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C Toniolo

Publications and source records attributed to C Toniolo.

At least 73 records · Page 4Linked to original sources

A bioactive fullerene peptide.

The highly hydrophobic C60 (buckminsterfullerene) was water solubilized by covalently linking the synthon 1,2-dihydro-1,2-methanofullerene [60]-61-carboxylic acid to the alpha-amino group of the hydrophilic 4-8 sequence of peptide T, known to display potent human monocyte chemotaxis. The resulting compound, characterized by a variety of analytical techniques, including a UV spectrum in aqueous solution, exhibits remarkable chemotactic potency, comparable to that of the parent pentapeptide. Furthermore, this fullerene-peptide conjugate inhibits, albeit weakly, HIV-1 protease.

Amino Acid Sequence↗

N alpha-benzyloxycarbonyl-alpha-aminoisobutyryl-glycyl-L-isoleucyl- L-leucine methyl ester monohydrate.

(Z)-Aib-Gly-L-Ile-L-Leu-OMe.H2O, C27H42N4O7.H2O, is a protected analogue of the C-terminal sequence of the membrane-active peptaibol antibiotic trichogin A IV. The peptide backbone is folded. The urethane carbonyl O atom acts as the acceptor of two intramolecular hydrogen bonds which give rise to a beta bend and to an alpha bend. The geometry of the latter is significantly distorted from that observed in alpha helices. This structure represents the first observation of an alpha bend in a protected tetrapeptide sequence.

Amino Acid Sequence↗

Defect peptide chemistry: perturbations in the structure of a homopentapeptide induced by a guest residue interrupting side-chain regularity.

The fully blocked pentapeptide Tfa-(Deg)2-L-Abu-(Deg)2-OtBu (Tfa: triflouroacetyl; Deg: C alpha, alpha-diethylglycine; Otbu: tert-butoxy) adopts in the crystal state a regular, right-handed 3(10)-helical structure stabilized by three N--H...O=C intramolecular 1 < 4 (or C10) H bonds, as determined by an x-ray diffraction analysis. However, a Fourier transform ir absorption and 1H-nmr study strongly supports the view that in deuterochloroform solution the four Deg residues at both termini of the peptide main chain are involved in successive, fully extended C5 forms. A comparison with the stable, fully developed, multiple C5 conformation of Tfa-(Deg)5-OtBu indicates that incorporation of an Abu guest residue, interrupting the side-chain uniformity of the host (Deg)5 homopeptide, while altering only marginally the conformation in a solvent of low polarity, is responsible for a dramatic perturbation of the crystal-state structure.

Amino Acid Sequence↗

Onset of the fully extended conformation in (alpha Me)Leu derivatives and short peptides.

The X-ray diffraction crystal structures of the (alpha Me)Leu derivative mClAc-D-(alpha Me) Leu-OH and the terminally protected tripeptide Z-D-(alpha Me) Leu-(L-Ala)2-OMe show the onset of the fully extended (C5) conformation for the (alpha Me) Leu residue in both independent molecules in the asymmetric unit of the former compound and in two out of the four independent molecules in the asymmetric unit of the latter compound. In addition, conformational analysis in CDCl3 solution (using FT-infra-red absorption and 1H nuclear magnetic resonance) revealed the occurrence of a significant population of fully extended conformers throughout the entire sequence of the (alpha Me) Leu homochiral homopeptides pBrBz-[D-(alpha Me) Leu]n-OtBu (from monomer to tetramer). Taken together, these results represent a clear indication that this peptide secondary structure, uncommon for protein amino acids and other C alpha-methylated chiral residues, is not a rare observation in (alpha Me) Leu derivatives and short peptides.

Amino Acid Sequence↗

Structure determination of racemic trichogin A IV using centrosymmetric crystals.

Direct methods of crystal structure solution are greatly facilitated in centrosymmetric space groups where the complexity of the phase-problem is reduced. For most peptides and proteins, crystallization in a centrosymmetric arrangement is precluded by an intrinsic dissymmetry due to the constituent chiral amino acid residues. The synthetic accessibility of peptide sequences containing amino acids of either chirality offers the possibility for co-crystallization of racemic crystals. We report here the first use of such an approach for the de novo structure determination of a medium-sized molecule, trichogin A IV, which is a constituent of a fungal lipopeptaibol mixture possessing membrane-modifying properties of biological interest.

