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1.
Biochem Soc Trans ; 52(2): 681-692, 2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38497302

ABSTRACT

Gasdermin D (GSDMD) is a pore-forming protein that perforates the plasma membrane (PM) during pyroptosis, a pro-inflammatory form of cell death, to induce the unconventional secretion of inflammatory cytokines and, ultimately, cell lysis. GSDMD is activated by protease-mediated cleavage of its active N-terminal domain from the autoinhibitory C-terminal domain. Inflammatory caspase-1, -4/5 are the main activators of GSDMD via either the canonical or non-canonical pathways of inflammasome activation, but under certain stimuli, caspase-8 and other proteases can also activate GSDMD. Activated GSDMD can oligomerize and assemble into various nanostructures of different sizes and shapes that perforate cellular membranes, suggesting plasticity in pore formation. Although the exact mechanism of pore formation has not yet been deciphered, cysteine residues are emerging as crucial modulators of the oligomerization process. GSDMD pores and thus the outcome of pyroptosis can be modulated by various regulatory mechanisms. These include availability of activated GSDMD at the PM, control of the number of GSDMD pores by PM repair mechanisms, modulation of the lipid environment and post-translational modifications. Here, we review the latest findings on the mechanisms that induce GSDMD to form membrane pores and how they can be tightly regulated for cell content release and cell fate modulation.


Subject(s)
Gasdermins , Intracellular Signaling Peptides and Proteins , Phosphate-Binding Proteins , Pyroptosis , Phosphate-Binding Proteins/metabolism , Humans , Intracellular Signaling Peptides and Proteins/metabolism , Animals , Cell Membrane/metabolism , Inflammasomes/metabolism , Protein Processing, Post-Translational , Neoplasm Proteins/metabolism
2.
J Phys Chem A ; 127(15): 3490-3496, 2023 Apr 20.
Article in English | MEDLINE | ID: mdl-37023388

ABSTRACT

Single molecule fluorescence microscopy has the unique advantage to provide real-time information on the spatiotemporal assembly of individual protein complexes in cellular membranes. This includes the assembly of proteins into oligomer species of numerous copy numbers. However, there is a need for improved tracing analysis of the real-time growth kinetics of these assemblies in cells with single molecule resolution. Here, we present an automated analysis software to accurately measure the real-time kinetics of assembly of individual high-order oligomer complexes. Our software comes with a simple Graphical User Interface (GUI), is available as a source code and an executable, and can analyze a full data set of several hundred to thousand molecules in less than 2 minutes. Importantly, this software is suitable for the analysis of intracellular protein oligomers, whose stoichiometry is usually more difficult to quantify due to variability in signal detection in the different areas of the cell. We validated our method with simulated ground-truth data and time-lapse images of diffraction-limited oligomeric assemblies of BAX and BAK proteins on mitochondria of cells undergoing apoptosis. Our approach provides the broad community of biologists with a fast, user-friendly tool to trace the compositional evolution of macromolecular assemblies, and potentially model their growth for a deeper understanding of the structural and biophysical mechanisms underlying their functions.


Subject(s)
Software , Kinetics
3.
Int J Mol Sci ; 24(5)2023 Feb 25.
Article in English | MEDLINE | ID: mdl-36901959

ABSTRACT

Pore-forming proteins (PFPs) play a central role in many biological processes related to infection, immunity, cancer, and neurodegeneration. A common feature of PFPs is their ability to form pores that disrupt the membrane permeability barrier and ion homeostasis and generally induce cell death. Some PFPs are part of the genetically encoded machinery of eukaryotic cells that are activated against infection by pathogens or in physiological programs to carry out regulated cell death. PFPs organize into supramolecular transmembrane complexes that perforate membranes through a multistep process involving membrane insertion, protein oligomerization, and finally pore formation. However, the exact mechanism of pore formation varies from PFP to PFP, resulting in different pore structures with different functionalities. Here, we review recent insights into the molecular mechanisms by which PFPs permeabilize membranes and recent methodological advances in their characterization in artificial and cellular membranes. In particular, we focus on single-molecule imaging techniques as powerful tools to unravel the molecular mechanistic details of pore assembly that are often obscured by ensemble measurements, and to determine pore structure and functionality. Uncovering the mechanistic elements of pore formation is critical for understanding the physiological role of PFPs and developing therapeutic approaches.


