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Biomedical subjects

L Weiler

Publications and source records attributed to L Weiler.

10 recordsLinked to original sources

Synthesis and stereochemical elucidation of a 14-membered ring phosphonate.

[structure: see text]. We report the synthesis and stereochemical elucidation of a 14-membered ring phosphonate. The key step in the synthesis of the macrolide phosphonate was the cyclization of the acyclic precursor using the Mitsunobu reaction, a mild reaction for the preparation of mixed phosphonates.

Journal Article↗

Cytotoxic alkaloids motuporamines A-C: synthesis and structural verification.

[formula: see text] The unusual structure and biological properties of the marine alkaloids motuporamines A-C, as well as the uncertainty as to the position of the olefin within the ring of motuporamine C, led us to synthesize these compounds. The strategy utilized the ring-closing metathesis reaction to form the 14- and 15-membered rings and Michael addition and amidation chemistry to introduce the spermine-like unit. The syntheses, structure assignment verifications, and also the determination of the position of the olefin in motuporamine C are described.

Alkaloids↗

Modeling the interaction between FK506 and FKBP12: a mechanism for formation of the calcineurin inhibitory complex.

FK506 is a naturally occurring immunosuppressant whose mode of action involves formation of an initial complex with the cytosolic protein FKBP12. The composite surface of this complex then binds to and inhibits the protein phosphatase calcineurin (PP2B). To investigate why FK506 does not inhibit calcineurin directly we have conducted molecular modeling and conformational studies on published structures of FK506 both alone and in complex with FKBP12. From studies of the structure of FK506 in CDCl3 and Z-Arg32-ascomycin in water (a water soluble analogue of FK506) we suggest that the FK506 molecule can be viewed as consisting of three separate regions. The pipecolate region which extends from C24 to C10 including the pipecolate ring shows strongly conserved conformation in both solvents. The loop region which extends from C25 to C16 shows general conservation of the loop structure and the pyranose region made up of the pyranose ring and C15-C17 which shows highly variable conformation depending on solvent. Comparison of the structure of Z-Arg32-ascomycin in water with structures of FK506 bound to FKBP12 indicate that the conformation of the pipecolate region is conserved during the binding process. The conformation of the loop region was generally conserved but a significant reduction (approximately 1.7 A) in the diameter of the loop in the bound structure was observed. The conformation of the pyranose ring and C15-C17 region was found to be significantly altered in the bound structure resulting in displacements of the C13 and C15 methoxyl groups of 2.8 and 3.5 A, respectively. From computer models and molecular dynamics simulations of interactions between FK506 and FKBP12 we suggest that the conformational changes observed in bound FK506 are induced by the interaction between the 80's loop of FKBP12 and the pyranose ring of FKBP12. These interactions result in the formation of a complex with the both correct shape and surface polarity for interaction with calcineurin.

Calcineurin↗

Ribosome conformational changes associated with protein S6 phosphorylation.

The relative accessibility of rat liver ribosomal proteins to reductive methylation was examined using ribosomes with unphosphorylated, and extensively phosphorylated S6. Comparison of the results indicated that proteins S3, S4, S7, and S23/24 of the small subunit, and proteins L9, L10, L12, L18, L27, L34, and L36 are involved in a ribosomal conformational change.

Animals↗

An analysis of alterations in ribosomal conformation using reductive methylation.

Optimal conditions for reductive alkylation of ribosomal proteins in their native and denatured states were examined. The relative accessibility of rat liver ribosomal proteins to reductive alkylation was then examined. Intact ribosomes were firs labeled with [14C]formaldehyde and NaBH4. The proteins were then separated from RNA, denatured in 6 M guanidine, and labeled again using formaldehyde and NaB3H4. The relative accessibility of individual proteins to labeling in the intact state could thus be determined from their 3H/14C ratios following separation by two-dimensional electrophoresis. The results suggest that proteins S6, S11, S26, L3, and L35 are less accessible to labeling while proteins S1, S15, L11, L12, L16, and L24 appear relatively more accessible. The accessibility of individual proteins in ribosomes in different conformational states were then compared. The results indicated that S3, L7, and L36 are likely to be involved in a structural difference when normal polysomes and normal monomers are compared. Also, that S26 and L35, and probably S3, S20, L7, L8, L24, L27, L28 and L34 appear to be involved in a ribosomal conformation change induced by ethionine intoxication.

Animals↗