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1.
Cell ; 187(4): 931-944.e12, 2024 Feb 15.
Artigo em Inglês | MEDLINE | ID: mdl-38320549

RESUMO

Differentiation is crucial for multicellularity. However, it is inherently susceptible to mutant cells that fail to differentiate. These mutants outcompete normal cells by excessive self-renewal. It remains unclear what mechanisms can resist such mutant expansion. Here, we demonstrate a solution by engineering a synthetic differentiation circuit in Escherichia coli that selects against these mutants via a biphasic fitness strategy. The circuit provides tunable production of synthetic analogs of stem, progenitor, and differentiated cells. It resists mutations by coupling differentiation to the production of an essential enzyme, thereby disadvantaging non-differentiating mutants. The circuit selected for and maintained a positive differentiation rate in long-term evolution. Surprisingly, this rate remained constant across vast changes in growth conditions. We found that transit-amplifying cells (fast-growing progenitors) underlie this environmental robustness. Our results provide insight into the stability of differentiation and demonstrate a powerful method for engineering evolutionarily stable multicellular consortia.


Assuntos
Escherichia coli , Biologia Sintética , Diferenciação Celular , Escherichia coli/citologia , Escherichia coli/genética , Integrases/metabolismo , Biologia Sintética/métodos , Aptidão Genética , Farmacorresistência Bacteriana
2.
Annu Rev Biochem ; 90: 1-29, 2021 06 20.
Artigo em Inglês | MEDLINE | ID: mdl-33472005

RESUMO

Bacterial cytoplasmic membrane vesicles provide a unique experimental system for studying active transport. Vesicles are prepared by lysis of osmotically sensitized cells (i.e., protoplasts or spheroplasts) and comprise osmotically intact, unit-membrane-bound sacs that are approximately 0.5-1.0 µm in diameter and devoid of internal structure. Their metabolic activities are restricted to those provided by the enzymes of the membrane itself, and each vesicle is functional. The energy source for accumulation of a particular substrate can be determined by studying which compounds or experimental conditions drive solute accumulation, and metabolic conversion of the transported substrate or the energy source is minimal. These properties of the vesicle system constitute a considerable advantage over intact cells, as the system provides clear definition of the reactions involved in the transport process. This discussion is not intended as a general review but is concerned with respiration-dependent active transport in membrane vesicles from Escherichia coli. Emphasis is placed on experimental observations demonstrating that respiratory energy is converted primarily into work in the form of a solute concentration gradient that is driven by a proton electrochemical gradient, as postulated by the chemiosmotic theory of Peter Mitchell.


Assuntos
Vesículas Citoplasmáticas/metabolismo , Escherichia coli/metabolismo , Biologia Molecular/história , Transporte Biológico , Carbonil Cianeto m-Clorofenil Hidrazona/farmacologia , Membrana Celular/efeitos dos fármacos , Escherichia coli/citologia , Escherichia coli/efeitos dos fármacos , Escherichia coli/genética , História do Século XX , História do Século XXI , Humanos , Ácido Láctico/metabolismo , Masculino , Estados Unidos
3.
Cell ; 172(6): 1294-1305, 2018 03 08.
Artigo em Inglês | MEDLINE | ID: mdl-29522748

RESUMO

Cell shape matters across the kingdoms of life, and cells have the remarkable capacity to define and maintain specific shapes and sizes. But how are the shapes of micron-sized cells determined from the coordinated activities of nanometer-sized proteins? Here, we review general principles that have surfaced through the study of rod-shaped bacterial growth. Imaging approaches have revealed that polymers of the actin homolog MreB play a central role. MreB both senses and changes cell shape, thereby generating a self-organizing feedback system for shape maintenance. At the molecular level, structural and computational studies indicate that MreB filaments exhibit tunable mechanical properties that explain their preference for certain geometries and orientations along the cylindrical cell body. We illustrate the regulatory landscape of rod-shape formation and the connectivity between cell shape, cell growth, and other aspects of cell physiology. These discoveries provide a framework for future investigations into the architecture and construction of microbes.


