35 research outputs found
Heavy Atom Detergent/Lipid Combined X-ray Crystallography for Elucidating the Structure-Function Relationships of Membrane Proteins.
Membrane proteins reside in the lipid bilayer of biomembranes and the structure and function of these proteins are closely related to their interactions with lipid molecules. Structural analyses of interactions between membrane proteins and lipids or detergents that constitute biological or artificial model membranes are important for understanding the functions and physicochemical properties of membrane proteins and biomembranes. Determination of membrane protein structures is much more difficult when compared with that of soluble proteins, but the development of various new technologies has accelerated the elucidation of the structure-function relationship of membrane proteins. This review summarizes the development of heavy atom derivative detergents and lipids that can be used for structural analysis of membrane proteins and their interactions with detergents/lipids, including their application with X-ray free-electron laser crystallography
Amphotericin B assembles into seven-molecule ion channels: An NMR and molecular dynamics study
Amphotericin B, an antifungal drug with a long history of use, forms fungicidal ion-permeable channels across cell membranes. Using solid-state nuclear magnetic resonance spectroscopy and molecular dynamics simulations, we experimentally elucidated the three-dimensional structure of the molecular assemblies formed by this drug in membranes in the presence of the fungal sterol ergosterol. A stable assembly consisting of seven drug molecules was observed to form an ion conductive channel. The structure is somewhat similar to the upper half of the barrel-stave model proposed in the 1970s but substantially different in the number of molecules and in their arrangement. The present structure explains many previous findings, including structure-activity relationships of the drug, which will be useful for improving drug efficacy and reducing adverse effects
Passive Translocation of Phospholipids in Asymmetric Model Membranes: Solid-State <sup>1</sup>H NMR Characterization of Flip–Flop Kinetics Using Deuterated Sphingomyelin and Phosphatidylcholine
Although lateral and inter-leaflet lipid–lipid
interactions
in cell membranes play roles in maintaining asymmetric lipid bilayers,
the molecular basis of these interactions is largely unknown. Here,
we established a method to determine the distribution ratio of phospholipids
between the outer and inner leaflets of asymmetric large unilamellar
vesicles (aLUVs). The trimethylammonium group, (CH3)3N+, in the choline headgroup of N-palmitoyl-sphingomyelin (PSM) and 1,2-dioleoyl-sn-glycero-3-phosphatidylcholine (DOPC) gave rise to a relatively
sharp signal in magic-angle spinning solid-state 1H NMR
(MAS-ss-1H NMR). PSM and DOPC have the
same headgroup structure, but one phospholipid was selectively observed
by deuterating the trimethylammonium group of the other phospholipid.
The addition of Pr3+ to the medium surrounding aLUVs selectively
shifted the chemical shift of the (CH3)3N+ group in the outer leaflet from that in the
inner leaflet, which allowed estimation of the inter-leaflet distribution
ratio of the unlabeled lipid in aLUVs. Using this method, we evaluated
the translocation of PSM and DOPC between the outer and inner leaflets
of the cholesterol-containing aLUVs, with PSM and DOPC mostly distributed
in the outer and inner leaflets, respectively, immediately after aLUV
preparation; their flip and flop rates were approximately 2.7 and
6.4 × 10–6 s–1, respectively.
During the passive symmetrization of aLUVs, the lipid translocation
rate was decreased due to changes in the membrane order, probably
through the formation of the registered liquid-ordered domains. Comparison
of the result with that of symmetric LUVs revealed that lipid asymmetry
may not significantly affect the lipid translocation rates, while
the lateral lipid–lipid interaction may be a dominant factor
in lipid translocation under these conditions. These findings highlight
the importance of considering the effects of lateral lipid interactions
within the same leaflet on lipid flip–flop rates when evaluating
the asymmetry of phospholipids in the cell membrane
Efficient preparation of human and mouse CD1d proteins using silkworm baculovirus expression system
CD1d is a major histocompatibility complex (MHC) class I-like glycoprotein and binds to glycolipid antigens that are recognized by natural killer T (NKT) cells. To date, our understanding of the structural basis for glycolipid binding and receptor recognition of CD1d is still limited. Here, we established a preparation method for the ectodomain of human and mouse CD1d using a silkworm-baculovirus expression system. The co-expression of human and mouse CD1d and beta 2-microglobulin (beta 2m) in the silkworm-baculovirus system was successful, but the yield of human CD1d was low. A construct of human CD1d fused with beta 2m via a flexible GS linker as a single polypeptide was prepared to improve protein yield. The production of this single-chained complex was higher (50 mu g/larva) than that of the co-expression complex. Furthermore, differential scanning calorimetry revealed that the linker made the CD1d complex more stable and homogenous. These results suggest that the silkworm baculovirus expression system is useful for structural and biophysical studies of CD1d in several aspects including low cost, easy handling, biohazard-free, rapid, and high yielding
A novel DNA polymerase inhibitor and a potent apoptosis inducer: 2-mono-O-acyl-3-O-(α-d-sulfoquinovosyl)-glyceride with stearic acid
Sterol-dependent membrane association of the marine sponge-derived bicyclic peptide Theonellamide A as examined by\u3csup\u3e1\u3c/sup\u3eH NMR
Theonellamide A (TNM-A) is an antifungal bicyclic dodecapeptide isolated from a marine sponge Theonella sp. Previous studies have shown that TNM-A preferentially binds to 3β-hydroxysterol-containing membranes and disrupts membrane integrity. In this study, several1H NMR-based experiments were performed to investigate the interaction mode of TNM-A with model membranes. First, the aggregation propensities of TNM-A were examined using diffusion ordered spectroscopy; the results indicate that TNM-A tends to form oligomeric aggregates of 2–9 molecules (depending on peptide concentration) in an aqueous environment, and this aggregation potentially influences the membrane-disrupting activity of the peptide. Subsequently, we measured the1H NMR spectra of TNM-A with sodium dodecyl sulfate-d25(SDS-d25) micelles and small dimyristoylphosphatidylcholine (DMPC)-d54/dihexanoylphosphatidylcholine (DHPC)-d22bicelles in the presence of a paramagnetic quencher Mn2+. These spectra indicate that TNM-A poorly binds to these membrane mimics without sterol and mostly remains in the aqueous media. In contrast, broader1H signals of TNM-A were observed in 10 mol % cholesterol-containing bicelles, indicating that the peptide efficiently binds to sterol-containing bilayers. The addition of Mn2+to these bicelles also led to a decrease in the relative intensity and further line-broadening of TNM-A signals, indicating that the peptide stays near the surface of the bilayers. A comparison of the relative signal intensities with those of phospholipids showed that TNM-A resides in the lipid–water interface (close to the C2′ portion of the phospholipid acyl chain). This shallow penetration of TNM-A to lipid bilayers induces an uneven membrane curvature and eventually disrupts membrane integrity. These results shed light on the atomistic mechanism accounting for the membrane-disrupting activity of TNM-A and the important role of cholesterol in its mechanism of action. © 2016 Elsevier Lt