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1.
Redox Biol ; 63: 102758, 2023 07.
Article in English | MEDLINE | ID: mdl-37245287

ABSTRACT

Ferroptosis is an iron dependent form of cell death, that is triggered by the discoordination of iron, lipids, and thiols. Its unique signature that distinguishes it from other forms of cell death is the formation and accumulation of lipid hydroperoxides, particularly oxidized forms of polyunsaturated phosphatidylethanolamines (PEs), which drives cell death. These readily undergo iron-catalyzed secondary free radical reactions leading to truncated products which retain the signature PE headgroup and which can readily react with nucleophilic moieties in proteins via their truncated electrophilic acyl chains. Using a redox lipidomics approach, we have identified oxidatively-truncated PE species (trPEox) in enzymatic and non-enzymatic model systems. Further, using a model peptide we demonstrate adduct formation with Cys as the preferred nucleophilic residue and PE(26:2) +2 oxygens, as one of the most reactive truncated PE-electrophiles produced. In cells stimulated to undergo ferroptosis we identified PE-truncated species with sn-2 truncations ranging from 5 to 9 carbons. Taking advantage of the free PE headgroup, we have developed a new technology using the lantibiotic duramycin, to enrich and identify the PE-lipoxidated proteins. Our results indicate that several dozens of proteins for each cell type, are PE-lipoxidated in HT-22, MLE, and H9c2 cells and M2 macrophages after they were induced to undergo ferroptosis. Pretreatment of cells with the strong nucleophile, 2-mercaptoethanol, prevented the formation of PE-lipoxidated proteins and blocked ferroptotic death. Finally, our docking simulations showed that the truncated PE species bound at least as good to several of the lantibiotic-identified proteins, as compared to the non-truncated parent molecule, stearoyl-arachidonoyl PE (SAPE), indicating that these oxidatively-truncated species favor/promote the formation of PEox-protein adducts. The identification of PEox-protein adducts during ferroptosis suggests that they are participants in the ferroptotic process preventable by 2-mercaptoethanol and may contribute to a point of no return in the ferroptotic death process.


Subject(s)
Ferroptosis , Humans , Mercaptoethanol , Oxidation-Reduction , Cell Death , Iron/metabolism , Lipid Peroxidation
2.
Proteins ; 44(2): 63-72, 2001 Aug 01.
Article in English | MEDLINE | ID: mdl-11391769

ABSTRACT

A number of ion channels contain transmembrane (TM) alpha-helices that contain proline-induced molecular hinges. These TM helices include the channel-forming peptide alamethicin (Alm), the S6 helix from voltage-gated potassium (Kv) channels, and the D5 helix from voltage-gated chloride (CLC) channels. For both Alm and KvS6, experimental data implicate hinge-bending motions of the helix in an aspect of channel gating. We have compared the hinge-bending motions of these TM helices in bilayer-like environments by multi-nanosecond MD simulations in an attempt to describe motions of these helices that may underlie possible modes of channel gating. Alm is an alpha-helical channel-forming peptide, which contains a central kink associated with a Gly-x-x-Pro motif in its sequence. Simulations of Alm in a TM orientation for 10 ns in an octane slab indicate that the Gly-x-x-Pro motif acts as a molecular hinge. The S6 helix from Shaker Kv channels contains a Pro-Val-Pro motif. Modeling studies and recent experimental data suggest that the KvS6 helix may be kinked in the vicinity of this motif. Simulations (10 ns) of an isolated KvS6 helix in an octane slab and in a POPC bilayer reveal hinge-bending motions. A pattern-matching approach was used to search for possible hinge-bending motifs in the TM helices of other ion channel proteins. This uncovered a conserved Gly-x-Pro motif in TM helix D5 of CLC channels. MD simulations of a model of hCLC1-D5 spanning an octane slab suggest that this channel also contains a TM helix that undergoes hinge-bending motion. In conclusion, our simulations suggest a model in which hinge-bending motions of TM helices may play a functional role in the gating mechanisms of several different families of ion channels.