Assuntos
Membrana Celular/genética , Parede Celular/genética , Proteínas de Escherichia coli/genética , Escherichia coli/genética , Membrana Celular/metabolismo , Parede Celular/metabolismo , Escherichia coli/citologia , Escherichia coli/crescimento & desenvolvimento , Proteínas de Escherichia coli/química , Proteínas de Escherichia coli/metabolismo , Modelos Moleculares , Mutação , Conformação Proteica
4.
Cell ; 171(5): 1125-1137.e11, 2017 Nov 16.
Artigo em Inglês | MEDLINE | ID: mdl-29107333

RESUMO

Human cytotoxic lymphocytes kill intracellular microbes. The cytotoxic granule granzyme proteases released by cytotoxic lymphocytes trigger oxidative bacterial death by disrupting electron transport, generating superoxide anion and inactivating bacterial oxidative defenses. However, they also cause non-oxidative cell death because anaerobic bacteria are also killed. Here, we use differential proteomics to identify granzyme B substrates in three unrelated bacteria: Escherichia coli, Listeria monocytogenes, and Mycobacteria tuberculosis. Granzyme B cleaves a highly conserved set of proteins in all three bacteria, which function in vital biosynthetic and metabolic pathways that are critical for bacterial survival under diverse environmental conditions. Key proteins required for protein synthesis, folding, and degradation are also substrates, including multiple aminoacyl tRNA synthetases, ribosomal proteins, protein chaperones, and the Clp system. Because killer cells use a multipronged strategy to target vital pathways, bacteria may not easily become resistant to killer cell attack.


Assuntos
Escherichia coli/citologia , Granzimas/metabolismo , Células Matadoras Naturais/enzimologia , Listeria monocytogenes/citologia , Mycobacterium tuberculosis/citologia , Linfócitos T Citotóxicos/enzimologia , Aminoacil-tRNA Sintetases/metabolismo , Animais , Escherichia coli/metabolismo , Humanos , Células Matadoras Naturais/imunologia , Listeria monocytogenes/metabolismo , Redes e Vias Metabólicas , Camundongos , Mycobacterium tuberculosis/metabolismo , Biossíntese de Proteínas , Proteômica , Ribossomos/metabolismo , Linfócitos T Citotóxicos/imunologia
5.
Cell ; 161(5): 988-997, 2015 May 21.
Artigo em Inglês | MEDLINE | ID: mdl-26000479

RESUMO

In the wild, bacteria are predominantly associated with surfaces as opposed to existing as free-swimming, isolated organisms. They are thus subject to surface-specific mechanics, including hydrodynamic forces, adhesive forces, the rheology of their surroundings, and transport rules that define their encounters with nutrients and signaling molecules. Here, we highlight the effects of mechanics on bacterial behaviors on surfaces at multiple length scales, from single bacteria to the development of multicellular bacterial communities such as biofilms.


Assuntos
Escherichia coli/fisiologia , Pseudomonas aeruginosa/fisiologia , Aderência Bacteriana , Biofilmes , Transporte Biológico , Fenômenos Biomecânicos , Escherichia coli/citologia , Locomoção , Pseudomonas aeruginosa/citologia
6.
Cell ; 159(6): 1433-46, 2014 Dec 04.
Artigo em Inglês | MEDLINE | ID: mdl-25480302

RESUMO

Cell size control is an intrinsic feature of the cell cycle. In bacteria, cell growth and division are thought to be coupled through a cell size threshold. Here, we provide direct experimental evidence disproving the critical size paradigm. Instead, we show through single-cell microscopy and modeling that the evolutionarily distant bacteria Escherichia coli and Caulobacter crescentus achieve cell size homeostasis by growing, on average, the same amount between divisions, irrespective of cell length at birth. This simple mechanism provides a remarkably robust cell size control without the need of being precise, abating size deviations exponentially within a few generations. This size homeostasis mechanism is broadly applicable for symmetric and asymmetric divisions, as well as for different growth rates. Furthermore, our data suggest that constant size extension is implemented at or close to division. Altogether, our findings provide fundamentally distinct governing principles for cell size and cell-cycle control in bacteria.


