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1.
Faraday Discuss ; 232(0): 172-187, 2021 12 24.
Artigo em Inglês | MEDLINE | ID: mdl-34549220

RESUMO

Membrane protein structure and function are modulated via interactions with their lipid environment. This is particularly true for integral membrane pumps, the P-type ATPases. These ATPases play vital roles in cell physiology, where they are associated with the transport of cations and lipids, thereby generating and maintaining crucial (electro-)chemical potential gradients across the membrane. Several pumps (Na+, K+-ATPase, H+, K+-ATPase and the plasma membrane Ca2+-ATPase) which are located in the asymmetric animal plasma membrane have been found to possess polybasic (lysine-rich) domains on their cytoplasmic surfaces, which are thought to act as phosphatidylserine (PS) binding domains. In contrast, the sarcoplasmic reticulum Ca2+-ATPase, located within an intracellular organelle membrane, does not possess such a domain. Here we focus on the lysine-rich N-termini of the plasma-membrane-bound Na+, K+- and H+, K+-ATPases. Synthetic peptides corresponding to the N-termini of these proteins were found, via quartz crystal microbalance and circular dichroism measurements, to interact via an electrostatic interaction with PS-containing membranes, thereby undergoing an increase in helical or other secondary structure content. As well as influencing ion pumping activity, it is proposed that this interaction could provide a mechanism for sensing the lipid asymmetry of the plasma membrane, which changes drastically when a cell undergoes apoptosis, i.e. programmed cell death. Thus, polybasic regions of plasma membrane-bound ion pumps could potentially perform the function of a "death sensor", signalling to a cell to reduce pumping activity and save energy.


Assuntos
ATPases do Tipo-P , Animais , Membrana Celular , Estrutura Secundária de Proteína , Sódio
2.
Elife ; 82019 09 25.
Artigo em Inglês | MEDLINE | ID: mdl-31552823

RESUMO

Transient oligomers are commonly formed in the early stages of amyloid assembly. Determining the structure(s) of these species and defining their role(s) in assembly is key to devising new routes to control disease. Here, using a combination of chemical kinetics, NMR spectroscopy and other biophysical methods, we identify and structurally characterize the oligomers required for amyloid assembly of the protein ΔN6, a truncation variant of human ß2-microglobulin (ß2m) found in amyloid deposits in the joints of patients with dialysis-related amyloidosis. The results reveal an assembly pathway which is initiated by the formation of head-to-head non-toxic dimers and hexamers en route to amyloid fibrils. Comparison with inhibitory dimers shows that precise subunit organization determines amyloid assembly, while dynamics in the C-terminal strand hint to the initiation of cross-ß structure formation. The results provide a detailed structural view of early amyloid assembly involving structured species that are not cytotoxic.


Assuntos
Amiloide/química , Amiloide/metabolismo , Substâncias Macromoleculares/química , Substâncias Macromoleculares/metabolismo , Multimerização Proteica , Microglobulina beta-2/química , Microglobulina beta-2/metabolismo , Fenômenos Biofísicos , Humanos , Cinética , Espectroscopia de Ressonância Magnética , Ligação Proteica
3.
Int J Mol Sci ; 20(8)2019 Apr 23.
Artigo em Inglês | MEDLINE | ID: mdl-31018575

RESUMO

The merlin-ERM (ezrin, radixin, moesin) family of proteins plays a central role in linking the cellular membranes to the cortical actin cytoskeleton. Merlin regulates contact inhibition and is an integral part of cell-cell junctions, while ERM proteins, ezrin, radixin and moesin, assist in the formation and maintenance of specialized plasma membrane structures and membrane vesicle structures. These two protein families share a common evolutionary history, having arisen and separated via gene duplication near the origin of metazoa. During approximately 0.5 billion years of evolution, the merlin and ERM family proteins have maintained both sequence and structural conservation to an extraordinary level. Comparing crystal structures of merlin-ERM proteins and their complexes, a picture emerges of the merlin-ERM proteins acting as switchable interaction hubs, assembling protein complexes on cellular membranes and linking them to the actin cytoskeleton. Given the high level of structural conservation between the merlin and ERM family proteins we speculate that they may function together.


