In the human commensal Gram-positive bacterial pathogen Streptococcus pneumoniae, the essential extracellular cell-division-associated peptidoglycan (PG) hydrolase PcsB interacts directly with the cytoplasmic-membrane-bound complex between FtsE and FtsX (1-3). PcsB contains a cysteine, hishdine-dependent amidohydrolase/pephdase (CHAP) domain responsible for PG hydrolysis, as well as a coiled-coil domain required for interaction with FtsEX (1,4). ATP hydrolysis of FtsE in the cytoplasm drives conformational changes in FtsX in the cytoplasmic membrane, which ultimately regulates the PG hydrolase on the outside of the cell (5). In this work we show using in vitro and in vivo approaches, that the CHAP domain of PcsB predominately functions as an iso -D-Glutaminyl-Lysyl D,L-endopeptidase, with particular substrate specificity for Lys-containing, amidated PG, cleaving between the second and third amino acids of the peptidoglycan stem peptide. The catalytic activity of PcsB is regulated and activated by conformation changes of the coiled-coil region of PcsB and in part by a short helical region immediately adjacent to the CHAP domain to guard against PcsB hydrolytic activation outside of its cell division specific functional requirement. This work supports a model for the overall biological activity of the FtsEX-PcsB complex, in which ATP hydrolysis by FtsE in the cytoplasm, drives conformational changes in FtsX and PcsB resulting in the liberation of the hydrolytic CHAP domain of PcsB from its regulatory helix to allow PG stem peptide cleavage that splits the septal disk and marks a region of the peptidoglycan sacculus for subsequent cell division remodelling. Significance Statement:Bacterial cell division requires coordinated assembly of specific proteins acting on the cell envelope to induce division. The cell division complex FtsEX is recruited early in divisome assembly and controls extracellular hydrolase function, which modifies the peptidoglycan layer. We demonstrate in Streptococcus pneumoniae , where these proteins are essential, connections between ATP hydrolysis in cytosolic FtsE, mechanotransduction through FtsX in the membrane, activation of PcsB in the intracellular space and molecular details of the chemical modification of the peptidoglycan layer. Here we present a model whereby the FtsEX-PcsB complex is assembled early in order to produce a hydrolase-modified form of peptidoglycan during septal splitting, marking the site of later division events; thus providing a rationale for its biological and temporal function. Classification:‒ Major - Biological Sciences‒ Minor - Biochemistry.
Bacterial cell division relies on precise peptidoglycan (PG) remodelling, a process orchestrated by the FtsEX complex. Comprised of FtsE and FtsX, this complex collaborates with EnvC, a periplasmic lytic enzyme activator, to regulate septal PG hydrolysis by amidases like AmiB. While recent structural investigations, particularly of Pseudomonas aeruginosa FtsEX ( Pae FtsEX), have shed light on complex interactions and proposed activation mechanisms, the structural intricacies governing PG degradation by the FtsEX complex and EnvC in Escherichia coli cytokinesis remain unexplored. In this study, we present a comprehensive biochemical and structural analysis of E. coli FtsEX complexes, unveiling a key role for ATP in complex stabilization that extends across bacterial species. Upon EnvC binding, ATPase activity markedly increases. High-resolution structures of Eco FtsEX, both in the presence and absence of EnvC, reveal a symmetrical conformation of Eco FtsEX capable of accommodating the inherent asymmetry of EnvC, mediated by flexible loops within the periplasmic domain. Our negative-staining imaging showcases an elongated Eco FtsEX/EnvC/AmiB complex reminiscent of the Pae FtsEX system. These findings collectively provide intricate insights into the regulation of PG cleavage by FtsEX in E. coli - a pivotal model system used in pilot genetic studies, suggesting a conserved mechanism for precise hydrolase activation in bacteria.
Penicillin binding proteins (PBPs) are well validated antimicrobial targets, but the prevalence of β-lactamase driven resistance and, more rarely, target-based mutations, necessitates new classes of PBP-targeting drugs. Here we describe the discovery and optimisation of bicyclic peptide (Bicycle®) inhibitors of E. coli PBP3 (EcPBP3) using a proprietary phage display platform, and their conjugation to linear antimicrobial peptides to confer outer membrane permeation. These molecules exhibited high-affinity binding to E. coli PBP3 and a viable spectrum of killing activity against clinically relevant species of the Enterobacterales. X-ray crystallography was used to explore the mode of binding to PBP3, enabling increased target affinity and improvement of in vitro stability. These compounds bind to the transpeptidase active site cleft of PBP3 and represent, to our knowledge, a novel non-β-lactam chemical class of high affinity, non-covalent penicillin binding protein inhibitors. This work demonstrates an approach to rapidly find binders to antimicrobial targets, combined with an entry mechanism to provide access to the Gram negative cell.
