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1.
Cell ; 187(3): 545-562, 2024 Feb 01.
Artigo em Inglês | MEDLINE | ID: mdl-38306981

RESUMO

Determining the structure and mechanisms of all individual functional modules of cells at high molecular detail has often been seen as equal to understanding how cells work. Recent technical advances have led to a flush of high-resolution structures of various macromolecular machines, but despite this wealth of detailed information, our understanding of cellular function remains incomplete. Here, we discuss present-day limitations of structural biology and highlight novel technologies that may enable us to analyze molecular functions directly inside cells. We predict that the progression toward structural cell biology will involve a shift toward conceptualizing a 4D virtual reality of cells using digital twins. These will capture cellular segments in a highly enriched molecular detail, include dynamic changes, and facilitate simulations of molecular processes, leading to novel and experimentally testable predictions. Transferring biological questions into algorithms that learn from the existing wealth of data and explore novel solutions may ultimately unveil how cells work.


Assuntos
Biologia , Biologia Computacional , Substâncias Macromoleculares/química
2.
Mol Cell ; 67(4): 673-684.e8, 2017 Aug 17.
Artigo em Inglês | MEDLINE | ID: mdl-28689662

RESUMO

The unfolded protein response (UPR) is a conserved homeostatic program that is activated by misfolded proteins in the lumen of the endoplasmic reticulum (ER). Recently, it became evident that aberrant lipid compositions of the ER membrane, referred to as lipid bilayer stress, are equally potent in activating the UPR. The underlying molecular mechanism, however, remained unclear. We show that the most conserved transducer of ER stress, Ire1, uses an amphipathic helix (AH) to sense membrane aberrancies and control UPR activity. In vivo and in vitro experiments, together with molecular dynamics (MD) simulations, identify the physicochemical properties of the membrane environment that control Ire1 oligomerization. This work establishes the molecular mechanism of UPR activation by lipid bilayer stress.


Assuntos
Estresse do Retículo Endoplasmático , Retículo Endoplasmático/metabolismo , Membranas Intracelulares/metabolismo , Bicamadas Lipídicas/metabolismo , Glicoproteínas de Membrana/metabolismo , Proteínas Serina-Treonina Quinases/metabolismo , Proteínas de Saccharomyces cerevisiae/metabolismo , Saccharomyces cerevisiae/metabolismo , Resposta a Proteínas não Dobradas , Glicoproteínas de Membrana/química , Glicoproteínas de Membrana/genética , Simulação de Dinâmica Molecular , Mutação , Conformação Proteica em alfa-Hélice , Dobramento de Proteína , Proteínas Serina-Treonina Quinases/química , Proteínas Serina-Treonina Quinases/genética , Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/química , Proteínas de Saccharomyces cerevisiae/genética , Transdução de Sinais , Relação Estrutura-Atividade , Fatores de Tempo
3.
J Bacteriol ; 202(12)2020 05 27.
Artigo em Inglês | MEDLINE | ID: mdl-32253343

RESUMO

Potassium and glutamate are the major cation and anion, respectively, in every living cell. Due to the high concentrations of both ions, the cytoplasm of all cells can be regarded as a potassium glutamate solution. This implies that the concentrations of both ions need to be balanced. While the control of potassium uptake by glutamate is well established for eukaryotic cells, much less is known about the mechanisms that link potassium homeostasis to glutamate availability in bacteria. Here, we have discovered that the availability of glutamate strongly decreases the minimal external potassium concentration required for the highly abundant Bacillus subtilis potassium channel KtrCD to accumulate potassium. In contrast, the inducible KtrAB and KimA potassium uptake systems have high apparent affinities for potassium even in the absence of glutamate. Experiments with mutant strains revealed that the KtrD subunit responds to the presence of glutamate. For full activity, KtrD synergistically requires the presence of the regulatory subunit KtrC and of glutamate. The analysis of suppressor mutants of a strain that has KtrCD as the only potassium uptake system and that experiences severe potassium starvation identified a mutation in the ion selectivity filter of KtrD (Gly282 to Val) that similarly results in a strongly glutamate-independent increase of the apparent affinity for potassium. Thus, this work has identified two conditions that increase the apparent affinity of KtrCD for potassium, i.e., external glutamate and the acquisition of a single point mutation in KtrD.IMPORTANCE In each living cell, potassium is required for maintaining the intracellular pH and for the activity of essential enzymes. Like most other bacteria, Bacillus subtilis possesses multiple low- and high-affinity potassium uptake systems. Their activity is regulated by the second messenger cyclic di-AMP. Moreover, the pools of the most abundant ions potassium and glutamate must be balanced. We report two conditions under which the low-affinity potassium channel KtrCD is able to mediate potassium uptake at low external potassium concentrations: physiologically, the presence of glutamate results in a severely increased potassium uptake. Moreover, this is achieved by a mutation affecting the selectivity filter of the KtrD channel. These results highlight the integration between potassium and glutamate homeostasis in bacteria.