Assuntos
Caulobacter crescentus/citologia , Caulobacter crescentus/fisiologia , Escherichia coli/citologia , Escherichia coli/fisiologia , Caulobacter crescentus/crescimento & desenvolvimento , Ciclo Celular , Escherichia coli/crescimento & desenvolvimento , Homeostase
7.
Cell ; 157(2): 285-288, 2014 Apr 10.
Artigo em Inglês | MEDLINE | ID: mdl-24725397

RESUMO

The early decades of Cell witnessed key discoveries that coalesced into the field of chaperones, protein folding, and protein quality control.


Assuntos
Chaperonas Moleculares/metabolismo , Dobramento de Proteína , Proteínas/metabolismo , Animais , Escherichia coli/citologia , Escherichia coli/metabolismo , Leveduras/citologia , Leveduras/metabolismo
8.
Cell ; 156(1-2): 183-94, 2014 Jan 16.
Artigo em Inglês | MEDLINE | ID: mdl-24361104

RESUMO

The physical nature of the bacterial cytoplasm is poorly understood even though it determines cytoplasmic dynamics and hence cellular physiology and behavior. Through single-particle tracking of protein filaments, plasmids, storage granules, and foreign particles of different sizes, we find that the bacterial cytoplasm displays properties that are characteristic of glass-forming liquids and changes from liquid-like to solid-like in a component size-dependent fashion. As a result, the motion of cytoplasmic components becomes disproportionally constrained with increasing size. Remarkably, cellular metabolism fluidizes the cytoplasm, allowing larger components to escape their local environment and explore larger regions of the cytoplasm. Consequently, cytoplasmic fluidity and dynamics dramatically change as cells shift between metabolically active and dormant states in response to fluctuating environments. Our findings provide insight into bacterial dormancy and have broad implications to our understanding of bacterial physiology, as the glassy behavior of the cytoplasm impacts all intracellular processes involving large components.


Assuntos
Caulobacter crescentus/citologia , Caulobacter crescentus/metabolismo , Escherichia coli/citologia , Fenômenos Biofísicos , Caulobacter crescentus/química , Cromossomos Bacterianos/metabolismo , Citoplasma/química , Escherichia coli/química , Escherichia coli/metabolismo , Plasmídeos/metabolismo
9.
Cell ; 159(7): 1652-64, 2014 Dec 18.
Artigo em Inglês | MEDLINE | ID: mdl-25525882

RESUMO

The cell envelope protects bacteria from their surroundings. Defects in its integrity or assembly are sensed by signal transduction systems, allowing cells to rapidly adjust. The Rcs phosphorelay responds to outer membrane (OM)- and peptidoglycan-related stress in enterobacteria. We elucidated how the OM lipoprotein RcsF, the upstream Rcs component, senses envelope stress and activates the signaling cascade. RcsF interacts with BamA, the major component of the ß-barrel assembly machinery. In growing cells, BamA continuously funnels RcsF through the ß-barrel OmpA, displaying RcsF on the cell surface. This process spatially separates RcsF from the downstream Rcs component, which we show is the inner membrane protein IgaA. The Rcs system is activated when BamA fails to bind RcsF and funnel it to OmpA. Newly synthesized RcsF then remains periplasmic, interacting with IgaA to activate the cascade. Thus RcsF senses envelope damage by monitoring the activity of the Bam machinery.


Assuntos
Membrana Celular/metabolismo , Parede Celular/metabolismo , Escherichia coli/citologia , Escherichia coli/metabolismo , Transdução de Sinais , Sequência de Aminoácidos , Proteínas da Membrana Bacteriana Externa/química , Proteínas da Membrana Bacteriana Externa/metabolismo , Membrana Celular/química , Parede Celular/química , Escherichia coli/química , Proteínas de Escherichia coli/metabolismo , Proteínas de Membrana/metabolismo , Dados de Sequência Molecular , Estrutura Terciária de Proteína , Alinhamento de Sequência
10.
Cell ; 159(6): 1300-11, 2014 Dec 04.
Artigo em Inglês | MEDLINE | ID: mdl-25480295