Assuntos
Membrana Celular/metabolismo , Proteínas do Citoesqueleto/metabolismo , Proteínas de Membrana/metabolismo , Proteínas dos Microfilamentos/metabolismo , Neurofibromina 2/metabolismo , Citoesqueleto de Actina/metabolismo , Sequência de Aminoácidos , Animais , Membrana Celular/química , Inibição de Contato , Proteínas do Citoesqueleto/química , Humanos , Proteínas de Membrana/química , Proteínas dos Microfilamentos/química , Modelos Moleculares , Neurofibromina 2/química , Conformação Proteica , Domínios Proteicos , Mapas de Interação de Proteínas , Alinhamento de Sequência
4.
Proc Natl Acad Sci U S A ; 112(18): 5691-6, 2015 May 05.
Artigo em Inglês | MEDLINE | ID: mdl-25902516

RESUMO

Amyloid disorders cause debilitating illnesses through the formation of toxic protein aggregates. The mechanisms of amyloid toxicity and the nature of species responsible for mediating cellular dysfunction remain unclear. Here, using ß2-microglobulin (ß2m) as a model system, we show that the disruption of membranes by amyloid fibrils is caused by the molecular shedding of membrane-active oligomers in a process that is dependent on pH. Using thioflavin T (ThT) fluorescence, NMR, EM and fluorescence correlation spectroscopy (FCS), we show that fibril disassembly at pH 6.4 results in the formation of nonnative spherical oligomers that disrupt synthetic membranes. By contrast, fibril dissociation at pH 7.4 results in the formation of nontoxic, native monomers. Chemical cross-linking or interaction with hsp70 increases the kinetic stability of fibrils and decreases their capacity to cause membrane disruption and cellular dysfunction. The results demonstrate how pH can modulate the deleterious effects of preformed amyloid aggregates and suggest why endocytic trafficking through acidic compartments may be a key factor in amyloid disease.


Assuntos
Amiloide/química , Amiloidose/metabolismo , Benzotiazóis , Endossomos/química , Proteínas de Choque Térmico HSP70/química , Humanos , Concentração de Íons de Hidrogênio , Cinética , Lisossomos/química , Monócitos/metabolismo , Muramidase/química , Ligação Proteica , Proteínas Recombinantes/química , Espectrometria de Fluorescência , Tiazóis/química , Microglobulina beta-2/química
5.
PLoS One ; 9(8): e104492, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-25100247

RESUMO

Although the molecular mechanisms underlying the pathology of amyloidoses are not well understood, the interaction between amyloid proteins and cell membranes is thought to play a role in several amyloid diseases. Amyloid fibrils of ß2-microglobulin (ß2m), associated with dialysis-related amyloidosis (DRA), have been shown to cause disruption of anionic lipid bilayers in vitro. However, the effect of lipid composition and the chemical environment in which ß2m-lipid interactions occur have not been investigated previously. Here we examine membrane damage resulting from the interaction of ß2m monomers and fibrils with lipid bilayers. Using dye release, tryptophan fluorescence quenching and fluorescence confocal microscopy assays we investigate the effect of anionic lipid composition and pH on the susceptibility of liposomes to fibril-induced membrane damage. We show that ß2m fibril-induced membrane disruption is modulated by anionic lipid composition and is enhanced by acidic pH. Most strikingly, the greatest degree of membrane disruption is observed for liposomes containing bis(monoacylglycero)phosphate (BMP) at acidic pH, conditions likely to reflect those encountered in the endocytic pathway. The results suggest that the interaction between ß2m fibrils and membranes of endosomal origin may play a role in the molecular mechanism of ß2m amyloid-associated osteoarticular tissue destruction in DRA.