Subject(s)
Porins , Single Molecule Imaging , Cell Membrane/metabolism , Porins/metabolism
5.
Biol Chem ; 404(5): 467-490, 2023 04 25.
Article in English | MEDLINE | ID: mdl-36810295

ABSTRACT

Bilayered membranes separate cells from their surroundings and form boundaries between intracellular organelles and the cytosol. Gated transport of solutes across membranes enables cells to establish vital ion gradients and a sophisticated metabolic network. However, an advanced compartmentalization of biochemical reactions makes cells also particularly vulnerable to membrane damage inflicted by pathogens, chemicals, inflammatory responses or mechanical stress. To avoid potentially lethal consequences of membrane injuries, cells continuously monitor the structural integrity of their membranes and readily activate appropriate pathways to plug, patch, engulf or shed the damaged membrane area. Here, we review recent insights into the cellular mechanisms that underly an effective maintenance of membrane integrity. We discuss how cells respond to membrane lesions caused by bacterial toxins and endogenous pore-forming proteins, with a primary focus on the intimate crosstalk between membrane proteins and lipids during wound formation, detection and elimination. We also discuss how a delicate balance between membrane damage and repair determines cell fate upon bacterial infection or activation of pro-inflammatory cell death pathways.


Subject(s)
Bacterial Toxins , Bacterial Toxins/metabolism , Cell Membrane/metabolism , Lipids/chemistry
6.
Autophagy ; 19(5): 1459-1478, 2023 05.
Article in English | MEDLINE | ID: mdl-36354155

ABSTRACT

During macroautophagy/autophagy, precursor cisterna known as phagophores expand and sequester portions of the cytoplasm and/or organelles, and subsequently close resulting in double-membrane transport vesicles called autophagosomes. Autophagosomes fuse with lysosomes/vacuoles to allow the degradation and recycling of their cargoes. We previously showed that sequential binding of yeast Atg2 and Atg18 to Atg9, the only conserved transmembrane protein in autophagy, at the extremities of the phagophore mediates the establishment of membrane contact sites between the phagophore and the endoplasmic reticulum. As the Atg2-Atg18 complex transfers lipids between adjacent membranes in vitro, it has been postulated that this activity and the scramblase activity of the trimers formed by Atg9 are required for the phagophore expansion. Here, we present evidence that Atg9 indeed promotes Atg2-Atg18 complex-mediated lipid transfer in vitro, although this is not the only requirement for its function in vivo. In particular, we show that Atg9 function is dramatically compromised by a F627A mutation within the conserved interface between the transmembrane domains of the Atg9 monomers. Although Atg9F627A self-interacts and binds to the Atg2-Atg18 complex, the F627A mutation blocks the phagophore expansion and thus autophagy progression. This phenotype is conserved because the corresponding human ATG9A mutant severely impairs autophagy as well. Importantly, Atg9F627A has identical scramblase activity in vitro like Atg9, and as with the wild-type protein enhances Atg2-Atg18-mediated lipid transfer. Collectively, our data reveal that interactions of Atg9 trimers via their transmembrane segments play a key role in phagophore expansion beyond Atg9's role as a lipid scramblase.Abbreviations: BafA1: bafilomycin A1; Cvt: cytoplasm-to-vacuole targeting; Cryo-EM: cryo-electron microscopy; ER: endoplasmic reticulum; GFP: green fluorescent protein; MAP1LC3/LC3: microtubule associated protein 1 light chain 3; MCS: membrane contact site; NBD-PE: N-(7-nitrobenz-2-oxa-1,3-diazol-4-yl)-1,2-dihexadecanoyl-sn-glycero-3-phosphoethanolamine; PAS: phagophore assembly site; PE: phosphatidylethanolamine; prApe1: precursor Ape1; PtdIns3P: phosphatidylinositol-3-phosphate; SLB: supported lipid bilayer; SUV: small unilamellar vesicle; TMD: transmembrane domain; WT: wild type.