Assuntos
Bacillus subtilis/metabolismo , Proteínas de Bactérias/metabolismo , Ácido Glutâmico/metabolismo , Canais de Potássio/metabolismo , Bacillus subtilis/química , Bacillus subtilis/genética , Proteínas de Bactérias/química , Proteínas de Bactérias/genética , Transporte Biológico , Regulação Bacteriana da Expressão Gênica , Ácido Glutâmico/química , Cinética , Potássio/química , Potássio/metabolismo , Canais de Potássio/química , Canais de Potássio/genética
4.
J Biol Chem ; 294(24): 9605-9614, 2019 06 14.
Artigo em Inglês | MEDLINE | ID: mdl-31061098

RESUMO

The signaling nucleotide cyclic di-AMP (c-di-AMP) is the only known essential second messenger in bacteria. Recently, c-di-AMP has been identified as being essential for controlling potassium uptake in the model organism Bacillus subtilis and several other bacteria. A B. subtilis strain lacking c-di-AMP is not viable at high potassium concentrations, unless the bacteria acquire suppressor mutations. In this study, we isolated such suppressor mutants and found mutations that reduced the activities of the potassium transporters KtrCD and KimA. Although c-di-AMP-mediated control of KtrCD has previously been demonstrated, it is unknown how c-di-AMP affects KimA activity. Using the DRaCALA screening assay, we tested for any interactions of KimA and other potential target proteins in B. subtilis with c-di-AMP. This assay identified KimA, as well as the K+/H+ antiporter KhtT, the potassium exporter CpaA (YjbQ), the osmoprotectant transporter subunit OpuCA, the primary Mg2+ importer MgtE, and DarB (YkuL), a protein of unknown function, as bona fide c-di-AMP-binding proteins. Further, binding of c-di-AMP to KimA inhibited potassium uptake. Our results indicate that c-di-AMP controls KimA-mediated potassium transport at both kimA gene expression and KimA activity levels. Moreover, the discovery that potassium exporters are c-di-AMP targets indicates that this second messenger controls potassium homeostasis in B. subtilis at a global level by binding to riboswitches and to different classes of transport proteins involved in potassium uptake and export.


Assuntos
Bacillus subtilis/metabolismo , Proteínas de Bactérias/metabolismo , Fosfatos de Dinucleosídeos/metabolismo , Homeostase , Potássio/metabolismo , Sistemas do Segundo Mensageiro/fisiologia , Bacillus subtilis/genética , Bacillus subtilis/crescimento & desenvolvimento , Proteínas de Bactérias/genética , Mutação
5.
Biol Chem ; 400(10): 1303-1322, 2019 09 25.
Artigo em Inglês | MEDLINE | ID: mdl-31361596

RESUMO

Potassium channels play a crucial role in the physiology of all living organisms. They maintain the membrane potential and are involved in electrical signaling, pH homeostasis, cell-cell communication and survival under osmotic stress. Many prokaryotic potassium channels and members of the eukaryotic Slo channels are regulated by tethered cytoplasmic domains or associated soluble proteins, which belong to the family of regulator of potassium conductance (RCK). RCK domains and subunits form octameric rings, which control ion gating. For years, a common regulatory mechanism was suggested: ligand-induced conformational changes in the octameric ring would pull open a gate in the pore via flexible linkers. Consistently, ligand-dependent conformational changes were described for various RCK gating rings. Yet, recent structural and functional data of complete ion channels uncovered that the following signal transduction to the pore domains is divers. The different RCK-regulated ion channels show remarkably heterogeneous mechanisms with neither the connection from the RCK domain to the pore nor the gate being conserved. Some channels even lack the flexible linkers, while in others the gate cannot easily be assigned. In this review we compare available structures of RCK-gated potassium channels, highlight the similarities and differences of channel gating, and delineate existing inconsistencies.