Amino Acid Sequence↗

A crystal-state, solution and theoretical study of the preferred conformation of linear C alpha, alpha-diphenylglycine derivatives and dipeptides with potential anticonvulsant activity.

Several linear molecules containing the C alpha, alpha-diphenylglycine residue were prepared as potential anticonvulsants. The conformational preferences of the C alpha, alpha-diphenylglycine residue were assessed in these synthetic derivatives and dipeptides by X-ray diffraction, FTIR absorption and 1H NMR techniques, and by conformational energy computations. Five (out of six) derivatives adopt the fully extended C5 conformation in the crystal state. This intramolecularly H-bonded form is largely populated in chloroform solution in all the derivatives investigated. Conformational energy computations in vacuo support the view that the intramolecularly H-bonded C7-ring form is the most stable structure for these compounds. Only one linear derivative exhibits a (modest) anticonvulsant activity.

Animals↗

Structures of peptides from alpha-amino acids methylated at the alpha-carbon.

The structural preferences of peptides (and depsipeptides) from the achiral MeAib and Hib residues, and the chiral Iva, (alpha Me) Val, (alpha Me) Leu, and (alpha Me) Phe residues, as determined by conformational energy computations, x-ray diffraction analyses, and 1H-nmr and spectroscopic studies, are reviewed and compared with literature data on Aib-containing peptides. The results obtained indicate that helical structures are preferentially adopted by peptides rich in these alpha-amino acids methylated at the alpha-carbon. Intriguing experimental findings on the impact of the chirality of Iva, (alpha Me) Val, and (alpha Me) Phe residues on helix screw sense are illustrated.

Amino Acid Sequence↗

Reverse relationship between alpha-carbon chirality and helix handedness in (alpha Me)Phe peptides.

The crystal-state preferred conformations of two tripeptides, one tetrapeptide, and one pentapeptide, each containing a single residue of the chiral, C alpha, alpha-disubstituted glycine C alpha-methyl, C alpha-benzylglycine [(alpha Me)Phe], have been determined by X-ray diffraction. The tripeptides are Z-L-(alpha Me)Phe-(Aib)2-OH dihydrate and Z-Aib-D-(alpha Me)Phe-Aib-OtBu, the tetrapeptide is Z-(Aib)2-D-(alpha Me)Phe-Aib-OtBu, and the pentapeptide is pBrBz-(Aib)2-DL-(alpha Me)Phe-(Aib)2-OtBu. While the two tripeptides are folded in a beta-bend conformation, two such conformations are consecutively formed by the tetrapeptide. The pentapeptide adopts a regular 3(10)-helix promoted by three consecutive beta-bends. This study confirms the strong propensity of short peptides containing C alpha-methylated alpha-aminoacids to fold into beta-bends and 3(10)-helical structures. Since Aib is achiral, the handedness of the observed bends and helices is dictated by the presence of the (alpha Me)Phe residue. In general, we have found that the relationship between (alpha Me)Phe chirality and helix handedness is opposite to that exhibited by protein aminoacids. A comparison with the preferred conformation of other extensively investigated C alpha-methylated aminoacids is made.

Models, Molecular↗

First characterization at atomic resolution of the C-activating groups in a peptide synthesis acid chloride, acid azide and carboxylic-carboxylic mixed anhydride.

The X-ray diffraction structures of three N alpha-protected, C alpha-activated MeAib derivatives are reported. They are Tos-MeAib-Cl, Tos-MeAib-N3 and Tos-MeAib-O-Piv. The geometry and conformation of these classical carboxyl activating groups, which have been characterized at atomic resolution for the first time, are discussed.

Anhydrides↗

Conformational versatility of the N alpha-acylated tripeptide amide tail of oxytocin. Synthesis and crystallographic characterization of three C2 alpha-backbone modified, conformationally restricted analogues.

