BACKGROUND:Sepsis is a complex life-threatening clinical condition associated with significant morbidity and mortality. It is usually triggered by an infection, the cellular response to which progresses, involving the innate immune system and leading to a cytokine storm that can provoke death. METHODS:The device is based on the peptide SET-M33, an antimicrobial molecule with strong antibacterial activity. The peptide was conjugated with a biocompatible agarose matrix via a covalent sulfonic bridge, then encapsulated in a device to insert in a circulation system. Here we describe a medical device that selectively and simultaneously remove the major triggers of the onset and progression of sepsis from the blood of sepsis patients. These include live bacteria and their components, such as lipopolysaccharides (LPS) and lipoteichoic acids (LTA), as well as C reactive protein (CRP). RESULTS:In a human serum assay, the device removes 85% of LPS, >80% of LTA, >99% of live Gram-positive and Gram-negative bacteria in serum, and >94% of CRP. In ex vivo animal model in which murine blood spiked with known amounts of LPS, the device removes >80% of the endotoxin. After circulation in the device, the serum shows no significant change in protein content, this confirms that the device does not change the molecular profile of the blood. CONCLUSIONS:The instrument here described is a prototype with strong potential for clinical applications.
CD93 is a receptor predominantly expressed on the surface of endothelial cells, where it plays a pivotal role in angiogenesis through its interaction with the extracellular matrix. In our previous studies, we identified the monoclonal antibody 4E1 as a potent inhibitor of angiogenesis by targeting the CD93-Multimerin-2 axis. Here, we report the development of 4E1 as a recombinant whole immunoglobulin and a single-chain variable fragment, designated sc-4E. Both formats retained the binding properties of the parental monoclonal antibody and exhibited comparable inhibitory effects on endothelial cell migration and differentiation. To elucidate the molecular basis of the 4E1-CD93 interaction, we initially employed machine learning-based modeling and docking analyses of the variable heavy and light domains of 4E1. Subsequent crystallographic analysis of sc-4E provided high-resolution structural insights, confirming and validating the predicted model. Further docking experiments and molecular dynamics simulations using the crystallographic structures of CD93 and sc-4E revealed that the interaction is primarily mediated by the CDR-H3 and CDR-L2 loops. Notably, these regions engage with the sushi-like domain of CD93, which is critical for its interaction with Multimerin-2. This comprehensive structural and functional characterization of 4E1 and sc-4E underscores their potential as anti-angiogenic agents. By effectively inhibiting endothelial cell migration and differentiation, 4E1 derivatives represent promising therapeutic candidates for the treatment of ocular vascular diseases driven by pathological angiogenesis.
By virtue of their ability to bind different growth factors, morphogens and extracellular matrix proteins, heparan sulfate proteoglycans (HSPGs) play a determinant role in cancer cell differentiation and migration. Despite a strong conceptual basis and promising preclinical results, clinical trials have failed to demonstrate any significant advantage of administering heparin to oncology patients. We exploited our anti-heparan sulfate branched peptide NT4 to test the opposite approach, namely, targeting HSPGs to interfere with their functions, instead of using heparin as a soluble competitor in human cell lines from pancreas adenocarcinoma, colon adenocarcinoma, rhabdomyosarcoma and two different breast cancers. We found that the anti-heparan sulfate peptide NT4 is more effective than heparin for inhibiting cancer cell adhesion, directional migration, colony formation and even cell growth, suggesting that targeting cell membrane HSPGs may be a more effective anti-metastatic strategy than using soluble heparin. Analysis of NT4 effects on cancer cell directional migration, associated to cellular distribution of HSPGs and cadherins in different migrating cancer cell lines, provided further indications on the molecular basis of HSPG functions, which may explain the efficiency of the HSPG targeting peptide.