Assuntos
Ativação do Canal Iônico , Canais de Potássio/metabolismo , Domínios Proteicos , Difosfato de Adenosina/metabolismo , Proteínas de Bactérias/química , Proteínas de Bactérias/metabolismo , Cálcio/metabolismo , Concentração de Íons de Hidrogênio , Canais de Potássio/química , Conformação Proteica , Sódio/metabolismo
6.
Nature ; 502(7469): 119-23, 2013 Oct 03.
Artigo em Inglês | MEDLINE | ID: mdl-24091978

RESUMO

Excitatory amino acid transporters (EAATs) are secondary transport proteins that mediate the uptake of glutamate and other amino acids. EAATs fulfil an important role in neuronal signal transmission by clearing the excitatory neurotransmitters from the synaptic cleft after depolarization of the postsynaptic neuron. An intensively studied model system for understanding the transport mechanism of EAATs is the archaeal aspartate transporter GltPh. Each subunit in the homotrimeric GltPh supports the coupled translocation of one aspartate molecule and three Na(+) ions as well as an uncoupled flux of Cl(-) ions. Recent crystal structures of GltPh revealed three possible conformations for the subunits, but it is unclear whether the motions of individual subunits are coordinated to support transport. Here, we report the direct observation of conformational dynamics in individual GltPh trimers embedded in the membrane by applying single-molecule fluorescence resonance energy transfer (FRET). By analysing the transporters in a lipid bilayer instead of commonly used detergent micelles, we achieve conditions that approximate the physiologically relevant ones. From the kinetics of FRET level transitions we conclude that the three GltPh subunits undergo conformational changes stochastically and independently of each other.


Assuntos
Ácido Aspártico/química , Ácido Aspártico/metabolismo , Proteínas de Transporte de Glutamato da Membrana Plasmática/química , Modelos Moleculares , Sódio/química , Transferência Ressonante de Energia de Fluorescência , Proteínas de Transporte de Glutamato da Membrana Plasmática/metabolismo , Bicamadas Lipídicas/metabolismo , Estrutura Terciária de Proteína , Pyrococcus horikoshii/química , Pyrococcus horikoshii/metabolismo
7.
J Biol Chem ; 290(26): 15962-72, 2015 Jun 26.
Artigo em Inglês | MEDLINE | ID: mdl-25922069

RESUMO

GltPh from Pyrococcus horikoshii is a homotrimeric Na(+)-coupled aspartate transporter. It belongs to the widespread family of glutamate transporters, which also includes the mammalian excitatory amino acid transporters that take up the neurotransmitter glutamate. Each protomer in GltPh consists of a trimerization domain involved in subunit interactions and a transport domain containing the substrate binding site. Here, we have studied the dynamics of Na(+) and aspartate binding to GltPh. Tryptophan fluorescence measurements on the fully active single tryptophan mutant F273W revealed that Na(+) binds with low affinity to the apoprotein (Kd 120 mm), with a particularly low kon value (5.1 m(-1)s(-1)). At least two sodium ions bind before aspartate. The binding of Na(+) requires a very high activation energy (Ea 106.8 kJ mol(-1)) and consequently has a large Q10 value of 4.5, indicative of substantial conformational changes before or after the initial binding event. The apparent affinity for aspartate binding depended on the Na(+) concentration present. Binding of aspartate was not observed in the absence of Na(+), whereas in the presence of high Na(+) concentrations (above the Kd for Na(+)) the dissociation constants for aspartate were in the nanomolar range, and the aspartate binding was fast (kon of 1.4 × 10(5) m(-1)s(-1)), with low Ea and Q10 values (42.6 kJ mol(-1) and 1.8, respectively). We conclude that Na(+) binding is most likely the rate-limiting step for substrate binding.


Assuntos
Sistema X-AG de Transporte de Aminoácidos/metabolismo , Proteínas Arqueais/metabolismo , Ácido Aspártico/metabolismo , Pyrococcus horikoshii/metabolismo , Sistema X-AG de Transporte de Aminoácidos/química , Sistema X-AG de Transporte de Aminoácidos/genética , Proteínas Arqueais/química , Proteínas Arqueais/genética , Ácido Aspártico/química , Sítios de Ligação , Cinética , Conformação Proteica , Pyrococcus horikoshii/química , Pyrococcus horikoshii/genética , Sódio/química , Sódio/metabolismo
8.
Biol Chem ; 396(9-10): 1003-14, 2015 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-25838295

RESUMO

The superfamily of K+ transporters unites proteins from plants, fungi, bacteria, and archaea that translocate K+ and/or Na+ across membranes. These proteins are key components in osmotic regulation, pH homeostasis, and resistance to high salinity and dryness. The members of the superfamily are closely related to K+ channels such as KcsA but also show several striking differences that are attributed to their altered functions. This review highlights these functional differences, focusing on the bacterial superfamily members KtrB, TrkH, and KdpA. The functional variations within the family and comparison to MPM-type K+ channels are discussed in light of the recently solved structures of the Ktr and Trk systems.