RESUMO

Penicillin and related beta-lactams comprise one of our oldest and most widely used antibiotic therapies. These drugs have long been known to target enzymes called penicillin-binding proteins (PBPs) that build the bacterial cell wall. Investigating the downstream consequences of target inhibition and how they contribute to the lethal action of these important drugs, we demonstrate that beta-lactams do more than just inhibit the PBPs as is commonly believed. Rather, they induce a toxic malfunctioning of their target biosynthetic machinery involving a futile cycle of cell wall synthesis and degradation, thereby depleting cellular resources and bolstering their killing activity. Characterization of this mode of action additionally revealed a quality control function for enzymes that cleave bonds in the cell wall matrix. The results thus provide insight into the mechanism of cell wall assembly and suggest how best to interfere with the process for future antibiotic development.


Assuntos
Andinocilina/farmacologia , Antibacterianos/farmacologia , Escherichia coli/efeitos dos fármacos , beta-Lactamas/farmacologia , Parede Celular/efeitos dos fármacos , Parede Celular/enzimologia , Escherichia coli/citologia , Escherichia coli/enzimologia , Glicosídeo Hidrolases/antagonistas & inibidores , Proteínas de Ligação às Penicilinas/metabolismo , Peptidoglicano/metabolismo
11.
Nature ; 623(7988): 814-819, 2023 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-37938784

RESUMO

Gram-negative bacteria are surrounded by two membranes. A special feature of the outer membrane is its asymmetry. It contains lipopolysaccharide (LPS) in the outer leaflet and phospholipids in the inner leaflet1-3. The proper assembly of LPS in the outer membrane is required for cell viability and provides Gram-negative bacteria intrinsic resistance to many classes of antibiotics. LPS biosynthesis is completed in the inner membrane, so the LPS must be extracted, moved across the aqueous periplasm that separates the two membranes and translocated through the outer membrane where it assembles on the cell surface4. LPS transport and assembly requires seven conserved and essential LPS transport components5 (LptA-G). This system has been proposed to form a continuous protein bridge that provides a path for LPS to reach the cell surface6,7, but this model has not been validated in living cells. Here, using single-molecule tracking, we show that Lpt protein dynamics are consistent with the bridge model. Half of the inner membrane Lpt proteins exist in a bridge state, and bridges persist for 5-10 s, showing that their organization is highly dynamic. LPS facilitates Lpt bridge formation, suggesting a mechanism by which the production of LPS can be directly coupled to its transport. Finally, the bridge decay kinetics suggest that there may be two different types of bridges, whose stability differs according to the presence (long-lived) or absence (short-lived) of LPS. Together, our data support a model in which LPS is both a substrate and a structural component of dynamic Lpt bridges that promote outer membrane assembly.


Assuntos
Membrana Externa Bacteriana , Proteínas de Transporte , Bactérias Gram-Negativas , Lipopolissacarídeos , Proteínas de Membrana , Membrana Externa Bacteriana/química , Membrana Externa Bacteriana/metabolismo , Proteínas da Membrana Bacteriana Externa/química , Proteínas da Membrana Bacteriana Externa/metabolismo , Transporte Biológico , Proteínas de Transporte/química , Proteínas de Transporte/metabolismo , Escherichia coli/química , Escherichia coli/citologia , Escherichia coli/metabolismo , Proteínas de Escherichia coli/química , Proteínas de Escherichia coli/metabolismo , Bactérias Gram-Negativas/química , Bactérias Gram-Negativas/citologia , Bactérias Gram-Negativas/metabolismo , Lipopolissacarídeos/química , Lipopolissacarídeos/metabolismo , Proteínas de Membrana/química , Proteínas de Membrana/metabolismo
12.
Cell ; 153(4): 882-95, 2013 May 09.
Artigo em Inglês | MEDLINE | ID: mdl-23623305