The use of membrane-specific dyes for in vivo fluorescent microscopy is commonplace. However, most of these reagents are non-specific and cannot track specific lipid species movement, instead often acting as non-covalent lipid associated probes or requiring uptake of whole lipids and acyl tails into the membrane. This issue has been solved in eukaryotic cell biology by use of click-chemistry liable phospholipid headgroup pulse-labels. Here we describe a method for in vivo phospholipid labelling by fluorescent imaging in Pseudomonas aeruginosa using a phosphatidylcholine (PC) mimic, “propargyl-choline”(PCho). This click-chemistry liable headgroup mimic is visible by microscopy and allows the covalent labelling of lipids. Fluorescence of the cell membranes, visible in heterogenous patches, is dependent on PCho concentration and is localised in the membrane fraction of cells, demonstrating that it is suitable for membrane labelling and cell imaging.
Class A PBPs (aPBPs) play a key role in the biosynthesis and remodeling of peptidoglycan, the main component of the bacterial cell wall. The human bacterial pathogen Streptococcus pneumoniae produces three aPBPs, which are regulated to maintain the bacterium ovoid shape. Although their exact functions remain unclear, evidence suggests that PBP1a and PBP2a activities are closely coordinated. In this study, we elucidated the function of an unknown function protein named GarP (GpsB-associated regulator of PBP1a), in the regulation of PBP1a activity. We showed that GarP localizes to the division septum and its absence leads to morphological defects. We further identified a GpsB-binding motif in GarP as well as in PBP2a, the PG deacetylase PgdA and the muramidase MpgA. Our analysis of genetic and protein interactions, combined with cell imaging, supports a model of a molecular complex that coordinates PG remodeling during S. pneumoniae cell division. ### Competing Interest Statement The authors have declared no competing interest.
ABSTRACTAcinetobacter baumanniiis a Gram-negative opportunistic pathogen that is a common cause of nosocomial infections. The increasing development of antibiotic resistance in this organism is a global health concern. TheA. baumanniiclinical isolate AB307-0294 produces a type VI secretion system (T6SS) that delivers three antibacterial cargo effector proteins (Tse15, Tde16 and Tae17) that give this strain a competitive advantage against other bacteria in polymicrobial environments. These effectors are delivered via specific non-covalent interactions with the T6SS needle tip proteins VgrG15, VgrG16 and VgrG17, respectively. Here we determine the molecular function of the Tae17 effector protein and define the regions of Tae17 and VgrG17 essential for its delivery. Specifically, we show that Tae17 is a multidomain, bifunctional peptidoglycan-degrading enzyme. Tae17 has both lytic transglycosylase activity, which targets the peptidoglycan sugar backbone, and amidase activity, which targets the sugar-peptide bonds. Moreover, we show that the transglycosylase activity was more important for killingEscherichia coli. Using deletion constructs and bacterial two-hybrid analyses, we identify that amino acids 1051-1085 of the VgrG17 needle tip protein and amino acids 1-162 of the Tae17 effector protein are necessary for the Tae17:VgrG17 interaction. Furthermore, we identify the VgrG17 amino acids G1069 and W1075 as crucial for the delivery of Tae17; the first time such specific delivery determinants of T6SS cargo effectors have been defined. This study provides molecular insight into how the T6SS allowsA. baumanniistrains to gain dominance in polymicrobial communities and thus improve their chances of survival and transmission.IMPORTANCEWe have shown that theAcinetobacter baumanniiT6SS effector Tae17 is a modular, bifunctional, peptidoglycan-degrading enzyme that has both lytic transglycosylase and amidase activity. Both activities contribute to the ability to degrade peptidoglycan, but the glycosyltransferase activity was more important for the interbacterial killing ofEscherichia coli. We have defined the specific regions of Tae17 and its cognate delivery protein VgrG17 that are necessary for the non-covalent interactions and, for the first time, identified specific amino acids essential for delivery. This work contributes to our molecular understanding of bacterial competition strategies in polymicrobial environments and may provide a window to the design of new therapeutic approaches for combating infection byA. baumannii.