Assuntos
Canais de Potássio/metabolismo , Animais , Humanos , Modelos Moleculares , Canais de Potássio/química
9.
Nat Commun ; 15(1): 3223, 2024 Apr 15.
Artigo em Inglês | MEDLINE | ID: mdl-38622146

RESUMO

Two-component systems, consisting of a histidine kinase and a response regulator, serve signal transduction in bacteria, often regulating transcription in response to environmental stimuli. Here, we identify a tandem serine histidine kinase function for KdpD, previously described as a histidine kinase of the KdpDE two-component system, which controls production of the potassium pump KdpFABC. We show that KdpD additionally mediates an inhibitory serine phosphorylation of KdpFABC at high potassium levels, using not its C-terminal histidine kinase domain but an N-terminal atypical serine kinase domain. Sequence analysis of KdpDs from different species highlights that some KdpDs are much shorter than others. We show that, while Escherichia coli KdpD's atypical serine kinase domain responds directly to potassium levels, a shorter version from Deinococcus geothermalis is controlled by second messenger cyclic di-AMP. Our findings add to the growing functional diversity of sensor kinases while simultaneously expanding the framework for regulatory mechanisms in bacterial potassium homeostasis.


Assuntos
Proteínas de Escherichia coli , Histidina Quinase/genética , Proteínas de Escherichia coli/genética , Proteínas de Escherichia coli/metabolismo , Proteínas Serina-Treonina Quinases , Proteínas Quinases/genética , Proteínas Quinases/metabolismo , Escherichia coli/genética , Escherichia coli/metabolismo , Fosforilação , Potássio/metabolismo , Proteínas de Bactérias/genética , Proteínas de Bactérias/metabolismo , Regulação Bacteriana da Expressão Gênica
10.
Nat Commun ; 15(1): 8558, 2024 Oct 03.
Artigo em Inglês | MEDLINE | ID: mdl-39362862

RESUMO

Plants can survive in soils of low micromolar potassium (K+) concentrations. Root K+ intake is accomplished by the K+ channel AKT1 and KUP/HAK/KT type high-affinity K+ transporters. Arabidopsis HAK5 mutants impaired in low K+ acquisition have been identified already more than two decades ago, the molecular mechanism, however, is still a matter of debate also because of lack of direct measurements of HAK5-mediated K+ currents. When we expressed AtHAK5 in Xenopus oocytes together with CBL1/CIPK23, no inward currents were elicited in sufficient K+ media. Under low K+ and inward-directed proton motive force (PMF), the inward K+ current increased indicating that HAK5 energetically couples the uphill transport of K+ to the downhill flux of H+. At extracellular K+ concentrations above 25 µM, the initial rise in current was followed by a concentration-graded inactivation. When we replaced Tyr450 in AtHAK5 to Ala the K+ affinity strongly decreased, indicating that AtHAK5 position Y450 holds a key for K+ sensing and transport. When the soil K+ concentration drops toward the range that thermodynamically cannot be covered by AKT1, the AtHAK5 K+/H+ symporter progressively takes over K+ nutrition. Therefore, optimizing K+ use efficiency of crops, HAK5 could be key for low K+ tolerant agriculture.


