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・ Rotax 185
・ Rotax 277
・ Rotax 377
・ Rotax 447
・ Rotax 462
・ Rotax 503
・ Rotax 532
・ Rotax 535
・ Rotax 582
・ Rotax 618
・ Rotax 912
・ Rotax 914
・ Rotax 915 iS
・ Rotax Max
・ Rotax Max Challenge
Rotaxane
・ Rota–Baxter algebra
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・ Rotbach (Dreisam)
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・ Rotbach (Rhine)
・ Rotbav Archaeological Site
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Rotaxane : ウィキペディア英語版
Rotaxane


A rotaxane is a mechanically interlocked molecular architecture consisting of a "dumbbell shaped molecule" which is threaded through a "macrocycle" (see graphical representation). The name is derived from the Latin for wheel (rota) and axle (axis). The two components of a rotaxane are kinetically trapped since the ends of the dumbbell (often called stoppers) are larger than the internal diameter of the ring and prevent dissociation (unthreading) of the components since this would require significant distortion of the covalent bonds.
Much of the research concerning rotaxanes and other mechanically interlocked molecular architectures, such as catenanes, has been focused on their efficient synthesis or their utilization as artificial molecular machines. However, examples of rotaxane substructure have been found in naturally occurring peptides, including: cystine knot peptides, cyclotides or lasso-peptides such as microcin J25.
== Synthesis ==
The earliest reported synthesis of a rotaxane in 1967 relied on the statistical probability that if two halves of a dumbbell-shaped molecule were reacted in the presence of a macrocycle that some small percentage would connect through the ring. To obtain a reasonable quantity of rotaxane, the macrocycle was attached to a solid-phase support and treated with both halves of the dumbbell 70 times and then severed from the support to give a 6% yield. However, the synthesis of rotaxanes has advanced significantly and efficient yields can be obtained by preorganizing the components utilizing hydrogen bonding, metal coordination, hydrophobic forces, covalent bonds, or coulombic interactions. The three most common strategies to synthesize rotaxane are "capping", "clipping", and "slipping", though others do exist. Recently, Leigh and co-workers described a new pathway to mechanically interlocked architectures involving a transition-metal center that can catalyse a reaction through the cavity of a macrocycle.

抄文引用元・出典: フリー百科事典『 ウィキペディア(Wikipedia)
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