RESUMO

Visualization of living E. coli nucleoids, defined by HupA-mCherry, reveals a discrete, dynamic helical ellipsoid. Three basic features emerge. (1) Nucleoid density coalesces into longitudinal bundles, giving a stiff, low-DNA-density ellipsoid. (2) This ellipsoid is radially confined within the cell cylinder. Radial confinement gives helical shape and directs global nucleoid dynamics, including sister segregation. (3) Longitudinal density waves flux back and forth along the nucleoid, with 5%-10% of density shifting within 5 s, enhancing internal nucleoid mobility. Furthermore, sisters separate end-to-end in sequential discontinuous pulses, each elongating the nucleoid by 5%-15%. Pulses occur at 20 min intervals, at defined cell-cycle times. This progression includes sequential installation and release of programmed tethers, implying cyclic accumulation and relief of intranucleoid mechanical stress. These effects could comprise a chromosome-based cell-cycle engine. Overall, the presented results suggest a general conceptual framework for bacterial nucleoid morphogenesis and dynamics.


Assuntos
Cromossomos Bacterianos , Escherichia coli/citologia , Escherichia coli/genética , Fenômenos Biomecânicos , Ciclo Celular , Replicação do DNA , DNA Bacteriano/fisiologia , Escherichia coli/fisiologia , Termodinâmica
13.
Cell ; 155(6): 1270-81, 2013 Dec 05.
Artigo em Inglês | MEDLINE | ID: mdl-24315097

RESUMO

Enzymatic cleavage of transmembrane anchors to release proteins from the membrane controls diverse signaling pathways and is implicated in more than a dozen diseases. How catalysis works within the viscous, water-excluding, two-dimensional membrane is unknown. We developed an inducible reconstitution system to interrogate rhomboid proteolysis quantitatively within the membrane in real time. Remarkably, rhomboid proteases displayed no physiological affinity for substrates (K(d) ~190 µM/0.1 mol%). Instead, ~10,000-fold differences in proteolytic efficiency with substrate mutants and diverse rhomboid proteases were reflected in k(cat) values alone. Analysis of gate-open mutant and solvent isotope effects revealed that substrate gating, not hydrolysis, is rate limiting. Ultimately, a single proteolytic event within the membrane normally takes minutes. Rhomboid intramembrane proteolysis is thus a slow, kinetically controlled reaction not driven by transmembrane protein-protein affinity. These properties are unlike those of other studied proteases or membrane proteins but are strikingly reminiscent of one subset of DNA-repair enzymes, raising important mechanistic and drug-design implications.


Assuntos
Membrana Celular/metabolismo , Endopeptidases/metabolismo , Escherichia coli/citologia , Escherichia coli/metabolismo , Proteólise , Sequência de Aminoácidos , Bactérias/enzimologia , Membrana Celular/química , Membrana Celular/enzimologia , Proteínas de Ligação a DNA/química , Proteínas de Ligação a DNA/metabolismo , Endopeptidases/química , Escherichia coli/enzimologia , Proteínas de Escherichia coli/química , Proteínas de Escherichia coli/metabolismo , Cinética , Lipossomos/química , Lipossomos/metabolismo , Proteínas de Membrana/química , Proteínas de Membrana/metabolismo , Modelos Moleculares , Dados de Sequência Molecular , Alinhamento de Sequência
14.
Nature ; 609(7929): 1029-1037, 2022 09.
Artigo em Inglês | MEDLINE | ID: mdl-36104562

RESUMO

Advancing the spontaneous bottom-up construction of artificial cells with high organizational complexity and diverse functionality remains an unresolved issue at the interface between living and non-living matter1-4. Here, to address this challenge, we developed a living material assembly process based on the capture and on-site processing of spatially segregated bacterial colonies within individual coacervate microdroplets for the endogenous construction of membrane-bounded, molecularly crowded, and compositionally, structurally and morphologically complex synthetic cells. The bacteriogenic protocells inherit diverse biological components, exhibit multifunctional cytomimetic properties and can be endogenously remodelled to include a spatially partitioned DNA-histone nucleus-like condensate, membranized water vacuoles and a three-dimensional network of F-actin proto-cytoskeletal filaments. The ensemble is biochemically energized by ATP production derived from implanted live Escherichia coli cells to produce a cellular bionic system with amoeba-like external morphology and integrated life-like properties. Our results demonstrate a bacteriogenic strategy for the bottom-up construction of functional protoliving microdevices and provide opportunities for the fabrication of new synthetic cell modules and augmented living/synthetic cell constructs with potential applications in engineered synthetic biology and biotechnology.