The synthesis, physical and analytical characterization, and crystal-state structural analysis by X-ray diffraction of three analogues of the N alpha-acylated tripeptide amide tail of oxytocin, each containing a cyclic C alpha, alpha-disubstituted glycine at position 2, have been performed. The peptides are Boc-L-Pro-Ac3c-Gly-NH2, Z-L-Pro-Ac5c-Gly-NH2 and Z-L-Pro-Ac6c-Gly-NH2. While the former is folded in a type-II beta-turn conformation at the -L-Pro-Ac3c- sequence, the two latter tripeptides form two consecutive (type-II, type-I') beta-turns. The Ac5c- and Ac6c-tripeptides are the first examples of such a highly folded structural combination in a position-2 analogue of the N alpha-acylated -L-Pro-L-Leu-Gly-NH2 sequence.

Acylation↗

The beta-bend ribbon spiral. Synthesis and conformational analysis in solution and in the crystal state of depsipeptides containing alpha-hydroxyisobutyric acid.

The synthesis and conformational analysis in solution (by FTIR absorption and 1H NMR) and in the crystal state (by X-ray diffraction) of three Hib-containing depsipeptides have been performed. In the crystal state Z-Aib-Hib-Aib-OMe is folded into a type-III beta-bend, while the conformation adopted by Z-Aib-Hib)2-Aib-OMe is a beta-bend ribbon spiral, characterized by two type-III beta-bends with Aib(1)-Hib(2) and Aib(3)-Hib(4) as corner residues, respectively. Both independent molecules in the asymmetric unit of t-Boc-L-Ala-Hib-L-Ala-OMe crystals are folded into a type-II beta-bend. For the Aib-Hib depsipeptides the conformation adopted in the crystal state is also that largely prevailing in solution, whereas for t-Boc-L-Ala-Hib-L-Ala-OMe the beta-bend conformation is significantly less populated in solution. A comparison is also made with: (i) the published crystal-state conformations of fully protected -(Aib)3-, -(Aib)5-, and -L-Ala-Aib-L-Ala- sequences and the beta-bend ribbon spiral generated by (Aib-L-Pro)n oligomers, and (ii) with the herewith described solution preferred conformation of Z-L-Ala-Aib-L-Ala-OMe. The possible use of Hib as an isosteric replacement for Aib in the design of conformationally constrained depsipeptides is briefly discussed.

Amino Acid Sequence↗

Characterization at atomic resolution of peptide helical structures.

A survey of literature for the various types of helices experimentally observed in high-resolution single crystal x-ray diffraction analyses of peptides has allowed to determine accurate conformational and helical parameters for the various secondary structures such as the alpha-helix, the 3(10)-helix, the fully extended conformation (2(5)-helix) and the beta-bend ribbon spiral. For each of these structures the characteristic phi, psi conformational parameters, n, the number of residues per turn, h, the height per residues and p, the pitch of the helix are described.

Models, Molecular↗

Alpha-beta-dehydro-amino acid residues in the design of peptide structures. Molecular and crystal structures of two folded dehydro peptides.

The molecular and crystal structures of two N alpha-protected tripeptide amides, containing in the central position the alpha-beta-dehydro-amino acid residue delta Phe (Z-configurational isomer), were determined by X-ray diffraction. While Z-Gly-delta Phez-L-Pro-NH2 is characterized in the crystal state by the presence of a type I beta-bend conformation (at the delta Phez-L-Pro sequence), Z-D-Ala-delta Phez-Gly-NH2 is folded into two consecutive beta-bends (type II' followed by type I), at the D-Ala-delta Phez and delta Phez-Gly sequences, respectively. In both cases the achiral delta Phez residue adopts a set of phi, psi angles typical of the right-handed helical conformation. The delta Phe residue may be exploited to design aromatic peptides with preferred secondary structures.

Amino Acid Sequence↗

Monomer units for the beta-bend ribbon structure: MeAib peptides.

A conformational analysis in CDCl3 solution by using i.r. absorption and 1H nuclear magnetic resonance spectroscopy was performed on the fully blocked dipeptides Z-MeAib-Aib-NHMe, Z-MeAib-L-Ala-NHMe, Z-Aib-MeAib-NHMe, and Z-L-Ala-MeAib-NHMe, representing repeating units of the beta-bend ribbon spiral (an approximate 3(10)-helix, with an intramolecular H-bonding donor every two residues), where Z represents benzyloxycarbonyl, MeAib alpha-methylaminoisobutyric acid, and NHMe methylamino. The molecular and crystal structures of the first three compounds were also assessed by X-ray diffraction. While the -MeAib-Aib-, -MeAib-L-Ala-, and -Aib-MeAib- sequences give stable beta-bend structures, the preferred conformation of the -L-Ala-MeAib- sequence is open. These results indicate that the MeAib residue is a good beta-bend promoter, but less efficient than its unmethylated counterpart at position i + 2.

