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S Huo

Publications and source records attributed to S Huo.

6 recordsLinked to original sources

Direct computation of long time processes in peptides and proteins: reaction path study of the coil-to-helix transition in polyalanine.

The MaxFlux reaction path algorithm was used to isolate optimal transition pathways for the coil-to-helix transition in polyalanine. Eighteen transition pathways, each connecting one random coil configuration with an ideal alpha-helical configuration, were computed and analyzed. The transition pathway energetics and mechanism were analyzed in terms of the progression of the peptide nonbonded contact formation, helicity, end-to-end distance and energetics. It was found that (1) localized turns characterized by i, i + 3 hydrogen bonds form in the early stages of the coil-to-helix transition, (2) the peptide first collapses and then becomes somewhat more extended in the final stage of helix formation, and (3) 310-helix formation does not appear to be a necessary step in the transition from coil to helix. These conclusions are in agreement with the results of more computationally intensive direct molecular dynamics simulations. Proteins 1999;36:249-261.

Algorithms↗

Contribution of increased length and intact capping sequences to the conformational preference for helix in a 31-residue peptide from the C terminus of myohemerythrin.

In order to examine the effects of chain length on the propensity of short peptides to form helix-like structures in aqueous solution, we have studied a peptide of 31 residues consisting of the C-terminal sequence (residues 88-118) of the four-helix bundle protein myohemerythrin from Themiste zostericola. This peptide, termed MDC, represents the final two elements of secondary structure in the protein, the D-helix and the C-terminal loop sequence, together with a five-residue sequence at the N terminus corresponding to the linker between the C- and D-helices. An N-capping sequence, VDAKNV, immediately precedes the D-helix sequence, and a C-capping sequence, VNHIKGT, corresponding to the alphaL termination motif, occurs at the C-terminal end. The effect of replacement of a cysteine residue in the middle of the sequence with an alanine was explored by the comparison of the MDC peptide and a 16-residue peptide representing the sequence of the D-helix alone, both containing the change Cys99Ala. Significant changes in the NMR and CD spectra were seen for both peptides compared to the wild-type sequence. A comparison of the fluorescence spectra of the wild-type and Cys99Ala peptides indicated that a specific interaction between the side chains of Cys 99 and Trp 102 acts to quench the fluorescence of the tryptophan ring and probably contributes a component that distorts the CD spectrum of the wild-type peptide at approximately 220-235 nm. The effect of an increase in the length of the peptide, with the incorporation of capping sequences derived from the native sequence, was explored by NMR and CD spectroscopy of the 31-residue and 16-residue peptides in aqueous solution and in TFE/water mixtures. Evidence for the formation of a significant population of helical conformers in the region of the MDC peptide corresponding to the D-helix was observed in aqueous solution using CD and NMR spectroscopy. The C-terminal 10 residues of the MDC peptide behave in solution in a manner identical to that of a 10-residue peptide with the same sequence; a highly specific local interaction between an aromatic ring and a glycine amide proton appears to be retained in the longer peptide. Upon addition of trifluoroethanol (TFE), significant shifts are observed in a number of resonances in the NMR spectrum, and both chemical shifts and NOEs provide evidence for a higher population of helix in the D-helix region of the peptide in TFE. However, TFE is unable to promote the propagation of helix beyond the N-cap or alphaL termination motifs, and the specific local interaction observed in the C-terminal sequence is retained in TFE. The CD spectrum in TFE shows an increase in the proportion of helix, to an overall maximum of approximately 55% helix at 50% v/v TFE, corresponding to approximately 100% helix in the D-helix sequence of the peptide, since the N and C termini of the MDC peptide are not helical according to the NMR spectra. The high proportion of helix observed in the D-helix sequence of the longer MDC peptide demonstrates that the presence of intact capping sequences can constrain the peptide conformational ensemble to resemble that seen in the native protein. A compendium of results from this and previous peptide studies has also led to a novel observation, the existence of a correlation between the amide proton chemical shift and temperature coefficient.

Amino Acid Sequence↗

Conformational trapping in a membrane environment: a regulatory mechanism for protein activity?

Functional regulation of proteins is central to living organisms. Here it is shown that a nonfunctional conformational state of a polypeptide can be kinetically trapped in a lipid bilayer environment. This state is a metastable structure that is stable for weeks just above the phase transition temperature of the lipid. When the samples are incubated for several days at 68 degrees C, 50% of the trapped conformation converts to the minimum-energy functional state. This result suggests the possibility that another mechanism for functional regulation of protein activity may be available for membrane proteins: that cells may insert proteins into membranes in inactive states pending the biological demand for protein function.

Magnetic Resonance Spectroscopy↗

Macromolecular structural elucidation with solid-state NMR-derived orientational constraints.

The complete structure determination of a polypeptide in a lipid bilayer environment is demonstrated built solely upon orientational constraints derived from solid-state NMR observations. Such constraints are obtained from isotopically labeled samples uniformly aligned with respect to the B(0) field. Each observation constrains the molecular frame with respect to B(0) and the bilayer normal, which are arranged to be parallel. These constraints are not only very precise ( a few tenths of a degree), but also very accurate. This is clearly demonstrated as the backbone structure is assembled sequentially and the i to i + 6 hydrogen bonds in this structure of the gramicidin channel are shown on average to be within 0.5 A of ideal geometry. Similarly, the side chains are assembled independently and in a radial direction from the backbone. The lack of considerable atomic overlap between side chains also demonstrates the accuracy of the constraints. Through this complete structure, solid-state NMR is demonstrated as an approach for determining three-dimensional macromolecular structure.

Animals↗

Hydrogen exchange in the lipid bilayer-bound gramicidin channel.

Hydrogen exchange experiments for a membrane-bound polypeptide could lead to interesting functional and structural insights. Here, hydrogen/deuterium exchange, saturation transfer and differential relaxation experiments have been performed on oriented lipid bilayer-bound polypeptide samples to measure the exchange lifetimes. The polypeptide, gramicidin A, forms a monovalent cation selective channel across membranes. The pH dependent results suggest that the indole N epsilon 1-H groups show base catalyzed hydrogen exchange, but that the backbone amide sites are not base catalyzed, consistent with the exclusion of anions from this channel. Furthermore, the recently described [1] orientational distribution of the individual peptide carbonyls (i.e. carbonyls either tipped slightly in toward or away from the channel axis) is consistent with the observed difference in odd- and even-numbered amide residue exchange lifetimes.

Deuterium↗

Lipid-peptide interface: valine conformation and dynamics in the gramicidin channel.

High-resolution dynamic and structural characterizations have been achieved for each of the valine side chains of the gramicidin channel while solubilized in hydrated lipid bilayers. The characterizations have been achieved by 2H NMR spectra of both oriented and unoriented samples obtained at 36 and 5 degrees C, respectively. Powder patterns displaying intermediate time frame averaging provide dynamic information, and quadrupole splittings from aligned samples provide orientational constraints for the side chain structure. Librational amplitudes for each site throughout the side chain have also been characterized. Val6 and Val8 are shown to be fixed in rotameric states, potentially constraining two of the indole rings and the functionally important indole dipole moment orientations. Val1 and Val7 undergo three-state jump motions. The jump frequencies increase from the microsecond to nanosecond time frame upon increasing the temperature through the lipid phase transition. For the same temperature range, there is no evidence for changes in conformational state populations. Despite small differences in the substate populations for the two residues, the motions may be loosely coupled as indicated by the high-resolution structure.

Gramicidin↗