Assuntos
Células Artificiais , Escherichia coli , Viabilidade Microbiana , Biologia Sintética , Citoesqueleto de Actina/química , Actinas/química , Trifosfato de Adenosina/metabolismo , Células Artificiais/química , Biotecnologia , Escherichia coli/citologia , Histonas/química , Vacúolos/química , Água/química
15.
Nature ; 606(7916): 953-959, 2022 06.
Artigo em Inglês | MEDLINE | ID: mdl-35705811

RESUMO

Linkages between the outer membrane of Gram-negative bacteria and the peptidoglycan layer are crucial for the maintenance of cellular integrity and enable survival in challenging environments1-5. The function of the outer membrane is dependent on outer membrane proteins (OMPs), which are inserted into the membrane by the ß-barrel assembly machine6,7 (BAM). Growing Escherichia coli cells segregate old OMPs towards the poles by a process known as binary partitioning, the basis of which is unknown8. Here we demonstrate that peptidoglycan underpins the spatiotemporal organization of OMPs. Mature, tetrapeptide-rich peptidoglycan binds to BAM components and suppresses OMP foldase activity. Nascent peptidoglycan, which is enriched in pentapeptides and concentrated at septa9, associates with BAM poorly and has little effect on its activity, leading to preferential insertion of OMPs at division sites. The synchronization of OMP biogenesis with cell wall growth results in the binary partitioning of OMPs as cells divide. Our study reveals that Gram-negative bacteria coordinate the assembly of two major cell envelope layers by rendering OMP biogenesis responsive to peptidoglycan maturation, a potential vulnerability that could be exploited in future antibiotic design.


Assuntos
Proteínas da Membrana Bacteriana Externa , Membrana Celular , Escherichia coli , Peptidoglicano , Proteínas da Membrana Bacteriana Externa/química , Proteínas da Membrana Bacteriana Externa/metabolismo , Membrana Celular/química , Membrana Celular/metabolismo , Parede Celular/metabolismo , Escherichia coli/química , Escherichia coli/citologia , Escherichia coli/crescimento & desenvolvimento , Escherichia coli/metabolismo , Proteínas de Escherichia coli/química , Proteínas de Escherichia coli/metabolismo , Peptidoglicano/biossíntese , Peptidoglicano/metabolismo , Dobramento de Proteína
16.
Nature ; 590(7844): 80-84, 2021 02.
Artigo em Inglês | MEDLINE | ID: mdl-33536650

RESUMO

Active matter consists of units that generate mechanical work by consuming energy1. Examples include living systems (such as assemblies of bacteria2-5 and biological tissues6,7), biopolymers driven by molecular motors8-11 and suspensions of synthetic self-propelled particles12-14. A central goal is to understand and control the self-organization of active assemblies in space and time. Most active systems exhibit either spatial order mediated by interactions that coordinate the spatial structure and the motion of active agents12,14,15 or the temporal synchronization of individual oscillatory dynamics2. The simultaneous control of spatial and temporal organization is more challenging and generally requires complex interactions, such as reaction-diffusion hierarchies16 or genetically engineered cellular circuits2. Here we report a simple technique to simultaneously control the spatial and temporal self-organization of bacterial active matter. We confine dense active suspensions of Escherichia coli cells and manipulate a single macroscopic parameter-namely, the viscoelasticity of the suspending fluid- through the addition of purified genomic DNA. This reveals self-driven spatial and temporal organization in the form of a millimetre-scale rotating vortex with periodically oscillating global chirality of tunable frequency, reminiscent of a torsional pendulum. By combining experiments with an active-matter model, we explain this behaviour in terms of the interplay between active forcing and viscoelastic stress relaxation. Our findings provide insight into the influence of bacterial motile behaviour in complex fluids, which may be of interest in health- and ecology-related research, and demonstrate experimentally that rheological properties can be harnessed to control active-matter flows17,18. We envisage that our millimetre-scale, tunable, self-oscillating bacterial vortex may be coupled to actuation systems to act a 'clock generator' capable of providing timing signals for rhythmic locomotion of soft robots and for programmed microfluidic pumping19, for example, by triggering the action of a shift register in soft-robotic logic devices20.


