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1 analyzed for the presence of alpha-AASA and pipecolic acid.
2 the alpha-allylation of tert-butoxycarbonyl pipecolic acid.
3 f FK506 has focused on esters of proline and pipecolic acid.
4 thogonally protected cis and trans-3-hydroxy pipecolic acid.
5 access to all four isomers of the 3-hydroxy pipecolic acid.
6 ing metabolites pipecolic acid and N-hydroxy-pipecolic acid.
7 ctive amidation of the resulting unprotected pipecolic acid.
8 hesis of novel 2,6-cis-6-substituted-4-oxo-L-pipecolic acids.
9 mbled utilizing one-pot cyclodimerization of pipecolic acids.
10 rmationally restricted analogues of proline, pipecolic acid, 2-aminoadipic acid, or glutamic acid.
12 noid dehydroabietinal, the lysine catabolite pipecolic acid, a glycerol-3-phosphate-dependent factor
14 multicomponent coupling between l-proline or pipecolic acid, aldehydes, and isonitriles is described.
19 orted here had increased CSF alpha-AASA, CSF pipecolic acid, and known or likely pathogenic mutations
21 he urinary elevations in glycine betaine and pipecolic acid (as well as proline) indicated defective
24 report for the first time the occurrence of pipecolic acid betaine (homostachydrine) and its precurs
26 ha-aminoadipic semialdehyde (alpha-AASA) and pipecolic acid both in brain and liver tissues, similar
27 alidate its ability to convert L-lysine to L-pipecolic acid by a cyclodeamination reaction that invol
28 een applied to the synthesis of (R)- and (S)-pipecolic acid derivatives, (+)-beta-conhydrine, (S)-(+)
33 ly identified priming activators azelaic and pipecolic acid, elaborates on the similarity to defense
34 biocatalytic synthesis of alkyl- substituted pipecolic acids from O-acetyl-L-homoserine and beta-keto
36 yclic lactam scaffolds were synthesized from pipecolic acid in a sequence of reactions that was initi
43 f saccharopine oxidation, N-oxalylglycine, L-pipecolic acid, L-leucine, alpha-ketoglutarate, glyoxyli
44 tion for this finding is not clear, elevated pipecolic acid levels may serve as a diagnostic marker f
51 e-2-COOH; 4,4'-Bip=4,4'-biphenylalanine; Pip=pipecolic acid) of IC50=0.95 nM and EC50=0.99 nM at hMC5
52 e (a-AASA), piperideine-6-carboxylate (P6C), pipecolic acid (PA) and alpha-aminoadipic acid (alpha-AA
58 identification of the non-protein amino acid pipecolic acid (Pip), a common Lys catabolite in plants
59 y plant metabolites, salicylic acid (SA) and pipecolic acid (Pip), in the establishment of plant syst
61 Interestingly, some uncommon derivatives of pipecolic acid, such as N-methylpipecolic acid, 4-hydrox
63 the resulting 2,6-cis-6-substituted 4-oxo-l-pipecolic acids to the corresponding 4-hydroxy-L-pipecol
64 h increased levels of the salicylic acid and pipecolic acid, two compounds that are involved in syste