Dipeptides↗

Studies of peptides forming 3(10)- and alpha-helices and beta-bend ribbon structures in organic solution and in model biomembranes by Fourier transform infrared spectroscopy.

In order to examine the potential correlation between infrared absorption spectra and 3(10)- and alpha-helices and beta-bend ribbon structures, the secondary structures of synthetic peptides known to contain pure 3(10)-helices, mixed 3(10)/alpha-helices, and pure beta-bend ribbon structures, based upon X-ray diffraction and NMR studies, have been investigated by using FTIR spectroscopy incorporating resolution-enhancement techniques. Studies of the peptides known to contain a stable 3(10)-helix in CDCl3 show the main amide I band of fully stable 3(10)-helices occurs at 1666-1662 cm-1. Resolution-enhancement methods revealed small contributions at 1681-1678 and 1646-1644 cm-1, while the amide II band occurs at 1533-1531 cm-1. Peptides known to contain both alpha- and 3(10)-helices in their structure exhibit bands characteristic of both types of conformation. Peptides known to fold into the beta-bend ribbon structure show an amide I band maximum at 1648-1645 cm-1 with the amide II band at 1538-1536 cm-1. Incorporation of these peptides into model membrane structures, e.g., DMPC vesicles, in aqueous buffer sometimes produces changes in the peptide secondary structure. Those peptides which possess a 3(10)-helical structure in CDCl3 solution change the secondary structure in DMPC vesicles to predominantly alpha-helical, plus a contribution from short, unstable 3(10)-helix and/or beta-turns. Those peptides which contain a combination of alpha- and 3(10)-helical structures in CDCl3 solution tend to retain some 3(10)-helical structure within the lipid environment, although the overall H-bonding pattern is altered. Those peptides which form a beta-bend ribbon structure appear to be largely unaffected in the membrane environment.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Preferred conformation of peptides from C alpha,alpha- symmetrically disubstituted glycines: aromatic residues.

The conformational preference of C(alpha,alpha-diphenylglycine (D-phi-g) and C(alpha,alpha)-dibenzylglycine (Dbz) residues was assessed in selected derivatives and small peptides by conformational energy computations, ir absorption, 1H-nmr, and x-ray diffraction. Conformational energy computations on the two monopeptides strongly support the view that these C(alpha,alpha)-symmetrically disubstituted glycines are conformationally restricted and that their minimum energy conformation falls in the fully extended (C5) region. The results of the theoretical analyses appear to be in agreement with the solution and crystal-state structural propensities of three derivatives and seven di- and tripeptides.

Amino Acid Sequence↗

The polypeptide 310-helix.

The 310-helix, first predicted as a reasonably stable polypeptide secondary structure fifty years ago, has only recently attracted the attention of structural biochemists and protein crystallographers. It represents the third principal structure occurring in globular proteins and has been described at atomic resolution in model peptides and in peptaibol antibiotics.

Humans↗

Peptides from chiral C alpha,alpha-disubstituted glycines. Synthesis and characterization, conformational energy computations and solution conformational analysis of C alpha-methyl, C alpha-isopropylglycine [(alpha Me)Val] derivatives and model peptides.

Conformational energy computations on Ac-L-(alpha Me)Val-NHMe indicate that turns and right-handed helical structures are particularly stable conformations for this chiral C alpha-methyl, C alpha-alkylglycyl residue. We have synthesized and characterized a variety of L-(alpha Me)Val derivatives and peptides (to the pentamer level). The results of the solution conformational analysis, performed using infrared absorption, 1H nuclear magnetic resonance, and circular dichroism, are in general agreement with those obtained from the theoretical investigation, in the sense that the L-(alpha Me)Val residue turns out to be a strong beta-turn and right-handed helix former. A comparison is also made with the conclusions extracted from published work on peptides rich in other C alpha-methyl, C alpha-alkylglycyl residues.

Circular Dichroism↗