Assuntos
Escherichia coli/fisiologia , Reologia , Análise Espaço-Temporal , Substâncias Viscoelásticas/química , Substâncias Viscoelásticas/metabolismo , DNA Bacteriano/análise , DNA Bacteriano/química , Difusão , Escherichia coli/citologia , Escherichia coli/isolamento & purificação , Microfluídica , Peso Molecular , Movimento , Robótica , Suspensões
17.
Nature ; 600(7888): 290-294, 2021 12.
Artigo em Inglês | MEDLINE | ID: mdl-34789881

RESUMO

Stress responses allow cells to adapt to changes in external conditions by activating specific pathways1. Here we investigate the dynamics of single cells that were subjected to acute stress that is too strong for a regulated response but not lethal. We show that when the growth of bacteria is arrested by acute transient exposure to strong inhibitors, the statistics of their regrowth dynamics can be predicted by a model for the cellular network that ignores most of the details of the underlying molecular interactions. We observed that the same stress, applied either abruptly or gradually, can lead to totally different recovery dynamics. By measuring the regrowth dynamics after stress exposure on thousands of cells, we show that the model can predict the outcome of antibiotic persistence measurements. Our results may account for the ubiquitous antibiotic persistence phenotype2, as well as for the difficulty in attempts to link it to specific genes3. More generally, our approach suggests that two different cellular states can be observed under stress: a regulated state, which prepares cells for fast recovery, and a disrupted cellular state due to acute stress, with slow and heterogeneous recovery dynamics. The disrupted state may be described by general properties of large random networks rather than by specific pathway activation. Better understanding of the disrupted state could shed new light on the survival and evolution of cells under stress.


Assuntos
Antibacterianos/farmacologia , Escherichia coli/efeitos dos fármacos , Escherichia coli/crescimento & desenvolvimento , Viabilidade Microbiana/efeitos dos fármacos , Estresse Fisiológico/fisiologia , Escherichia coli/citologia , Privação de Alimentos , Análise de Célula Única , Fatores de Tempo
18.
Nature ; 593(7857): 125-129, 2021 05.
Artigo em Inglês | MEDLINE | ID: mdl-33854236

RESUMO

Antibiotics that target Gram-negative bacteria in new ways are needed to resolve the antimicrobial resistance crisis1-3. Gram-negative bacteria are protected by an additional outer membrane, rendering proteins on the cell surface attractive drug targets4,5. The natural compound darobactin targets the bacterial insertase BamA6-the central unit of the essential BAM complex, which facilitates the folding and insertion of outer membrane proteins7-13. BamA lacks a typical catalytic centre, and it is not obvious how a small molecule such as darobactin might inhibit its function. Here we resolve the mode of action of darobactin at the atomic level using a combination of cryo-electron microscopy, X-ray crystallography, native mass spectrometry, in vivo experiments and molecular dynamics simulations. Two cyclizations pre-organize the darobactin peptide in a rigid ß-strand conformation. This creates a mimic of the recognition signal of native substrates with a superior ability to bind to the lateral gate of BamA. Upon binding, darobactin replaces a lipid molecule from the lateral gate to use the membrane environment as an extended binding pocket. Because the interaction between darobactin and BamA is largely mediated by backbone contacts, it is particularly robust against potential resistance mutations. Our results identify the lateral gate as a functional hotspot in BamA and will allow the rational design of antibiotics that target this bacterial Achilles heel.