ABSTRACT Pseudomonas aeruginosa , a pathogen capable of causing diseases ranging from mild to life-threatening, has a large arsenal of virulence factors. Notably, extracellular vesicles have emerged as significant players in the pathogenesis of this organism. However, the full range of their functions is still being studied, and difficulties related to vesicle purification (long protocols, low yields, and specialized instruments) have become a major obstacle for their characterization. In this context, the utility of rapid new methods of vesicle isolation from clinical strains is still unknown. Here, we analyze the utility of the ExoBacteria OMV isolation kit for a collection of clinical strains of P. aeruginosa . We first phenotypically characterized 15 P . aeruginosa strains to ensure that our samples were heterogeneous. We then determined the best conditions for purifying vesicles from P. aeruginosa PAO1 reference strain by the rapid method and used them to isolate vesicles from clinical strains. Our results indicated that M9 minimal medium is the best for obtaining high purity with the rapid isolation kit. Although we were able to isolate vesicles from at least four strains, the low yield and the large number of strains with unpurifiable vesicles showed that the kit was not practical or convenient for clinical strains. Our findings suggest that although fast procedures for vesicle purification can be of great utility for Escherichia coli , the more complex phenotypes of clinical isolates of P. aeruginosa are a challenge for these protocols and new alternatives/optimizations need to be developed. IMPORTANCE Pseudomonas aeruginosa is recognized as an opportunistic pathogen in humans and animals. It can effectively colonize various environments thanks to a large set of virulence factors that include extracellular vesicles. Different methods were recently developed to reduce the time and effort associated with vesicle purification. However, the utility of rapid vesicle isolation methods for clinical strains of P. aeruginosa (which are recognized as being highly diverse) is not yet known. In this context, we analyzed the utility of the ExoBacteria OMV Isolation kit for vesicle purification in P. aeruginosa clinical strains. Our findings showed that the kit does not seem to be convenient for research on clinical strains due to low vesicle recovery. Our results underscore the importance of developing new rapid vesicle purification protocols/techniques for specific clinical phenotypes.
Abstract A role of heparan sulfate proteoglycans (HSPGs) in cancer cell differentiation, proliferation and migration has been recognized and related to their ability to specifically interact with growth factors, morphogens, and extracellular matrix proteins, mainly through sulfated groups on their glycosaminoglycan (GAG) chains. Due to the considerable diversity of HSPGs and of their GAG chains, and to the lack of specific ligands, a precise molecular characterization of the biological role of HSPGs in cancer cells is still lacking. HSPGs, besides working as coreceptors for growth factors and morphogens, may have a determinant and autonomous role in cancer signaling events, regulating cell adhesion, migration, and invasiveness. Being overexpressed and over sulfated in cancer cells, HSPGs may become attractive tumor targets for cancer diagnosis and therapy. We had used the tetra-branched peptide NT4, which binds sulphated GAG chains of HSPGs, to validate HSPGs as potential tumor associated antigens in different human solid tumors. The same NT4 peptide had been tested as a tumor targeting agent for either cancer cell imaging or therapy, in vitro and in vivo [1]. Once identified the sulfated GAG specificity of NT4, the peptide has also been used as a specific tool for studying the role of HSPGs in cancer cell migration and invasiveness, with the aim of proposing HSPG as potential drug targets for interfering with cancer invasiveness and metastatic potential [2,3]. We found that NT4 inhibits adhesion, oriented migration, and colony formation in different human cancer cell lines. We investigated the role of HSPGs in migration of different human cancer cell lines, displaying either single-cell mesenchymal migration (PANC-1 pancreas adenocarcinoma, and MDA-MB-231 breast adenocarcinoma) or collective migration (MCF-7 breast adenocarcinoma). After assessing the expression of HSPG and of E- and N- cadherin in each cell line, their specific cellular distribution was detected by confocal microscopy in migrating cells, in wound healing experiments. We found that distribution of either E- or N- cadherins on the membrane of migrating cells is complementary to that of HSPG. This is particularly clear in collective migration, where HSPGs are exclusively located on the migration front of leader cells, whereas cadherins are only expressed by follower cells. Our results suggest that HSPG may have a crucial role in defining the front of migrating cells, while cadherin-mediated cell-cell contacts on the opposite site, may contribute to inducing protrusion formation at the front of migrating cells, as already suggested [4]. [1]- Brunetti J et al. Sci. Rep. 2015, 5, 17736; [2]- Brunetti J et al. Sci. Rep. 2016, 6, 27174; [3]- Depau L et al. J Med Chem 2020, 63, 15997; [4]- Grimaldi C et al Nat Commun 2020, 11, 5397 Citation Format: Lorenzo Depau, Jlenia Brunetti, Chiara Falciani, Marta Garfì, Maria Francesca Paolocci, Alessandro Pini, Luisa Bracci. Membrane heparan sulfate proteoglycans work with cadherins to establish the directional orientation of migrating cancer cells [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2024; Part 1 (Regular Abstracts); 2024 Apr 5-10; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2024;84(6_Suppl):Abstract nr 1508.