ABSTRACT Acinetobacter baumannii is a Gram-negative opportunistic pathogen and is a common cause of nosocomial infections. The increasing development of antibiotic resistance in this organism is a global health concern. The A. baumannii clinical isolate AB307-0294 produces a type VI secretion system (T6SS) that delivers three antibacterial effector proteins that give this strain a competitive advantage against other bacteria in polymicrobial environments. Each effector, Tse15, Tde16, and Tae17, is delivered via a non-covalent interaction with a specific T6SS VgrG protein (VgrG15, VgrG16, and VgrG17, respectively). Here we define the regions of interaction between Tae17 and its cognate delivery protein VgrG17 and identify that amino acids G1069 and W1075 in VgrG17 are essential for Tae17 delivery via the T6SS, the first time such specific delivery determinants of T6SS cargo effectors have been defined. Furthermore, we determine that the Tae17 effector is a multidomain, bifunctional, peptidoglycan-degrading enzyme that has both amidase activity, which targets the sugar-peptide bonds, and lytic transglycosylase activity, which targets the peptidoglycan sugar backbone. Moreover, we show that the Tae17 transglycosylase activity is more important than amidase activity for the killing of Escherichia coli . This study provides molecular insight into how the T6SS allows A. baumannii strains to gain dominance in polymicrobial communities and thus improve their chances of survival and transmission. IMPORTANCE We have shown that the Acinetobacter baumannii T6SS effector Tae17 is a modular, bifunctional, peptidoglycan-degrading enzyme that has both lytic transglycosylase and amidase activities. Both activities contribute to the ability to degrade peptidoglycan, but the transglycosylase activity was more important for the killing of Escherichia coli . We have defined the specific regions of Tae17 and its cognate delivery protein VgrG17 that are necessary for the non-covalent interactions and, for the first time, identified specific amino acids essential for T6SS cargo effector delivery. This work contributes to our molecular understanding of bacterial competition strategies in polymicrobial environments and may provide a window to design new therapeutic approaches for combating infection by A. baumannii .
AbstractBacterial cell division relies on precise peptidoglycan (PG) remodelling, a process orchestrated by the FtsEX complex. Comprised of FtsE and FtsX, this complex collaborates with EnvC, a periplasmic lytic enzyme activator, to regulate septal PG hydrolysis by amidases like AmiB. While recent structural investigations, particularly ofPseudomonas aeruginosaFtsEX (PaeFtsEX), have shed light on complex interactions and proposed activation mechanisms, the structural intricacies governing PG degradation by the FtsEX complex and EnvC inEscherichia colicytokinesis remain unexplored. In this study, we present a comprehensive biochemical and structural analysis ofE. coliFtsEX complexes, unveiling a key role for ATP in complex stabilization that extends across bacterial species. Upon EnvC binding, ATPase activity markedly increases. High-resolution structures ofEcoFtsEX, both in the presence and absence of EnvC, reveal a symmetrical conformation ofEcoFtsEX capable of accommodating the inherent asymmetry of EnvC, mediated by flexible loops within the periplasmic domain. Our negative-staining imaging showcases an elongatedEcoFtsEX/EnvC/AmiB complex reminiscent of thePaeFtsEX system. These findings collectively provide intricate insights into the regulation of PG cleavage by FtsEX inE. coli- a pivotal model system used in pilot genetic studies, suggesting a conserved mechanism for precise hydrolase activation in bacteria.
AmiA and AmiB are peptidoglycan-hydrolyzing enzymes from Escherichia coli that are required to break the peptidoglycan layer during bacterial cell division and maintain integrity of the cell envelope. In vivo, the activity of AmiA and AmiB is tightly controlled through their interactions with the membrane-bound FtsEX-EnvC complex. Activation of AmiA and AmiB requires access to a groove in the amidase-activating LytM domain of EnvC which is gated by ATP-driven conformational changes in FtsEX-EnvC complex. Here, we present a high-resolution structure of the isolated AmiA protein, confirming that it is autoinhibited in the same manner as AmiB and AmiC, and a complex of the AmiB enzymatic domain bound to the activating EnvC LytM domain. In isolation, the active site of AmiA is blocked by an autoinhibitory helix that binds directly to the catalytic zinc and fills the volume expected to accommodate peptidoglycan binding. In the complex, binding of the EnvC LytM domain induces a conformational change that displaces the amidase autoinhibitory helix and reorganizes the active site for activity. Our structures, together with complementary mutagenesis work, defines the conformational changes required to activate AmiA and/or AmiB through their interaction with their cognate activator EnvC.