Subject(s)
Autophagosomes , Saccharomyces cerevisiae Proteins , Humans , Autophagosomes/metabolism , Autophagy/genetics , Cryoelectron Microscopy , Autophagy-Related Proteins/metabolism , Saccharomyces cerevisiae/metabolism , Endoplasmic Reticulum/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Lipids , Membrane Proteins/metabolism
7.
Mol Cell ; 82(5): 933-949.e9, 2022 03 03.
Article in English | MEDLINE | ID: mdl-35120587

ABSTRACT

BAX and BAK are key apoptosis regulators that mediate the decisive step of mitochondrial outer membrane permeabilization. However, the mechanism by which they assemble the apoptotic pore remains obscure. Here, we report that BAX and BAK present distinct oligomerization properties, with BAK organizing into smaller structures with faster kinetics than BAX. BAK recruits and accelerates BAX assembly into oligomers that continue to grow during apoptosis. As a result, BAX and BAK regulate each other as they co-assemble into the same apoptotic pores, which we visualize. The relative availability of BAX and BAK molecules thereby determines the growth rate of the apoptotic pore and the relative kinetics by which mitochondrial contents, most notably mtDNA, are released. This feature of BAX and BAK results in distinct activation kinetics of the cGAS/STING pathway with implications for mtDNA-mediated paracrine inflammatory signaling.


Subject(s)
DNA, Mitochondrial , Mitochondria , bcl-2 Homologous Antagonist-Killer Protein/metabolism , bcl-2-Associated X Protein/metabolism , Animals , Apoptosis/genetics , Cell Line, Tumor , DNA, Mitochondrial/genetics , DNA, Mitochondrial/metabolism , Humans , Inflammation/genetics , Inflammation/metabolism , Mitochondria/genetics , Mitochondria/metabolism , Protein Multimerization , bcl-2 Homologous Antagonist-Killer Protein/genetics , bcl-2-Associated X Protein/genetics
8.
J Phys Chem Lett ; 13(3): 822-829, 2022 Jan 27.
Article in English | MEDLINE | ID: mdl-35044771

ABSTRACT

Analysis of single-molecule brightness allows subunit counting of high-order oligomeric biomolecular complexes. Although the theory behind the method has been extensively assessed, systematic analysis of the experimental conditions required to accurately quantify the stoichiometry of biological complexes remains challenging. In this work, we develop a high-throughput, automated computational pipeline for single-molecule brightness analysis that requires minimal human input. We use this strategy to systematically quantify the accuracy of counting under a wide range of experimental conditions in simulated ground-truth data and then validate its use on experimentally obtained data. Our approach defines a set of conditions under which subunit counting by brightness analysis is designed to work optimally and helps in establishing the experimental limits in quantifying the number of subunits in a complex of interest. Finally, we combine these features into a powerful, yet simple, software that can be easily used for the analysis of the stoichiometry of such complexes.


Subject(s)
Single Molecule Imaging
9.
Toxins (Basel) ; 13(9)2021 09 18.
Article in English | MEDLINE | ID: mdl-34564674

ABSTRACT

Equinatoxin II (EqtII) and Fragaceatoxin C (FraC) are pore-forming toxins (PFTs) from the actinoporin family that have enhanced membrane affinity in the presence of sphingomyelin (SM) and phase coexistence in the membrane. However, little is known about the effect of these proteins on the nanoscopic properties of membrane domains. Here, we used combined confocal microscopy and force mapping by atomic force microscopy to study the effect of EqtII and FraC on the organization of phase-separated phosphatidylcholine/SM/cholesterol membranes. To this aim, we developed a fast, high-throughput processing tool to correlate structural and nano-mechanical information from force mapping. We found that both proteins changed the lipid domain shape. Strikingly, they induced a reduction in the domain area and circularity, suggesting a decrease in the line tension due to a lipid phase height mismatch, which correlated with proteins binding to the domain interfaces. Moreover, force mapping suggested that the proteins affected the mechanical properties at the edge, but not in the bulk, of the domains. This effect could not be revealed by ensemble force spectroscopy measurements supporting the suitability of force mapping to study local membrane topographical and mechanical alterations by membranotropic proteins.