Assuntos
Proteínas de Arabidopsis , Arabidopsis , Oócitos , Potássio , Arabidopsis/metabolismo , Arabidopsis/genética , Proteínas de Arabidopsis/metabolismo , Proteínas de Arabidopsis/genética , Potássio/metabolismo , Animais , Oócitos/metabolismo , Proteínas de Transporte de Cátions/metabolismo , Proteínas de Transporte de Cátions/genética , Xenopus laevis , Canais de Potássio/metabolismo , Canais de Potássio/genética , Raízes de Plantas/metabolismo , Proteínas Serina-Treonina Quinases , Antiportadores de Potássio-Hidrogênio
11.
Adv Sci (Weinh) ; 11(15): e2307237, 2024 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-38350720

RESUMO

Various disorders are accompanied by histamine-independent itching, which is often resistant to the currently available therapies. Here, it is reported that the pharmacological activation of Slack (Kcnt1, KNa1.1), a potassium channel highly expressed in itch-sensitive sensory neurons, has therapeutic potential for the treatment of itching. Based on the Slack-activating antipsychotic drug, loxapine, a series of new derivatives with improved pharmacodynamic and pharmacokinetic profiles is designed that enables to validate Slack as a pharmacological target in vivo. One of these new Slack activators, compound 6, exhibits negligible dopamine D2 and D3 receptor binding, unlike loxapine. Notably, compound 6 displays potent on-target antipruritic activity in multiple mouse models of acute histamine-independent and chronic itch without motor side effects. These properties make compound 6 a lead molecule for the development of new antipruritic therapies targeting Slack.


Assuntos
Canais de Potássio , Prurido , Animais , Camundongos , Antipruriginosos/uso terapêutico , Histamina/metabolismo , Loxapina/uso terapêutico , Canais de Potássio/metabolismo , Prurido/tratamento farmacológico , Prurido/metabolismo
12.
Appl Environ Microbiol ; 79(12): 3839-46, 2013 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-23584768

RESUMO

In their natural environments, moderately halophilic bacteria are confronted not only with high salinities but also with low oxygen tensions due to the high salinities. The growth of H. halophilus is strictly aerobic. To analyze the dependence of respiration on the NaCl concentration and oxygen availability of the medium, resting cell experiments were performed. The respiration rates were dependent on the NaCl concentration of the growth medium, as well as on the NaCl concentration of the assay buffer, indicating regulation on the transcriptional and the activity level. Respiration was accompanied by the generation of an electrochemical proton potential (Δµ(H+)) across the cytoplasmic membrane whose magnitude was dependent on the external pH. Genes encoding proteins involved in respiration and Δµ(H+) generation, such as a noncoupled NADH dehydrogenase (NDH-2), complex II, and complex III, were identified in the genome. In addition, genes encoding five different terminal oxidases are present. Inhibitor profiling revealed the presence of NDH-2 and complex III, but the nature of the oxidases could not be resolved using this approach. Expression analysis demonstrated that all the different terminal oxidases were indeed expressed, but by far the most prominent was cta, encoding cytochrome caa3 oxidase. The expression of all of the different oxidase genes increased at high NaCl concentrations, and the transcript levels of cta and qox (encoding cytochrome aa3 oxidase) also increased at low oxygen concentrations. These data culminate in a model of the composition and variation of the respiratory chain of H. halophilus.


Assuntos
Membrana Celular/fisiologia , Metabolismo Energético/fisiologia , Halobacillus/fisiologia , Oxigênio/metabolismo , Salinidade , Trifosfato de Adenosina/metabolismo , Transporte de Elétrons/fisiologia , Metabolismo Energético/genética , Halobacillus/genética , Concentração de Íons de Hidrogênio , Força Próton-Motriz/fisiologia , Reação em Cadeia da Polimerase em Tempo Real
13.
Nat Commun ; 14(1): 3683, 2023 06 21.
Artigo em Inglês | MEDLINE | ID: mdl-37344476

RESUMO

Cyclic di-AMP is the only known essential second messenger in bacteria and archaea, regulating different proteins indispensable for numerous physiological processes. In particular, it controls various potassium and osmolyte transporters involved in osmoregulation. In Bacillus subtilis, the K+/H+ symporter KimA of the KUP family is inactivated by c-di-AMP. KimA sustains survival at potassium limitation at low external pH by mediating potassium ion uptake. However, at elevated intracellular K+ concentrations, further K+ accumulation would be toxic. In this study, we reveal the molecular basis of how c-di-AMP binding inhibits KimA. We report cryo-EM structures of KimA with bound c-di-AMP in detergent solution and reconstituted in amphipols. By combining structural data with functional assays and molecular dynamics simulations we reveal how c-di-AMP modulates transport. We show that an intracellular loop in the transmembrane domain interacts with c-di-AMP bound to the adjacent cytosolic domain. This reduces the mobility of transmembrane helices at the cytosolic side of the K+ binding site and therefore traps KimA in an inward-occluded conformation.