Peptidoglycan (PG) is an essential structural component of the bacterial cell wall that is synthetized during cell division and elongation. PG forms an extracellular polymer crucial for cellular viability, the synthesis of which is the target of many antibiotics. PG assembly requires a glycosyltransferase (GT) to generate a glycan polymer using a Lipid II substrate, which is then crosslinked to the existing PG via a transpeptidase (TP) reaction. A Shape, Elongation, Division and Sporulation (SEDS) GT enzyme and a Class B Penicillin Binding Protein (PBP) form the core of the multi-protein complex required for PG assembly. Here we used single particle cryo-electron microscopy to determine the structure of a cell elongation-specific E. coli RodA-PBP2 complex. We combine this information with biochemical, genetic, spectroscopic, and computational analyses to identify the Lipid II binding sites and propose a mechanism for Lipid II polymerization. Our data suggest a hypothesis for the movement of the glycan strand from the Lipid II polymerization site of RodA towards the TP site of PBP2, functionally linking these two central enzymatic activities required for cell wall peptidoglycan biosynthesis.
Lipopolysaccharide (LPS) O-antigens and the Peptidoglycan (PG) cell wall are core components of the cell envelope of Gram-negative bacteria. The assembly of both polysaccharides requires glycosyltransferases (GT) to generate the glycan polymer. In both cases this requires a homologous TM-embedded GT enzyme, with PG biosynthesis catalysed by RodA, a member of the Shape, Elongation, Division and Sporulation (SEDS) GT family, and the final stage of O-antigen maturation of LPS being controlled by WaaL. Structures of both C. metallidurans WaaL and E. coli RodA have been solved by using single particle cryo-electron microscopy, the latter in complex with the transpeptidase PBP2. We have used molecular modelling and dynamics simulations to understand how both enzymes engage with their substrates. In doing so we have identified key residues involved in their coordination and catalysis. For RodA, we identify two binding sites for Lipid II and propose a mechanism for Lipid II polymerization into peptidoglycan. We also identify two equivalent sites in WaaL for the binding of undecaprenyl-linked O-antigen and LPS. The active sites for both enzymes sit on the periplasmic face of the transmembrane bundle, with the lipidic substrates anchored within the cell membrane to allow catalysis to proceed. As part of this study we compare and contrast the two critical enzymes.
Acinetobacter baumannii is a gram-negative bacterial pathogen that causes challenging nosocomial infections. β-lactam targeting of penicillin-binding protein (PBP)–mediated cell wall peptidoglycan (PG) formation is a well-established antimicrobial strategy. Exposure to carbapenems or zinc (Zn)-deprived growth conditions leads to a rod-to-sphere morphological transition in A. baumannii , an effect resembling that caused by deficiency in the RodA–PBP2 PG synthesis complex required for cell wall elongation. While it is recognized that carbapenems preferentially acylate PBP2 in A. baumannii and therefore block the transpeptidase function of the RodA–PBP2 system, the molecular details underpinning cell wall elongation inhibition upon Zn starvation remain undefined. Here, we report the X-ray crystal structure of A. baumannii PBP2, revealing an unexpected Zn coordination site in the transpeptidase domain required for protein stability. Mutations in the Zn-binding site of PBP2 cause a loss of bacterial rod shape and increase susceptibility to β-lactams, therefore providing a direct rationale for cell wall shape maintenance and Zn homeostasis in A. baumannii . Furthermore, the Zn-coordinating residues are conserved in various β- and γ-proteobacterial PBP2 orthologs, consistent with a widespread Zn-binding requirement for function that has been previously unknown. Due to the emergence of resistance to virtually all marketed antibiotic classes, alternative or complementary antimicrobial strategies need to be explored. These findings offer a perspective for dual inhibition of Zn-dependent PG synthases and metallo-β-lactamases by metal chelating agents, considered the most sought-after adjuvants to restore β-lactam potency against gram-negative bacteria.
EMPIAR, the Electron Microscopy Public Image Archive centered at EMBL-EBI, is a public resource for raw electron microscopy images related to EMDB, contains micrographs, particle sets and tilt-series.
