologic advances have greatly expanded research on somatic changes in tumor tissue, revealing both the singularity of individual cancer genomes and the commonality of genetic alterations that drive cancer in different tissues.
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