At the dated check, the references listed below either did not resolve in
Crossref or DataCite, or carried a retraction notice. Each one is shown with the
registry record that put it there.
The 154 checked references that resolve
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resolves10.1073/pnas.1304375110In vitro reconstitution of lipid-dependent dual topology and postassembly topological switching of a membrane protein
resolves10.1016/j.jmb.2007.05.087Functional Cell-free Synthesis of a Seven Helix Membrane Protein: In situ Insertion of Bacteriorhodopsin into Liposomes
resolves10.1371/journal.pone.0046332The Cell-Free Integration of a Polytopic Mitochondrial Membrane Protein into Liposomes Occurs Cotranslationally and in a Lipid-Dependent Manner
resolves10.1021/bi9600153Solvation Energies of Amino Acid Side Chains and Backbone in a Family of Host−Guest Pentapeptides
resolves10.1038/nsb1096-842Experimentally determined hydrophobicity scale for proteins at membrane interfaces
resolves10.1073/pnas.93.7.2985Direct measurement of salt-bridge solvation energies using a peptide model system: implications for protein stability.
resolves10.1073/pnas.71.8.2925Empirical Correlation Between Hydrophobic Free Energy and Aqueous Cavity Surface Area
resolves10.1006/jmbi.1998.2346Folding of amphipathic α-helices on membranes: energetics of helix formation by melittin 1 1Edited by D. Rees
resolves10.1021/jp961825rFree Energy of Amide Hydrogen Bond Formation in Vacuum, in Water, and in Liquid Alkane Solution
resolves10.1006/jmbi.2001.5008Energetics, stability, and prediction of transmembrane helices11Edited by G. von Heijne
resolves10.1016/j.jmb.2005.10.080Characterizing Molecular Interactions in Different Bacteriorhodopsin Assemblies by Single-molecule Force Spectroscopy
resolves10.1103/PhysRevE.56.5018Equilibrium free-energy differences from nonequilibrium measurements: A master-equation approach
resolves10.1021/ja204042fIn Silico Partitioning and Transmembrane Insertion of Hydrophobic Peptides under Equilibrium Conditions
resolves10.1016/j.bbamem.2014.04.012Absorption and folding of melittin onto lipid bilayer membranes via unbiased atomic detail microsecond molecular dynamics simulation
resolves10.1021/bi00166a002Sequence specificity in the dimerization of transmembrane .alpha.-helixes
resolves10.1006/jmbi.1996.0595Dimerisation of the Glycophorin A Transmembrane Segment in Membranes Probed with the ToxR Transcription Activator
resolves10.1126/science.1553543Response of a Protein Structure to Cavity-Creating Mutations and Its Relation to the Hydrophobic Effect
resolves10.1006/jmbi.1999.3488Statistical analysis of amino acid patterns in transmembrane helices: the GxxxG motif occurs frequently and in association with β-branched residues at neighboring positions
resolves10.1016/j.jmb.2004.09.011Complex Interactions at the Helix–Helix Interface Stabilize the Glycophorin A Transmembrane Dimer
resolves10.1021/ja204524cDramatic Destabilization of Transmembrane Helix Interactions by Features of Natural Membrane Environments
resolves10.1021/ja910692uMeasuring the Energetics of Membrane Protein Dimerization in Mammalian Membranes
resolves10.1073/pnas.1010348107Method to measure strong protein–protein interactions in lipid bilayers using a steric trap
resolves10.1073/pnas.1009999107Cryo-EM structure and rRNA model of a translating eukaryotic 80S ribosome at 5.5-Å resolution
resolves10.1074/jbc.M300173200Signal Recognition Particle Binds to Ribosome-bound Signal Sequences with Fluorescence-detected Subnanomolar Affinity That Does Not Diminish as the Nascent Chain Lengthens
resolves10.1126/science.1196473The Crystal Structure of the Signal Recognition Particle in Complex with Its Receptor
resolves10.1002/pro.729A tale of two GTPases in cotranslational protein targeting
resolves10.1038/nature12890Architecture of the large subunit of the mammalian mitochondrial ribosome
resolves10.1038/nature06384Protein translocation across the eukaryotic endoplasmic reticulum and bacterial plasma membranes
resolves10.1038/nature07421Conformational transition of Sec machinery inferred from bacterial SecYE structures
resolves10.1073/pnas.1012556107Lateral opening of a translocon upon entry of protein suggests the mechanism of insertion into membranes
resolves10.1073/pnas.92.10.4532FtsH is required for proteolytic elimination of uncomplexed forms of SecY, an essential protein translocase subunit.