Subject(s)
Ion Channel Gating/physiology , Membrane Proteins/chemistry , Proline/chemistry , Alamethicin/chemistry , Alanine/chemistry , Amino Acid Motifs , Amino Acid Sequence , Chloride Channels/chemistry , Chloride Channels/physiology , Computer Simulation , Humans , Lipid Bilayers/chemistry , Membrane Proteins/physiology , Models, Molecular , Molecular Sequence Data , Potassium Channels/chemistry , Potassium Channels/physiology , Protein Structure, Secondary/physiology , Thermodynamics
3.
Biophys J ; 80(3): 1210-9, 2001 Mar.
Article in English | MEDLINE | ID: mdl-11222285

ABSTRACT

KcsA is a bacterial K+ channel that is gated by pH. Continuum dielectric calculations on the crystal structure of the channel protein embedded in a low dielectric slab suggest that side chains E71 and D80 of each subunit, which lie adjacent to the selectivity filter region of the channel, form a proton-sharing pair in which E71 is neutral (protonated) and D80 is negatively charged at pH 7. When K+ ions are introduced into the system at their crystallographic positions the pattern of proton sharing is altered. The largest perturbation is for a K+ ion at site S3, i.e., interacting with the carbonyls of T75 and V76. The presence of multiple K+ ions in the filter increases the probability of E71 being ionized and of D80 remaining neutral (i.e., protonated). The ionization states of the protein side chains influence the potential energy profile experienced by a K+ ion as it is translated along the pore axis. In particular, the ionization state of the E71-D80 proton-sharing pair modulates the shape of the potential profile in the vicinity of the selectivity filter. Such reciprocal effects of ion occupancy on side-chain ionization states, and of side-chain ionization states on ion potential energy profiles will complicate molecular dynamics simulations and related studies designed to calculate ion permeation energetics.


Subject(s)
Potassium Channels/chemistry , Potassium Channels/physiology , Bacterial Proteins/chemistry , Bacterial Proteins/physiology , Crystallography, X-Ray , Kinetics , Models, Molecular , Potassium/chemistry , Potassium/physiology , Protein Structure, Secondary , Protein Subunits , Static Electricity
4.
Trends Biochem Sci ; 25(8): 368-74, 2000 Aug.
Article in English | MEDLINE | ID: mdl-10916155

ABSTRACT

Ion channels mediate electrical excitability in neurons and muscle. Three-dimensional structures for model peptide channels and for a potassium (K+) channel have been combined with computer simulations to permit rigorous exploration of structure-function relations of channels. Water molecules and ions within transbilayer pores tend to diffuse more slowly than in bulk solutions. In the narrow selectivity filter of the bacterial K+ channel (i.e. the region of the channel that discriminates between different species of ions) a column of water molecules and K+ ions moves in a concerted fashion. By combining atomistic simulations (in which all atoms of the channel molecule, water and ions are treated explicitly) with continuum methods (in which the description of the channel system is considerably simplified) it is possible to simulate some of the physiological properties of channels.


Subject(s)
Alamethicin/metabolism , Gramicidin/metabolism , Ion Channels/physiology , Potassium Channels/metabolism , Protein Structure, Quaternary , Alamethicin/chemistry , Anti-Bacterial Agents/metabolism , Cell Membrane/metabolism , Computer Simulation , Diffusion , Gramicidin/chemistry , Ion Channels/chemistry , Membrane Proteins , Models, Molecular , Permeability , Potassium Channels/chemistry , Static Electricity , Structure-Activity Relationship
5.
Biophys J ; 78(6): 2929-42, 2000 Jun.
Article in English | MEDLINE | ID: mdl-10827973

ABSTRACT

A homology model has been generated for the pore-forming domain of Kir6.2, a component of an ATP-sensitive K channel, based on the x-ray structure of the bacterial channel KcsA. Analysis of the lipid-exposed and pore-lining surfaces of the model reveals them to be compatible with the known features of membrane proteins and Kir channels, respectively. The Kir6.2 homology model was used as the starting point for nanosecond-duration molecular dynamics simulations in a solvated phospholipid bilayer. The overall drift from the model structure was comparable to that seen for KcsA in previous similar simulations. Preliminary analysis of the interactions of the Kir6.2 channel model with K(+) ions and water molecules during these simulations suggests that concerted single-file motion of K(+) ions and water through the selectivity filter occurs. This is similar to such motion observed in simulations of KcsA. This suggests that a single-filing mechanism is conserved between different K channel structures and may be robust to changes in simulation details. Comparison of Kir6.2 and KcsA suggests some degree of flexibility in the filter, thus complicating models of ion selectivity based upon a rigid filter.