Assuntos
Amiloide/química , Endossomos/química , Membranas Intracelulares/química , Microglobulina beta-2/química , Amiloide/genética , Amiloide/metabolismo , Amiloidose/etiologia , Amiloidose/genética , Amiloidose/metabolismo , Endossomos/genética , Endossomos/metabolismo , Humanos , Concentração de Íons de Hidrogênio , Membranas Intracelulares/metabolismo , Membranas Artificiais , Diálise Renal/efeitos adversos , Microglobulina beta-2/genética , Microglobulina beta-2/metabolismo
6.
Biochemistry ; 50(50): 10887-97, 2011 Dec 20.
Artigo em Inglês | MEDLINE | ID: mdl-22082111

RESUMO

Chloride intracellular channel proteins (CLICs) differ from most ion channels as they can exist in both soluble and integral membrane forms. The CLICs are expressed as soluble proteins but can reversibly autoinsert into the membrane to form active ion channels. For CLIC1, the interaction with the lipid bilayer is enhanced under oxidative conditions. At present, little evidence is available characterizing the structure of the putative oligomeric CLIC integral membrane form. Previously, fluorescence resonance energy transfer (FRET) was used to monitor and model the conformational transition within CLIC1 as it interacts with the membrane bilayer. These results revealed a large-scale unfolding between the C- and N-domains of CLIC1 as it interacts with the membrane. In the present study, FRET was used to probe lipid-induced structural changes arising in the vicinity of the putative transmembrane region of CLIC1 (residues 24-46) under oxidative conditions. Intramolecular FRET distances are consistent with the model in which the N-terminal domain inserts into the bilayer as an extended α-helix. Further, intermolecular FRET was performed between fluorescently labeled CLIC1 monomers within membranes. The intermolecular FRET shows that CLIC1 forms oligomers upon oxidation in the presence of the membranes. Fitting the data to symmetric oligomer models of the CLIC1 transmembrane form indicates that the structure is large and most consistent with a model comprising approximately six to eight subunits.


Assuntos
Canais de Cloreto/química , Canais de Cloreto/metabolismo , Algoritmos , Canais de Cloreto/genética , Colesterol/química , Colesterol/metabolismo , Cisteína , Dimerização , Transferência Ressonante de Energia de Fluorescência , Corantes Fluorescentes/química , Humanos , Bicamadas Lipídicas/química , Bicamadas Lipídicas/metabolismo , Lipossomos , Modelos Moleculares , Mutagênese Sítio-Dirigida , Proteínas Mutantes/química , Proteínas Mutantes/metabolismo , Oxirredução , Fosfatidilcolinas/química , Fosfatidilcolinas/metabolismo , Conformação Proteica , Domínios e Motivos de Interação entre Proteínas , Desdobramento de Proteína , Proteínas Recombinantes/química , Proteínas Recombinantes/metabolismo , Triptofano/química
7.
Biochemistry ; 49(25): 5278-89, 2010 Jun 29.
Artigo em Inglês | MEDLINE | ID: mdl-20507120

RESUMO

A striking feature of the CLIC (chloride intracellular channel) protein family is the ability of its members to convert between a soluble state and an integral membrane channel form. Direct evidence of the structural transition required for the CLIC protein to autonomously insert into the membrane is lacking, largely because of the challenge of probing the conformation of the membrane-bound protein. However, insights into the CLIC transmembrane form can be gained by biophysical methods such as fluorescence resonance energy transfer (FRET) spectroscopy. This approach was used to measure distances from tryptophan 35, located within the CLIC1 putative N-domain transmembrane region, to three native cysteine residues within the C-terminal domain. These distances were computed both in aqueous solution and upon the addition of membrane vesicles. The FRET distances were used as constraints for modeling of a structure for the CLIC1 integral membrane form. The data are suggestive of a large conformational unfolding occurring between the N- and C-domains of CLIC1 upon interaction with the membrane. Consistent with previous findings, the N-terminal domain of CLIC1 is likely to insert into the lipid bilayer, while the C-domain remains in solution on the extravesicular side of the membrane.


Assuntos
Canais de Cloreto/metabolismo , Proteínas de Membrana/metabolismo , Canais de Cloreto/química , Espectroscopia de Ressonância de Spin Eletrônica , Transferência Ressonante de Energia de Fluorescência , Corantes Fluorescentes , Humanos , Modelos Moleculares , Ligação Proteica , Espectrometria de Fluorescência , Marcadores de Spin
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