Subject(s)
Cell Membrane/drug effects , Cell Membrane/metabolism , Cnidarian Venoms/metabolism , Cnidarian Venoms/toxicity , Membrane Microdomains/metabolism , Sea Anemones/chemistry , Sea Anemones/metabolism , Sphingomyelins/metabolism , Animals , Membrane Microdomains/drug effects , Microscopy, Atomic Force , Microscopy, Confocal
10.
Bioinformatics ; 37(21): 3998-4000, 2021 11 05.
Article in English | MEDLINE | ID: mdl-33964131

ABSTRACT

MOTIVATION: Imaging single molecules has emerged as a powerful characterization tool in the biological sciences. The detection of these under various noise conditions requires the use of algorithms that are dependent on the end-user inputting several parameters, the choice of which can be challenging and subjective. RESULTS: In this work, we propose DeepSinse, an easily trainable and useable deep neural network that can detect single molecules with little human input and across a wide range of signal-to-noise ratios. We validate the neural network on the detection of single bursts in simulated and experimental data and compare its performance with the best-in-class, domain-specific algorithms. AVAILABILITYAND IMPLEMENTATION: Ground truth ROI simulating code, neural network training, validation code, classification code, ROI picker, GUI for simulating, training and validating DeepSinse as well as pre-trained networks are all released under the MIT License on www.github.com/jdanial/DeepSinse. The dSTORM dataset processing code is released under the MIT License on www.github.com/jdanial/StormProcessor. SUPPLEMENTARY INFORMATION: Supplementary data are available at Bioinformatics online.


Subject(s)
Biological Science Disciplines , Deep Learning , Humans , Neural Networks, Computer , Algorithms , Signal-To-Noise Ratio
11.
Int J Mol Sci ; 22(5)2021 Mar 04.
Article in English | MEDLINE | ID: mdl-33806280

ABSTRACT

Amphiphilic diisobutylene/maleic acid (DIBMA) copolymers extract lipid-encased membrane proteins from lipid bilayers in a detergent-free manner, yielding nanosized, discoidal DIBMA lipid particles (DIBMALPs). Depending on the DIBMA/lipid ratio, the size of DIBMALPs can be broadly varied which makes them suitable for the incorporation of proteins of different sizes. Here, we examine the influence of the DIBMALP sizes and the presence of protein on the dynamics of encased lipids. As shown by a set of biophysical methods, the stability of DIBMALPs remains unaffected at different DIBMA/lipid ratios. Coarse-grained molecular dynamics simulations confirm the formation of viable DIBMALPs with an overall size of up to 35 nm. Electron paramagnetic resonance spectroscopy of nitroxides located at the 5th, 12th or 16th carbon atom positions in phosphatidylcholine-based spin labels reveals that the dynamics of enclosed lipids are not altered by the DIBMALP size. The presence of the membrane protein sensory rhodopsin II from Natronomonas pharaonis (NpSRII) results in a slight increase in the lipid dynamics compared to empty DIBMALPs. The light-induced photocycle shows full functionality of DIBMALPs-embedded NpSRII and a significant effect of the protein-to-lipid ratio during preparation on the NpSRII dynamics. This study indicates a possible expansion of the applicability of the DIBMALP technology on studies of membrane protein-protein interaction and oligomerization in a constraining environment.


Subject(s)
Halorhodopsins/chemistry , Lipid Bilayers/chemistry , Sensory Rhodopsins/chemistry , Alkenes/chemistry , Biophysical Phenomena , Dimyristoylphosphatidylcholine/chemistry , Electron Spin Resonance Spectroscopy , Halobacteriaceae/chemistry , Halobacteriaceae/radiation effects , Halorhodopsins/radiation effects , Maleates/chemistry , Microscopy, Atomic Force , Microscopy, Electron, Transmission , Molecular Dynamics Simulation , Nanoparticles/chemistry , Nanoparticles/ultrastructure , Particle Size , Photochemical Processes , Sensory Rhodopsins/radiation effects , Spin Labels
12.
Biochim Biophys Acta Biomembr ; 1863(6): 183588, 2021 06 01.
Article in English | MEDLINE | ID: mdl-33662362