Assuntos
AMP Cíclico , Prótons , Proteínas de Bactérias/metabolismo , Sistemas do Segundo Mensageiro/fisiologia , Proteínas de Membrana Transportadoras/metabolismo , Potássio/metabolismo , Fosfatos de Dinucleosídeos/metabolismo
14.
Elife ; 112022 Oct 18.
Artigo em Inglês | MEDLINE | ID: mdl-36255052

RESUMO

KdpFABC is a high-affinity prokaryotic K+ uptake system that forms a functional chimera between a channel-like subunit (KdpA) and a P-type ATPase (KdpB). At high K+ levels, KdpFABC needs to be inhibited to prevent excessive K+ accumulation to the point of toxicity. This is achieved by a phosphorylation of the serine residue in the TGES162 motif in the A domain of the pump subunit KdpB (KdpBS162-P). Here, we explore the structural basis of inhibition by KdpBS162 phosphorylation by determining the conformational landscape of KdpFABC under inhibiting and non-inhibiting conditions. Under turnover conditions, we identified a new inhibited KdpFABC state that we termed E1P tight, which is not part of the canonical Post-Albers transport cycle of P-type ATPases. It likely represents the biochemically described stalled E1P state adopted by KdpFABC upon KdpBS162 phosphorylation. The E1P tight state exhibits a compact fold of the three cytoplasmic domains and is likely adopted when the transition from high-energy E1P states to E2P states is unsuccessful. This study represents a structural characterization of a biologically relevant off-cycle state in the P-type ATPase family and supports the emerging discussion of P-type ATPase regulation by such states.


Assuntos
Proteínas de Transporte de Cátions , Proteínas de Escherichia coli , ATPases do Tipo-P , Proteínas de Escherichia coli/metabolismo , Escherichia coli/metabolismo , Proteínas de Transporte de Cátions/química , Potássio/metabolismo
15.
J Biol Chem ; 285(14): 10318-27, 2010 Apr 02.
Artigo em Inglês | MEDLINE | ID: mdl-20097755

RESUMO

KtrB, the K(+)-translocating subunit of the Na(+)-dependent bacterial K(+) uptake system KtrAB, consists of four M(1)PM(2) domains, in which M(1) and M(2) are transmembrane helices and P indicates a p-loop that folds back from the external medium into the cell membrane. The transmembrane stretch M(2C) is, with its 40 residues, unusually long. It consists of three parts, the hydrophobic helices M(2C1) and M(2C3), which are connected by a nonhelical M(2C2) region, containing conserved glycine, alanine, serine, threonine, and lysine residues. Several point mutations in M(2C2) led to a huge gain of function of K(+) uptake by KtrB from the bacterium Vibrio alginolyticus. This effect was exclusively due to an increase in V(max) for K(+) transport. Na(+) translocation by KtrB was not affected. Partial to complete deletions of M(2C2) also led to enhanced V(max) values for K(+) uptake via KtrB. However, several deletion variants also exhibited higher K(m) values for K(+) uptake and at least one deletion variant, KtrB(Delta326-328), also transported Na(+) faster. The presence of KtrA did not suppress any of these effects. For the deletion variants, this was due to a diminished binding of KtrA to KtrB. PhoA studies indicated that M(2C2) forms a flexible structure within the membrane allowing M(2C3) to be directed either to the cytoplasm or (artificially) to the periplasm. These data are interpreted to mean (i) that region M(2C2) forms a flexible gate controlling K(+) translocation at the cytoplasmic side of KtrB, and (ii) that M(2C2) is required for the interaction between KtrA and KtrB.


Assuntos
Proteínas de Bactérias/genética , Proteínas de Bactérias/metabolismo , Proteínas de Transporte de Cátions/genética , Proteínas de Transporte de Cátions/metabolismo , Membrana Celular/metabolismo , Mutação/genética , Potássio/metabolismo , Vibrio alginolyticus/metabolismo , Sequência de Aminoácidos , Proteínas de Bactérias/química , Transporte Biológico , Proteínas de Transporte de Cátions/química , Escherichia coli/genética , Escherichia coli/metabolismo , Dados de Sequência Molecular , Homologia de Sequência de Aminoácidos , Sódio/metabolismo , Vibrio alginolyticus/genética
16.
J Biol Chem ; 285(36): 28210-9, 2010 Sep 03.
Artigo em Inglês | MEDLINE | ID: mdl-20573964