resolves10.1038/nature06387Molecular code for transmembrane-helix recognition by the Sec61 translocon
resolves10.1038/nature03216Recognition of transmembrane helices by the endoplasmic reticulum translocon
resolves10.1016/j.jmb.2013.04.025Quantitative Analysis of SecYEG-Mediated Insertion of Transmembrane α-Helices into the Bacterial Inner Membrane
resolves10.1073/pnas.1100120108Apolar surface area determines the efficiency of translocon-mediated membrane-protein integration into the endoplasmic reticulum
resolves10.1007/s00232-010-9330-xArginine in Membranes: The Connection Between Molecular Dynamics Simulations and Translocon-Mediated Insertion Experiments
resolves10.1038/ncomms5863Spontaneous transmembrane helix insertion thermodynamically mimics translocon-guided insertion
resolves10.1038/nature12950Structures of the Sec61 complex engaged in nascent peptide translocation or membrane insertion
resolves10.1038/nature12720Structure of the SecY channel during initiation of protein translocation
resolves10.7554/eLife.01483An allosteric Sec61 inhibitor traps nascent transmembrane helices at the lateral gate
resolves10.1016/j.jmb.2009.11.036Membrane Insertion of Marginally Hydrophobic Transmembrane Helices Depends on Sequence Context
resolves10.1016/j.molcel.2011.12.024Orientational Preferences of Neighboring Helices Can Drive ER Insertion of a Marginally Hydrophobic Transmembrane Helix
resolves10.1038/nature13167Structural basis of Sec-independent membrane protein insertion by YidC
resolves10.7554/eLife.03035A structural model of the active ribosome-bound membrane protein insertase YidC
resolves10.1111/mmi.12465The <scp>C</scp>‐terminal regions of <scp>YidC</scp> from <i><scp>R</scp>hodopirellula baltica</i> and <i><scp>O</scp>ceanicaulis alexandrii</i> bind to ribosomes and partially substitute for <scp>SRP</scp> receptor function in <i><scp>E</scp>scherichia coli</i>
resolves10.1021/bi701398yFeatures of Transmembrane Segments That Promote the Lateral Release from the Translocase into the Lipid Phase
resolves10.1016/0092-8674(95)90330-5The protein-conducting channel in the membrane of the endoplasmic reticulum is open laterally toward the lipid bilayer
resolves10.1128/JB.185.22.6719-6722.2003Translocon “Pulling” of Nascent SecM Controls the Duration of Its Translational Pause and Secretion-Responsive
<i>secA</i>
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resolves10.1016/j.molcel.2009.04.002The Plasticity of a Translation Arrest Motif Yields Insights into Nascent Polypeptide Recognition inside the Ribosome Tunnel
resolves10.1038/nsmb.2376A biphasic pulling force acts on transmembrane helices during translocon-mediated membrane integration
resolves10.1002/j.1460-2075.1986.tb04601.xThe distribution of positively charged residues in bacterial inner membrane proteins correlates with the trans‐membrane topology
resolves10.1091/mbc.E09-12-1060Positive Charges of Translocating Polypeptide Chain Retrieve an Upstream Marginal Hydrophobic Segment from the Endoplasmic Reticulum Lumen to the Translocon
resolves10.1091/mbc.E10-01-0060The Hydrophobic Core of the Sec61 Translocon Defines the Hydrophobicity Threshold for Membrane Integration
resolves10.1091/mbc.E08-09-0902Sequence-specific Retention and Regulated Integration of a Nascent Membrane Protein by the Endoplasmic Reticulum Sec61 Translocon
resolves10.1038/nsmb994Sequential triage of transmembrane segments by Sec61α during biogenesis of a native multispanning membrane protein
resolves10.1021/bi050372qSecondary Structure Formation of a Transmembrane Segment in Kv Channels
resolves10.1074/jbc.M803517200Control of Translocation through the Sec61 Translocon by Nascent Polypeptide Structure within the Ribosome
resolves10.1073/pnas.0501234102Transmembrane glycine zippers: Physiological and pathological roles in membrane proteins
resolves10.1006/jmbi.1997.1236The effect of point mutations on the free energy of transmembrane α-helix dimerization
resolves10.1074/jbc.M313936200The Affinity of GXXXG Motifs in Transmembrane Helix-Helix Interactions Is Modulated by Long-range Communication
resolves10.1016/j.jmb.2004.08.083Motifs of Two Small Residues can Assist but are not Sufficient to Mediate Transmembrane Helix Interactions
resolves10.1085/jgp.200709740Formation of Transmembrane Helices In Vivo—Is Hydrophobicity All that Matters?
resolves10.1073/pnas.0611007104Contribution of hydrophobic and electrostatic interactions to the membrane integration of the Shaker K
<sup>+</sup>
channel voltage sensor domain
resolves10.1242/jcs.046094Dissecting the physiological role of selective transmembrane-segment retention at the ER translocon
resolves10.1002/prot.22859Why are polar residues within the membrane core evolutionary conserved?
resolves10.1016/j.jmb.2014.03.012Why Have Small Multidrug Resistance Proteins Not Evolved into Fused, Internally Duplicated Structures?
resolves10.1073/pnas.1306787110Cotranslational folding of membrane proteins probed by arrest-peptide–mediated force measurements
resolves10.1038/ncomms5103Visualization of a polytopic membrane protein during SecY-mediated membrane insertion
resolves10.1091/mbc.11.9.2973Reorientation of Aquaporin-1 Topology during Maturation in the Endoplasmic Reticulum
resolves10.1042/BJ20130100Reorientation of the first signal-anchor sequence during potassium channel biogenesis at the Sec61 complex
resolves10.1021/bi026619qThe Tenth Membrane Region of Band 3 Is Initially Exposed to the Luminal Side of the Endoplasmic Reticulum and Then Integrated into a Partially Folded Band 3 Intermediate
resolves10.1111/j.1742-4658.2009.06874.xProtein transport in organelles: The composition, function and regulation of the Tic complex in chloroplast protein import
resolves10.1038/nsmb1275A novel tripartite motif involved in aquaporin topogenesis, monomer folding and tetramerization
resolves10.1016/S0092-8674(00)00028-3The Sec61p Complex Mediates the Integration of a Membrane Protein by Allowing Lipid Partitioning of the Transmembrane Domain
resolves10.1111/j.1365-2958.2008.06246.xAn amphiphilic region in the cytoplasmic domain of KdpD is recognized by the signal recognition particle and targeted to the <i>Escherichia coli</i> membrane
resolves10.1074/jbc.M705430200Escherichia coli Signal Recognition Particle Receptor FtsY Contains an Essential and Autonomous Membrane-binding Amphipathic Helix
resolves10.1021/bi00076a001Membrane partitioning: Distinguishing bilayer effects from the hydrophobic effect
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