Assuntos
Antibacterianos/química , Antibacterianos/farmacologia , Proteínas da Membrana Bacteriana Externa/antagonistas & inibidores , Proteínas de Escherichia coli/antagonistas & inibidores , Escherichia coli/efeitos dos fármacos , Escherichia coli/enzimologia , Fenilpropionatos/química , Fenilpropionatos/farmacologia , Proteínas da Membrana Bacteriana Externa/química , Proteínas da Membrana Bacteriana Externa/metabolismo , Sítios de Ligação , Microscopia Crioeletrônica , Cristalografia por Raios X , Desenho de Fármacos , Escherichia coli/citologia , Proteínas de Escherichia coli/química , Proteínas de Escherichia coli/metabolismo , Espectrometria de Massas , Simulação de Dinâmica Molecular , Estrutura Secundária de Proteína
19.
Cell ; 146(3): 396-407, 2011 Aug 05.
Artigo em Inglês | MEDLINE | ID: mdl-21816275

RESUMO

In E. coli, MinD recruits MinE to the membrane, leading to a coupled oscillation required for spatial regulation of the cytokinetic Z ring. How these proteins interact, however, is not clear because the MinD-binding regions of MinE are sequestered within a six-stranded ß sheet and masked by N-terminal helices. minE mutations that restore interaction between some MinD and MinE mutants were isolated. These mutations alter the MinE structure leading to release of the MinD-binding regions and the N-terminal helices that bind the membrane. Crystallization of MinD-MinE complexes revealed a four-stranded ß sheet MinE dimer with the released ß strands (MinD-binding regions) converted to α helices bound to MinD dimers. These results identify the MinD-dependent conformational changes in MinE that convert it from a latent to an active form and lead to a model of how MinE persists at the MinD-membrane surface.


Assuntos
Adenosina Trifosfatases/química , Proteínas de Ciclo Celular/química , Proteínas de Escherichia coli/química , Escherichia coli/citologia , Escherichia coli/metabolismo , Adenosina Trifosfatases/genética , Adenosina Trifosfatases/metabolismo , Proteínas de Bactérias/metabolismo , Sequência de Bases , Proteínas de Ciclo Celular/genética , Proteínas de Ciclo Celular/metabolismo , Cristalografia por Raios X , Citocinese , Proteínas de Escherichia coli/genética , Proteínas de Escherichia coli/metabolismo , Bactérias Gram-Negativas/metabolismo , Modelos Biológicos , Modelos Moleculares , Dados de Sequência Molecular , Mutagênese Sítio-Dirigida , Estrutura Secundária de Proteína , Alinhamento de Sequência
20.
Cell ; 147(6): 1295-308, 2011 Dec 09.
Artigo em Inglês | MEDLINE | ID: mdl-22153074

RESUMO

As nascent polypeptides exit ribosomes, they are engaged by a series of processing, targeting, and folding factors. Here, we present a selective ribosome profiling strategy that enables global monitoring of when these factors engage polypeptides in the complex cellular environment. Studies of the Escherichia coli chaperone trigger factor (TF) reveal that, though TF can interact with many polypeptides, ß-barrel outer-membrane proteins are the most prominent substrates. Loss of TF leads to broad outer-membrane defects and premature, cotranslational protein translocation. Whereas in vitro studies suggested that TF is prebound to ribosomes waiting for polypeptides to emerge from the exit channel, we find that in vivo TF engages ribosomes only after ~100 amino acids are translated. Moreover, excess TF interferes with cotranslational removal of the N-terminal formyl methionine. Our studies support a triaging model in which proper protein biogenesis relies on the fine-tuned, sequential engagement of processing, targeting, and folding factors.


Assuntos
Proteínas de Escherichia coli/metabolismo , Escherichia coli/metabolismo , Peptidilprolil Isomerase/metabolismo , Ribossomos/metabolismo , Citoplasma/química , Escherichia coli/citologia , Proteínas de Membrana/química , Proteínas de Membrana/metabolismo , Chaperonas Moleculares/metabolismo , Dados de Sequência Molecular , Biossíntese de Proteínas , Transporte Proteico
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