ABSTRACT

Amphiphilic maleic acid-containing polymers allow for the direct extraction of membrane proteins into stable, homogenous, water-soluble copolymer/lipid nanoparticles without the use of detergents. By adjusting the polymer/lipid ratio, the size of the nanoparticles can be tuned at convenience for the incorporation of protein complexes of different size. However, an increase in the size of the lipid nanoparticles may correlate with increased sample heterogeneity, thus hampering their application to spectroscopic and structural techniques where highly homogeneous samples are desirable. In addition, size homogeneity can be affected by low liposome solubilization efficiency by DIBMA, which carries a negative charge, in the presence of high lipid charge density. In this work, we apply biophysical tools to characterize the size and size heterogeneity of large (above 15 nm) lipid nanoparticles encased by the diisobutylene/maleic acid (DIBMA) copolymer at different DIBMA/lipid ratios and percentages of anionic lipids. Importantly, for nanoparticle preparations in the diameter range of 40 nm or below, the size homogeneity of the DIBMA/lipid nanoparticles (DIBMALPs) remains unchanged. In addition, we show that anionic lipids do not affect the production, size and size homogeneity of DIBMALPs. Furthermore, they do not affect the overall lipid dynamics in the membrane, and preserve the functionality of an enclosed membrane protein. This work strengthens the suitability of DIBMALPs as universal, native-like lipid environments for functional studies of membrane proteins and provide useful insight on the suitability of these systems for those structural techniques requiring highly homogeneous sample preparations.


Subject(s)
Alkenes/chemistry , Archaeal Proteins/chemistry , Lipid Bilayers/chemistry , Maleates/chemistry , Membrane Proteins/chemistry , Nanoparticles/chemistry , Anions/chemistry , Archaeal Proteins/genetics , Archaeal Proteins/metabolism , Electron Spin Resonance Spectroscopy , Halobacteriaceae/metabolism , Lipid Bilayers/metabolism , Membrane Proteins/genetics , Membrane Proteins/metabolism , Nanoparticles/metabolism , Particle Size , Recombinant Proteins/biosynthesis , Recombinant Proteins/isolation & purification , Spin Labels
13.
J Biol Chem ; 295(6): 1623-1636, 2020 02 07.
Article in English | MEDLINE | ID: mdl-31901077

ABSTRACT

Permeabilization of the mitochondrial outer membrane is a key step in the intrinsic apoptosis pathway, triggered by the release of mitochondrial intermembrane space proteins into the cytoplasm. The BCL-2-associated X apoptosis regulator (BAX) protein critically contributes to this process by forming pores in the mitochondrial outer membrane. However, the relative roles of the mitochondrial residence of BAX and its oligomerization in promoting membrane permeabilization are unclear. To this end, using both cell-free and cellular experimental systems, including membrane permeabilization, size-exclusion chromatography-based oligomer, and retrotranslocation assays, along with confocal microscopy analysis, here we studied two BAX C-terminal variants, T182I and G179P. Neither variant formed large oligomers when activated in liposomes. Nevertheless, the G179P variant could permeabilize liposome membranes, suggesting that large BAX oligomers are not essential for the permeabilization. However, when G179P was transduced into BAX/BCL2 agonist killer (BAK) double-knockout mouse embryonic fibroblasts, its location was solely cytoplasmic, and it then failed to mediate cell death. In contrast, T182I was inefficient in both liposome insertion and permeabilization. Yet, when transduced into cells, BAXT182I resided predominantly on mitochondria, because of its slow retrotranslocation and mediated apoptosis as efficiently as WT BAX. We conclude that BAX's mitochondrial residence in vivo, regulated by both targeting and retrotranslocation, is more significant for its pro-apoptotic activity than its ability to insert and to form higher-order oligomers in model membranes. We propose that this finding should be taken into account when developing drugs that modulate BAX activity.


Subject(s)
Apoptosis , Lipid Bilayers/metabolism , Mitochondria/metabolism , bcl-2-Associated X Protein/metabolism , Animals , Cells, Cultured , Gene Knockout Techniques , Humans , Mice , Mitochondria/genetics , Permeability , Point Mutation , Protein Multimerization , bcl-2-Associated X Protein/analysis , bcl-2-Associated X Protein/genetics
14.
J Cell Biol ; 218(2): 683-699, 2019 02 04.
Article in English | MEDLINE | ID: mdl-30470711

ABSTRACT

FGF2 is exported from cells by an unconventional secretory mechanism. Here, we directly visualized individual FGF2 membrane translocation events at the plasma membrane using live cell TIRF microscopy. This process was dependent on both PI(4,5)P2-mediated recruitment of FGF2 at the inner leaflet and heparan sulfates capturing FGF2 at the outer plasma membrane leaflet. By simultaneous imaging of both FGF2 membrane recruitment and the appearance of FGF2 at the cell surface, we revealed the kinetics of FGF2 membrane translocation in living cells with an average duration of ∼200 ms. Furthermore, we directly demonstrated FGF2 oligomers at the inner leaflet of living cells with a FGF2 dimer being the most prominent species. We propose this dimer to represent a key intermediate in the formation of higher FGF2 oligomers that form membrane pores and put forward a kinetic model explaining the mechanism by which membrane-inserted FGF2 oligomers serve as dynamic translocation intermediates during unconventional secretion of FGF2.