Subject(s)
Potassium Channels, Inwardly Rectifying , Potassium Channels/chemistry , Potassium Channels/physiology , Amino Acid Sequence , Bacterial Proteins/chemistry , Bacterial Proteins/physiology , Computer Graphics , Computer Simulation , Humans , Models, Molecular , Molecular Sequence Data , Protein Conformation , Protein Folding , Protein Structure, Secondary , Sequence Alignment , Sequence Homology, Amino Acid
6.
Biophys J ; 78(2): 557-70, 2000 Feb.
Article in English | MEDLINE | ID: mdl-10653771

ABSTRACT

Potassium channels enable K(+) ions to move passively across biological membranes. Multiple nanosecond-duration molecular dynamics simulations (total simulation time 5 ns) of a bacterial potassium channel (KcsA) embedded in a phospholipid bilayer reveal motions of ions, water, and protein. Comparison of simulations with and without K(+) ions indicate that the absence of ions destabilizes the structure of the selectivity filter. Within the selectivity filter, K(+) ions interact with the backbone (carbonyl) oxygens, and with the side-chain oxygen of T75. Concerted single-file motions of water molecules and K(+) ions within the selectivity filter of the channel occur on a 100-ps time scale. In a simulation with three K(+) ions (initially two in the filter and one in the cavity), the ion within the central cavity leaves the channel via its intracellular mouth after approximately 900 ps; within the cavity this ion interacts with the Ogamma atoms of two T107 side chains, revealing a favorable site within the otherwise hydrophobically lined cavity. Exit of this ion from the channel is enabled by a transient increase in the diameter of the intracellular mouth. Such "breathing" motions may form the molecular basis of channel gating.


Subject(s)
Lipid Bilayers/chemistry , Phospholipids/chemistry , Potassium Channels/chemistry , Potassium/chemistry , Bacterial Proteins/chemistry , Cell Membrane Permeability , Computer Simulation , Kinetics , Membrane Lipids/chemistry , Protein Structure, Secondary , Proteolipids/chemistry , Streptomyces/chemistry , Water/chemistry
7.
Biophys J ; 78(1): 79-92, 2000 Jan.
Article in English | MEDLINE | ID: mdl-10620275

ABSTRACT

Isolated pore-lining helices derived from three types of K-channel have been analyzed in terms of their structural and dynamic features in nanosecond molecular dynamics (MD) simulations while spanning a lipid bilayer. The helices were 1) M1 and M2 from the bacterial channel KcsA (Streptomyces lividans), 2) S5 and S6 from the voltage-gated (Kv) channel Shaker (Drosophila melanogaster), and 3) M1 and M2 from the inward rectifier channel Kir6.2 (human). In the case of the Kv and Kir channels, for which x-ray structures are not known, both short and long models of each helix were considered. Each helix was incorporated into a lipid bilayer containing 127 palmitoyloleoylphosphatidylcholine molecules, which was solvated with approximately 4000 water molecules, yielding approximately 20, 000 atoms in each system. Nanosecond MD simulations were used to aid the definition of optimal lengths for the helix models from Kv and Kir. Thus the study corresponds to a total simulation time of 10 ns. The inner pore-lining helices (M2 in KcsA and Kir, S6 in Shaker) appear to be slightly more flexible than the outer pore-lining helices. In particular, the Pro-Val-Pro motif of S6 results in flexibility about a molecular hinge, as was suggested by previous in vacuo simulations (, Biopolymers. 39:503-515). Such flexibility may be related to gating in the corresponding intact channel protein molecules. Analysis of H-bonds revealed interactions with both water and lipid molecules in the water/bilayer interfacial region. Such H-bonding interactions may lock the helices in place in the bilayer during the folding of the channel protein (as is implicit in the two-stage model of membrane protein folding). Aromatic residues at the extremities of the helices underwent complex motions on both short (<10 ps) and long (>100 ps) time scales.


Subject(s)
Lipid Bilayers/chemistry , Potassium Channels, Inwardly Rectifying , Potassium Channels/chemistry , Amino Acid Sequence , Animals , Bacterial Proteins/chemistry , Computer Simulation , Drosophila Proteins , Drosophila melanogaster , Humans , Hydrogen Bonding , Kinetics , Models, Molecular , Molecular Sequence Data , Phosphatidylcholines , Protein Structure, Secondary , Shaker Superfamily of Potassium Channels , Streptomyces
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