Advances in Organic Crystal Chemistry: Comprehensive Reviews by Rui Tamura, Mikiji Miyata

By Rui Tamura, Mikiji Miyata

For the decade, the subjects of natural crystal chemistry became different, and every subject has been considerably complicated in live performance with the quick improvement of varied analytical and dimension recommendations for solid-state natural fabrics. the purpose of this ebook is to systematically summarize and list the new striking advances in numerous subject matters of natural crystal chemistry regarding liquid crystals and organic–inorganic hybrid fabrics which have been accomplished often within the final five years or so. The authors are invited participants of the department of natural Crystals, The Chemical Society of Japan (CSJ), and renowned invited specialists from in a foreign country. This edited quantity is deliberate to be released periodically, no less than each five years, with contributions via in demand authors in Japan and from abroad.

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Yoshimura, Y. Lin, H. , Distinguishing crystal-like amyloid fibrils and glass-like amorphous aggregates from their kinetics of formation. Proc. Natl. Acad. Sci. U. S. A. 109, 14446–14451 (2012) 35. P. Saborio, B. Permanne, C. Soto, Sensitive detection of pathological prion protein by cyclic amplification of protein misfolding. Nature 411, 810–813 (2001) 36. P. Saa, J. Castilla, C. Soto, Ultra-efficient replication of infectious prions by automated protein misfolding cyclic amplification. J. Biol. Chem.

M. Dobson, Protein misfolding, functional amyloid, and human disease. Annu. Rev. Biochem. 75, 333–366 (2006) 5. M. Dobson, Protein folding and misfolding. Nature 426, 884–890 (2003) 6. P. D. N. , A primer of amyloid nomenclature. Amyloid 14, 179–183 (2007) 7. M. V. E. , Functional amyloid – from bacteria to humans. Trends Biochem. Sci. 32, 217–224 (2007) 8. C. Wasmer, A. Lange, H. , Amyloid fibrils of the HET-s(218–289) prion form a beta solenoid with a triangular hydrophobic core. Science 319, 1523–1526 (2008) 9.

12 ppm) for urea in the transient solid form with the 13 C chemical shifts for urea in different materials provides further insights into the identity of the transient solid form. 9 ppm) can be ruled out. -dihydroxyalkane-(urea)2 cocrystals can be subdivided into three structure types. 58 ppm 3 In Situ Solid-State NMR Studies of Crystallization Processes 45 [1,10-dihydroxydecane-(urea)2]. 06 ppm), from which we may suggest that the transient solid form present in the early stages of the crystallization process may be a 1,10-dihydroxydecane-(urea)2 co-crystal with the parallel/acute structure type.

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