Subject(s)
Cell Membrane/metabolism , Fibroblast Growth Factor 2/metabolism , Animals , CHO Cells , Cricetulus , Fibroblast Growth Factor 2/genetics , HEK293 Cells , Heparitin Sulfate/metabolism , Humans , Kinetics , Microscopy, Fluorescence , Models, Biological , Phosphatidylinositol 4,5-Diphosphate/metabolism , Protein Multimerization , Protein Transport , Secretory Pathway
15.
Cell Death Differ ; 26(10): 1880-1894, 2019 10.
Article in English | MEDLINE | ID: mdl-30560933

ABSTRACT

BFL1 is a relatively understudied member of the BCL2 protein family which has been implicated in the pathogenesis and chemoresistance of a variety of human cancers, including hematological malignancies and solid tumours. BFL1 is generally considered to have an antiapoptotic function, although its precise mode of action remains unclear. By quantitatively analyzing BFL1 action in synthetic membrane models and in cells, we found that BFL1 inhibits apoptosis through three distinct mechanisms which are similar but not identical to those of BCLXL, the paradigmatic antiapoptotic BCL2 family protein. Strikingly, alterations in lipid composition during apoptosis activate a prodeath function of BFL1 that is based on noncanonical oligomerization of the protein and breaching of the permeability barrier of the outer mitochondrial membrane (OMM). This lipid-triggered prodeath function of BFL1 is absent in BCLXL and also differs from that of the apoptotic effector BAX, which sets it apart from other BCL2 family members. Our findings support a new model in which BFL1 modulates apoptosis through a bifunctional and multimodal mode of action that is distinctly regulated by OMM lipids compared to BCLXL.


Subject(s)
Apoptosis , Cell Membrane/metabolism , Minor Histocompatibility Antigens/metabolism , Protein Multimerization , Proto-Oncogene Proteins c-bcl-2/metabolism , bcl-X Protein/metabolism , Cell Membrane/genetics , HCT116 Cells , Humans , Minor Histocompatibility Antigens/genetics , Proto-Oncogene Proteins c-bcl-2/genetics , bcl-2-Associated X Protein/genetics , bcl-2-Associated X Protein/metabolism , bcl-X Protein/genetics
17.
Trends Cell Biol ; 27(4): 266-275, 2017 04.
Article in English | MEDLINE | ID: mdl-27932064

ABSTRACT

Bax and its homolog Bak are key regulators of the mitochondrial pathway of apoptosis. On cell stress Bax and Bak accumulate at distinct foci on the mitochondrial surface where they undergo a conformational change, oligomerize, and mediate cytochrome c release, leading to cell death. The molecular mechanisms of Bax and Bak assembly and mitochondrial permeabilization have remained a longstanding question in the field. Recent structural and biophysical studies at several length scales have shed light on key aspects of Bax and Bak function that have shifted how we think this process occurs. These discoveries reveal an unexpected molecular mechanism in which Bax (and likely Bak) dimers assemble into oligomers with an even number of molecules that fully or partially delineate pores of different sizes to permeabilize the mitochondrial outer membrane (MOM) during apoptosis.


Subject(s)
bcl-2 Homologous Antagonist-Killer Protein/metabolism , bcl-2-Associated X Protein/metabolism , Animals , Apoptosis , Humans , Mitochondria/metabolism , Models, Biological , Protein Multimerization
18.
Biochim Biophys Acta Biomembr ; 1859(1): 17-27, 2017 Jan.
Article in English | MEDLINE | ID: mdl-27755971

ABSTRACT

Bcl-2 proteins are key regulators of the mitochondrial outer membrane (MOM) permeabilization that mediates apoptosis. During apoptosis, Bid is cleaved (cBid) and translocates to the MOM, where it activates Bax. Bax then oligomerizes and induces MOM permeabilization. However, little is known about how these proteins affect membrane organization aside from pore formation. In previous studies, we have shown that both cBid and Bax are able to remodel membranes and stabilize curvature. Here, we dissected the independent effects of Bax and cBid on supported lipid structures mimicking the mitochondrial composition by means of atomic force spectroscopy. We show that cBid did not permeabilize the membrane but lowered the membrane breakthrough force. On the other hand, Bax effects were dependent on its oligomeric state. Monomeric Bax did not affect the membrane properties. In contrast, oligomeric Bax lowered the breakthrough force of the membrane, which in the context of pore formation, implies a lowering of the line tension at the edge of the pore.