An accumulation of evidence suggests that peptidoglycan, consistent with a bacterial cell wall, is synthesised around the chloroplasts of many photosynthetic eukaryotes, from glaucophyte algae to land plants at least as evolved as pteridophyte ferns, but the biosynthetic pathway has not been demonstrated. We employed mass spectrometry and enzymology in a twofold approach to characterize the synthesis of peptidoglycan in chloroplasts of the moss Physcomitrium (Physcomitrella) patens . To drive the accumulation of peptidoglycan pathway intermediates, P.patens was cultured with the antibiotics phosphomycin, D-cycloserine and carbenicillin, which inhibit key peptidoglycan pathway proteins in bacteria. Mass spectrometry of the TCA-extracted moss metabolome revealed elevated levels of five of the predicted intermediates from UDP-Glc N Ac through to the UDP-Mur N Ac-D,L-diaminopimelate (DAP)-pentapeptide. Most Gram negative bacteria, including cyanobacteria, incorporate meso -diaminopimelate (D,L-DAP) into the third residue of the stem peptide of peptidoglycan, as opposed to L-lysine, typical of most Gram positive bacteria. To establish the specificity of D,L-DAP incorporation into the P.patens precursors, we analysed the recombinant protein, UDP-Mur N Ac-tripeptide ligase ( MurE ), from both P.patens and the cyanobacterium Anabaena sp. strain PCC 7120. Both ligases incorporated D,L-DAP in almost complete preference to L-Lys, consistent with the mass spectrophotometric data, with catalytic efficiencies similar to previously documented Gram negative bacterial MurE ligases. We discuss how these data accord with the conservation of active site residues common to DL-DAP-incorporating bacterial MurE ligases and of the probability of a horizontal gene transfer event within the plant peptidoglycan pathway.
Background: Peptidoglycan (PG) is a key structural component of the bacterial cell wall and interruption of its biosynthesis is a validated target for antimicrobials. Of the enzymes involved in PG biosynthesis, D-alanyl,D-alanine ligase B (DdlB) is responsible for the condensation of two alanines, forming D-Ala-D-Ala, which is required for subsequent extracellular transpeptidase crosslinking of the mature peptidoglycan polymer. Objective: We aimed at the biophysical characterization of recombinant Escherichia coli DdlB (EcDdlB), considering parameters of melting temperature (T-m), calorimetry and Van't Hoff enthalpy changes of denaturation (Delta H-cal(U) and Delta H-vH(U)), as well as characterization of elements of secondary structure at three different pHs. Methods: DdlB was overexpressed in E. coli BL21 and purified by affinity chromatography. Thermal stability and structural characteristics of the purified enzyme were analyzed by circular dichroism (CD), differential scanning calorimetry and fluorescence spectroscopy. Results: The stability of EcDdlB increased with proximity to its pI of 5.0, reaching the maximum at pH 5.4 with T-m and Delta H-cal(U) of 52.68 oC and 484 kJ.mol(-1), respectively. Deconvolutions of the CD spectra at 20 oC showed a majority percentage of alpha-helix at pH 5.4 and 9.4, whereas for pH 7.4, an equal contribution of beta-structures and alpha-helices was calculated. Thermal denaturation process of EcDdlB proved to be irreversible with an increase in beta-structures that can contribute to the formation of protein aggregates. Conclusion: Such results will be useful for energy minimization of structural models aimed at virtual screening simulations, providing useful information in the search for drugs that inhibit peptidoglycan synthesis.
Escherichia coli is one of the most common Gram-negative pathogens and is responsible for infection leading to neonatal meningitis and sepsis. The FtsZ protein is a bacterial tubulin homolog required for cell division in most species, including E. coli. Several agents that block cell division have been shown to mislocalise FtsZ, including the bacteriophage λ-encoded Kil peptide, resulting in defective cell division and a filamentous phenotype, making FtsZ an attractive target for antimicrobials. In this study, we have used an in vitro meningitis model system for studying the effect of bacteriophages on FtsZ using fluorescent E. coli EV36/FtsZ-mCherry and K12/FtsZ-mNeon strains. We show localisation of FtsZ to the bacterial cell midbody as a single ring during normal growth conditions, and mislocalisation of FtsZ producing filamentous multi-ringed bacterial cells upon addition of the known inhibitor Kil peptide. We also show that when bacteriophages K1F-GFP and T7-mCherry were applied to their respective host strains, these phages can inhibit FtsZ and block bacterial cell division leading to a filamentous multi-ringed phenotype, potentially delaying lysis and increasing progeny number. This occurs in the exponential growth phase, as actively dividing hosts are needed. We present that ZapA protein is needed for phage inhibition by showing a phenotype recovery with a ZapA mutant strain, and we show that FtsI protein is also mislocalised upon phage infection. Finally, we show that the T7 peptide gp0.4 is responsible for the inhibition of FtsZ in K12 strains by observing a phenotype recovery with a T7Δ0.4 mutant.
