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Titlebook: Deuterium Oxide and Deuteration in Biosciences; Chang-Hwei Chen Book 2022 The Editor(s) (if applicable) and The Author(s), under exclusive

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Biochemical Effects of Deuterium Oxide and DeuterationThe stability of a biomolecule is vital for its biological function. Proper conformation is partially driven by intermolecular interactions between biomolecule and water. Studies of deuterium oxide and deuteration effects can provide insight into the role of solvation, hydrogen bonding, and hydrophobicity in biomolecule-water interactions.
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Data Manipulation and Simple Calculationsssential for life by not only serving as a solvent but also contributing to an active role in biological structures and functions. Accordingly, water should not be treated as an inert environment alone but rather as an integral component of biomolecular systems. Researching water advances our unders
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https://doi.org/10.1007/978-981-19-4782-7n der Waals forces. Hydrogen bonding is an . attraction force that involves a partially positively charged . atom . to a nearby partially negatively charged atom, such as oxygen, nitrogen, or fluorine that carries a . of electrons. Polar molecules that are capable of forming . have hydrogen atoms th
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https://doi.org/10.1007/978-981-19-4782-7tailed theory of the hydrophobic effect. They described water molecules rearranging into a microscopic iceberg around a nonpolar molecule and discussed the entropic effect of this iceberg formation. The simple hydrophobic substances hydrocarbons and nonpolar organic substances. In biomolecules, hydr
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Radiogene Isotope in der Umweltforschungbiomolecular bindings through hydrogen bond and hydrophobic interaction in complex formation. Hence, changes in the aqueous environment, such as replacement of H.O with D.O as the solvent, are expected to affect the structure and function of biomolecules. Studies of deuteration effects on proteins r
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https://doi.org/10.1007/978-3-663-01866-7 deuterium oxide and deuteration effects on the structure and function of biomolecules include nuclear magnetic resonance, infrared, ultraviolet and visible, and fluorescence spectroscopies, as well as other physical methods including neutron scattering, differential scanning calorimetry, circular d
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