RESUMO

Transmembrane stretch M(2C) from the bacterial K(+)-translocating protein KtrB is unusually long. In its middle part, termed M(2C2), it contains several small and polar amino acids. This region is flanked by the two alpha-helices M(2C1) and M(2C3) and may form a flexible gate at the cytoplasmic side of the membrane controlling K(+) translocation. In this study, we provide experimental evidence for this notion by using continuous wave and pulse EPR measurements of single and double spin-labeled cysteine variants of KtrB. Most of the spin-labeled residues in M(2C2) were shown to be immobile, pointing to a compact structure. However, the high polarity revealed for the microenvironment of residue positions 317, 318, and 327 indicated the existence of a water-accessible cavity. Upon the addition of K(+) ions, M(2C2) residue Thr-318R1 (R1 indicates the bound spin label) moved with respect to M(2B) residue Asp-222R1 and M(2C3) residue Val-331R1 but not with respect to M(2C1) residue Met-311R1. Based on distances determined between spin-labeled residues of double-labeled variants of KtrB in the presence and absence of K(+) ions, structural models of the open and closed conformations were developed.


Assuntos
Proteínas de Bactérias/química , Proteínas de Bactérias/metabolismo , Proteínas de Transporte de Cátions/química , Proteínas de Transporte de Cátions/metabolismo , Membrana Celular/metabolismo , Potássio/metabolismo , Subunidades Proteicas/química , Subunidades Proteicas/metabolismo , Substituição de Aminoácidos , Proteínas de Bactérias/genética , Transporte Biológico , Proteínas de Transporte de Cátions/genética , Polaridade Celular , Cisteína , Espectroscopia de Ressonância de Spin Eletrônica , Variação Genética , Modelos Moleculares , Movimento , Conformação Proteica , Subunidades Proteicas/genética , Marcadores de Spin
17.
Nat Commun ; 12(1): 5098, 2021 08 24.
Artigo em Inglês | MEDLINE | ID: mdl-34429416

RESUMO

KdpFABC, a high-affinity K+ pump, combines the ion channel KdpA and the P-type ATPase KdpB to secure survival at K+ limitation. Here, we apply a combination of cryo-EM, biochemical assays, and MD simulations to illuminate the mechanisms underlying transport and the coupling to ATP hydrolysis. We show that ions are transported via an intersubunit tunnel through KdpA and KdpB. At the subunit interface, the tunnel is constricted by a phenylalanine, which, by polarized cation-π stacking, controls K+ entry into the canonical substrate binding site (CBS) of KdpB. Within the CBS, ATPase coupling is mediated by the charge distribution between an aspartate and a lysine. Interestingly, individual elements of the ion translocation mechanism of KdpFABC identified here are conserved among a wide variety of P-type ATPases from different families. This leads us to the hypothesis that KdpB might represent an early descendant of a common ancestor of cation pumps.


Assuntos
Adenosina Trifosfatases/química , Adenosina Trifosfatases/metabolismo , Proteínas de Transporte de Cátions/química , Proteínas de Transporte de Cátions/metabolismo , Transporte de Íons/fisiologia , Ácido Aspártico/metabolismo , Sítios de Ligação , Proteínas de Transporte de Cátions/genética , Microscopia Crioeletrônica , Escherichia coli/metabolismo , Proteínas de Escherichia coli/química , Proteínas de Escherichia coli/genética , Proteínas de Escherichia coli/metabolismo , Lisina/metabolismo , Simulação de Dinâmica Molecular , Mutação , Fenilalanina , Potássio/metabolismo , Subunidades Proteicas , ATPase Trocadora de Sódio-Potássio
18.
J Mol Biol ; 433(16): 166968, 2021 08 06.
Artigo em Inglês | MEDLINE | ID: mdl-33798529

RESUMO

Potassium ion homeostasis is essential for bacterial survival, playing roles in osmoregulation, pH homeostasis, regulation of protein synthesis, enzyme activation, membrane potential adjustment and electrical signaling. To accomplish such diverse physiological tasks, it is not surprising that a single bacterium typically encodes several potassium uptake and release systems. To understand the role each individual protein fulfills and how these proteins work in concert, it is important to identify the molecular details of their function. One needs to understand whether the systems transport ions actively or passively, and what mechanisms or ligands lead to the activation or inactivation of individual systems. Combining mechanistic information with knowledge about the physiology under different stress situations, such as osmostress, pH stress or nutrient limitation, one can identify the task of each system and deduce how they are coordinated with each other. By reviewing the general principles of bacterial membrane physiology and describing the molecular architecture and function of several bacterial K+-transporting systems, we aim to provide a framework for microbiologists studying bacterial potassium homeostasis and the many K+-translocating systems that are still poorly understood.