Antimicrobial resistance is a growing problem worldwide and has created a need for novel antibacterial agents and strategies. Escherichia coli is one of the most common Gram-negative pathogens and is responsible for infection leading to neonatal meningitis and sepsis. The FtsZ protein is a bacterial tubulin homolog required for cell division in most species, including E. coli. Agents that block cell division have been shown to mis-localise FtsZ, including the bacteriophage λ encoded Kil peptide, resulting in defective cell division and a filamentous phenotype, and therefore FtsZ may be an attractive target for new antimicrobials. In this project, we are interested in studying the localisation of FtsZ in pathogenic E. coli in the presence and absence of human cell cultures, in order to establish how and if this localisation changes upon infection. We are also interested in whether bacteriophages specifically attacking pathogenic E. coli have an effect on the localisation of FtsZ in a human cell environment and want to study the mechanism of this process. We have observed E. coliFtsZ localising to the cell midbody as a ring in both a K12 strain and in the K1 strain EV36 using confocal microscopy. These strains were used to infect human cerebral microvascular endothelial cells (hCMEC/D3) to create a meningitis model. We will present our results showing the effect of the Kil peptide and bacteriophages on this localisation within the model system, in an effort to validate FtsZ as a potential biomarker for antibacterial agents.
The outer membrane of Gram-negative bacteria has an external leaflet that is largely composed of lipopolysaccharide, which provides a selective permeation barrier, particularly against antimicrobials1. The final and crucial step in the biosynthesis of lipopolysaccharide is the addition of a species-dependent O-antigen to the lipid A core oligosaccharide, which is catalysed by the O-antigen ligase WaaL2. Here we present structures of WaaL from Cupriavidus metallidurans, both in the apo state and in complex with its lipid carrier undecaprenyl pyrophosphate, determined by single-particle cryo-electron microscopy. The structures reveal that WaaL comprises 12 transmembrane helices and a predominantly α-helical periplasmic region, which we show contains many of the conserved residues that are required for catalysis. We observe a conserved fold within the GT-C family of glycosyltransferases and hypothesize that they have a common mechanism for shuttling the undecaprenyl-based carrier to and from the active site. The structures, combined with genetic, biochemical, bioinformatics and molecular dynamics simulation experiments, offer molecular details on how the ligands come in apposition, and allows us to propose a mechanistic model for catalysis. Together, our work provides a structural basis for lipopolysaccharide maturation in a member of the GT-C superfamily of glycosyltransferases. Cryo-electron microscopy structures of the bacterial O-antigen ligase WaaL, combined with genetics, biochemistry and molecular dynamics simulations, provide insight into the mechanism by which WaaL catalyses the biosynthesis of lipopolysaccharide.
Cell division in Streptococcus pneumoniae (pneumococcus) is performed and regulated by a protein complex consisting of at least 14 different protein elements; known as the divisome. Recent findings have advanced our understanding of the molecular events surrounding this process and have provided new understanding of the mechanisms that occur during the division of pneumococcus. This review will provide an overview of the key protein complexes and how they are involved in cell division. We will discuss the interaction of proteins in the divisome complex that underpin the control mechanisms for cell division and cell wall synthesis and remodelling that are required in S. pneumoniae, including the involvement of virulence factors and capsular polysaccharides.
Bacteria must maintain the ability to modify and repair the peptidoglycan layer without jeopardising its essential functions in cell shape, cellular integrity and intermolecular interactions. A range of new experimental techniques is bringing an advanced understanding of how bacteria regulate and achieve peptidoglycan synthesis, particularly in respect of the central role played by complexes of Sporulation, Elongation or Division (SEDs) and class B penicillin-binding proteins required for cell division, growth and shape. In this review we highlight relationships implicated by a bioinformatic approach between the outer membrane, cytoskeletal components, periplasmic control proteins, and cell elongation/division proteins to provide further perspective on the interactions of these cell division, growth and shape complexes. We detail the network of protein interactions that assist in the formation of peptidoglycan and highlight the increasingly dynamic and connected set of protein machinery and macrostructures that assist in creating the cell envelope layers in Gram-negative bacteria.