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1 ontacts to residues of the proteasome Pro-17 reverse turn.
2 ening by repositioning the proteasome Pro-17 reverse turn.
3 ing step corresponds to the formation of the reverse turn.
4 of the substituted residue to be found in a reverse turn.
5 ropane dipeptide isosteres could stabilize a reverse turn.
6 aining amphiphilic beta-strands separated by reverse turns.
7 ino acid sequences TPEE and NPTY form type I reverse turns.
8 the direction of the peptide chain define a reverse turn, a common motif and recognition site in pro
9 antiparallel strands connected by a modified reverse turn (A27 replaced by D), a natural disulfide cr
11 -terminally to its homeodomain-which forms a reverse turn and inserts into a hydrophobic pocket on th
13 (536)Y-N-G-H-P-P(541), which forms a type I' reverse turn and provides several interactions with the
16 ype I beta-turns are the most common type of reverse turn, and they exhibit a statistical consensus s
17 y 721 and Gly 722 are located in a Type III' reverse turn, and this type of secondary structural moti
19 e RGD sequence has a significant amount of a reverse turn around the RGD region, is a potent inhibito
23 otif with a helical turn followed by an open reverse turn centered at Gly-348, a helix-terminating C
24 sequence requirements for stabilization of a reverse turn conformation in a short peptide in water so
28 at all analogs except for SS-31 form compact reverse turn conformations in the membrane-bound state.
32 cate a region of order (beta-sheet), a tight reverse turn containing the proline, and a second region
33 scan receptors for biological recognition of reverse turns containing cis-amide bonds by the incorpor
35 re stabilized upon glycosylation in specific reverse turn contexts: a five-residue type I beta-turn h
38 before a glycosylated asparagine in distinct reverse turns facilitates stabilizing interactions betwe
42 relationships of C(alpha)-C(beta) vectors of reverse turns in proteins were subjected to principal co
44 re found to be superior to the best designed reversing turns in terms of nucleating beta-sheet struct
46 -furanoid sugar amino acid frameworks act as reverse-turn inducers with a U-shaped conformation, wher
47 ations revealed a galactan main chain with a reverse turn involving the beta-1-->6 link between the t
50 rminal of Nle(3)-gamma-MSH-NH(2), there is a reverse-turn-like structure, suggesting that there might
52 ion of the lactam ring, can act as effective reverse-turn mimics and have proven to be useful interme
55 orial region of the dimeric capsule, and the reverse turn of the chain and the methyl terminal in eac
56 atic sequon, a structural motif found in the reverse turns of some N-glycoproteins, to facilitate fac
60 e design and synthesis of an acyclic peptoid reverse-turn structure, in which N-aryl side chains outf
63 th peptides when bound to HPTRX/CDEF adopt a reverse turn that is consistent with the C-cap structure
64 With two antiparallel helices connected by a reverse turn, the alpha-helical hairpin structure may be
65 oline is placed at the i + 1 position of the reverse turn to promote a type II' beta-turn, and (iii)
67 -MSH it has been demonstrated further that a reverse-turn type conformation exists at this pharmacoph
68 incorporates two proline residues to induce reverse turns, was designed to form a triple-stranded be
69 et(56)-Gly-Asp-Glu(59)- forms a four-residue reverse turn which undergoes a conversion from a mix of
70 e appearance of images when their colors are reversed, turning white to yellow and silver to gold, an