Subject(s)
BH3 Interacting Domain Death Agonist Protein/chemistry , Liposomes/chemistry , Mitochondrial Membranes/chemistry , Models, Biological , bcl-2-Associated X Protein/chemistry , Animals , Apoptosis , BH3 Interacting Domain Death Agonist Protein/genetics , BH3 Interacting Domain Death Agonist Protein/metabolism , Cardiolipins/chemistry , Cardiolipins/metabolism , Escherichia coli/genetics , Escherichia coli/metabolism , Gene Expression , Humans , Liposomes/metabolism , Mice , Microscopy, Atomic Force , Mitochondria/chemistry , Mitochondria/metabolism , Mitochondrial Membranes/metabolism , Mutation , Permeability , Phosphatidylcholines/chemistry , Phosphatidylcholines/metabolism , Phosphatidylethanolamines/chemistry , Phosphatidylethanolamines/metabolism , Phosphatidylinositols/chemistry , Phosphatidylinositols/metabolism , Phosphatidylserines/chemistry , Phosphatidylserines/metabolism , Protein Multimerization , Recombinant Proteins/chemistry , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , bcl-2-Associated X Protein/genetics , bcl-2-Associated X Protein/metabolism
19.
EMBO J ; 35(4): 389-401, 2016 Feb 15.
Article in English | MEDLINE | ID: mdl-26783362

ABSTRACT

Bax is a key regulator of apoptosis that, under cell stress, accumulates at mitochondria, where it oligomerizes to mediate the permeabilization of the mitochondrial outer membrane leading to cytochrome c release and cell death. However, the underlying mechanism behind Bax function remains poorly understood. Here, we studied the spatial organization of Bax in apoptotic cells using dual-color single-molecule localization-based super-resolution microscopy. We show that active Bax clustered into a broad distribution of distinct architectures, including full rings, as well as linear and arc-shaped oligomeric assemblies that localized in discrete foci along mitochondria. Remarkably, both rings and arcs assemblies of Bax perforated the membrane, as revealed by atomic force microscopy in lipid bilayers. Our data identify the supramolecular organization of Bax during apoptosis and support a molecular mechanism in which Bax fully or partially delineates pores of different sizes to permeabilize the mitochondrial outer membrane.


Subject(s)
Apoptosis , Mitochondria/enzymology , Mitochondrial Membranes/metabolism , Pore Forming Cytotoxic Proteins/metabolism , Protein Multimerization , bcl-2-Associated X Protein/metabolism , Cytochromes c/metabolism , HeLa Cells , Humans , Microscopy, Electron, Transmission , Microscopy, Fluorescence , Mitochondrial Membranes/physiology , Permeability
20.
Biochim Biophys Acta ; 1858(3): 457-466, 2016 Mar.
Article in English | MEDLINE | ID: mdl-26375417

ABSTRACT

Pore forming proteins (PFPs) share the ability of creating pores that allow the passage of ions, proteins or other constituents through a wide variety of target membranes, ranging from bacteria to humans. They often cause cell death, as pore formation disrupts the membrane permeability barrier required for maintaining cell homeostasis. The organization into supramolecular complexes or oligomers that pierce the membrane is a common feature of PFPs. However, the molecular pathway of self-assembly and pore opening remains unclear. Here, we review the most recent discoveries in the mechanism of membrane oligomerization and pore formation of a subset of PFPs, the α-PFPs, whose pore-forming domains are formed by helical segments. Only now we are starting to grasp the molecular details of their function, mainly thanks to the introduction of single molecule microscopy and nanoscopy techniques. This article is part of a Special Issue entitled: Pore-forming toxins edited by Mauro Dalla Serra and Franco Gambale.


Subject(s)
Cell Membrane/chemistry , Porins/chemistry , Protein Multimerization , Animals , Cell Membrane/metabolism , Humans , Porins/metabolism , Protein Structure, Quaternary , Protein Structure, Secondary , Protein Structure, Tertiary
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