Assuntos
Bactérias/metabolismo , Fenômenos Fisiológicos Bacterianos , Homeostase , Potássio/metabolismo , Transporte Biológico , Transporte de Íons , Potenciais da Membrana , Potássio/química , Canais de Potássio/química , Canais de Potássio/metabolismo , Relação Estrutura-Atividade
19.
Methods Mol Biol ; 2127: 93-103, 2020.
Artigo em Inglês | MEDLINE | ID: mdl-32112317

RESUMO

When purifying a membrane protein, finding a detergent for solubilization is one of the first steps to master. Ideally, only little time is invested to identify the best-suited detergent, which on the one hand would solubilize large amounts of the target protein but on the other hand would sustain the protein's activity. Here we describe the solubilization screen and subsequent activity assay we have optimized for the bacterial P-type ATPase KdpFABC. In just 2 days, more than 70 detergents were tested for their solubilization potential. Afterwards, a smaller selection of the successful detergents was assayed for their ability to retain the activity of the membrane protein complex.


Assuntos
Fracionamento Químico/métodos , Detergentes/química , Proteínas de Membrana/química , Proteínas de Membrana/isolamento & purificação , Controle de Qualidade , Adenosina Trifosfatases/química , Adenosina Trifosfatases/isolamento & purificação , Adenosina Trifosfatases/metabolismo , Proteínas de Transporte de Cátions/química , Proteínas de Transporte de Cátions/isolamento & purificação , Proteínas de Transporte de Cátions/metabolismo , Detergentes/farmacologia , Ativação Enzimática/efeitos dos fármacos , Ensaios Enzimáticos/métodos , Ensaios Enzimáticos/normas , Estabilidade Enzimática/efeitos dos fármacos , Escherichia coli/química , Escherichia coli/enzimologia , Escherichia coli/genética , Escherichia coli/metabolismo , Proteínas de Escherichia coli/química , Proteínas de Escherichia coli/isolamento & purificação , Proteínas de Escherichia coli/metabolismo , Proteínas de Membrana/metabolismo , Proteínas de Membrana Transportadoras/química , Proteínas de Membrana Transportadoras/isolamento & purificação , Proteínas de Membrana Transportadoras/metabolismo , Subunidades Proteicas , Solubilidade/efeitos dos fármacos , Tensoativos/química , Tensoativos/farmacologia
20.
Nat Commun ; 11(1): 756, 2020 02 06.
Artigo em Inglês | MEDLINE | ID: mdl-32029718

RESUMO

Cells maintain membrane fluidity by regulating lipid saturation, but the molecular mechanisms of this homeoviscous adaptation remain poorly understood. We have reconstituted the core machinery for regulating lipid saturation in baker's yeast to study its molecular mechanism. By combining molecular dynamics simulations with experiments, we uncover a remarkable sensitivity of the transcriptional regulator Mga2 to the abundance, position, and configuration of double bonds in lipid acyl chains, and provide insights into the molecular rules of membrane adaptation. Our data challenge the prevailing hypothesis that membrane fluidity serves as the measured variable for regulating lipid saturation. Rather, we show that Mga2 senses the molecular lipid-packing density in a defined region of the membrane. Our findings suggest that membrane property sensors have evolved remarkable sensitivities to highly specific aspects of membrane structure and dynamics, thus paving the way toward the development of genetically encoded reporters for such properties in the future.


Assuntos
Lipídeos de Membrana/metabolismo , Proteínas de Membrana/metabolismo , Proteínas de Saccharomyces cerevisiae/metabolismo , Fatores de Transcrição/metabolismo , Substituição de Aminoácidos , Técnicas Biossensoriais/métodos , Transferência Ressonante de Energia de Fluorescência , Fluidez de Membrana , Lipídeos de Membrana/química , Proteínas de Membrana/química , Proteínas de Membrana/genética , Modelos Biológicos , Simulação de Dinâmica Molecular , Mutagênese Sítio-Dirigida , Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/química , Proteínas de Saccharomyces cerevisiae/genética , Fatores de Transcrição/química , Fatores de Transcrição/genética
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