Abstract INTRODUCTION: Metastasis is the major cause of cancer-related deaths (90%). Intercellular communication between cancer cells and with cells in their environment plays a significant function in tumor progression. In fact, secreted factors like cytokines and extracellular vesicles (EVs) can either halt or stimulate tumorigenesis as well as metastasis. We have previously reported, that the integrin B3 (ITGB3) is required for metastasis of breast cancer cells in vivo (Sese et al. Oncotarget, 2017). We furthermore demonstrated, that EVs mediated colony growth is dependent on ITGB3 and that endocytosis mediated uptake of EVs relies on the interaction of ITGB3 with integrin av (ITGav) and heparan sulphated glycoproteins (HSPGs) (Fuentes et al. Nat. Commun., 2021). OBJECTIVE: The objective of this work is focused on identifying inhibitors targeting the ITGav/B3/HSPGs complex to prevent extracellular vesicle uptake in cancer cells and to test their ability to prevent metastasis. METHODOLOGY. Inhibitors targeting ITGB3/ITGAV or HSPGs were either commercially available or obtained through collaborations and single chain antibodies (scFv) were produced in house. Inhibition of fluorescent labeled EVs was determined by FACS analysis or Incucyte based measurements and the efficacy of inhibitors was determined in a dose dependent manner. Toxicity of inhibitors was studied by crystal violet-based assay in normal and tumor cell lines. Tail vein injection of luciferase labeled MDA-MB-231 cells into nude mice was used as model to study metastatic diseases under treatment with the identified inhibitors. Metastasis formation was monitored by bioluminescence imaging and lungs were examined pathologically at end point. Overall survival was determined. RESULTS: Among the tested Integrin and HSPGs targeting compounds, we identified an integrin-binding antibody, an integrin binding scFv, an RGD-mimetic compound and an HSPGs-binding peptide as inhibitors of EV uptake. Inhibition was validated in a dose dependent manner and toxicity studies did not show adverse effects. Three of those inhibitors, targeting either ITGB3/ITGAV or HSPGs were tested in mice models in vivo and all inhibitors could significantly reduce the formation of metastasis and strongly increase the overall survival. CONCLUSION: We have identified four drug candidates that target the ITGav/B3/HSPGs complex and are able to prevent EV uptake, demonstrating that EV uptake is a druggable process. Even more, the inhibitors tested in vivo could strongly reduce metastasis formation and increase overall survival. This data supports our hypothesis, that targeting EV mediated intercellular communication is a valuable approach to combat cancer metastasis. Citation Format: Elena Muro-Blanc, Rocío Bayona-Ramón y Cajal, Marta Cano-Galietero, Sara García-Ortega, Chiara Falciani, Luisa Bracci, Alberto J. Schuhmacher, Stefan Hümmer, Santiago Ramón y Cajal. Integrin avb3 and HSPG targeting agents prevent extracellular vesicles uptake and breast cancer metastasis [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2024; Part 1 (Regular Abstracts); 2024 Apr 5-10; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2024;84(6_Suppl):Abstract nr 4122.
Antibiotic resistance is a major global health threat, necessitating the development of new treatments and diverse molecules to combat severe infections and preserve the efficacy of existing drugs. Antimicrobial peptides (AMPs) offer a versatile arsenal against bacteria, and peptide structure branching can enhance their resistance to proteases and improve their overall efficacy. A small library of peptides derived from natural host defense peptides and synthesized in a tetrabranched form was selected against E. coli. Six selected branched peptides were further studied for antibacterial activity against a panel of strains, biofilm inhibition, protease resistance, and cytotoxicity. Their structure was predicted computationally and their mechanism of action was investigated by electron microscopy and by using fluorescent dyes. The peptide BAMP2 showed promise in a mouse skin infection model, indicating the potential for local infection treatment.
Immunogenic cell death (ICD) can be exploited to treat non-immunoreactive tumors that do not respond to current standard and innovative therapies. Not all chemotherapeutics trigger ICD, among those that do exert this effect, there are anthracyclines, irinotecan, some platinum derivatives and oncolytic peptides. We studied two new branched oncolytic peptides, BOP7 and BOP9 that proved to elicit the release of damage-associated molecular patterns DAMPS, mediators of ICD, in pancreatic cancer cells. The two BOPs selectively bound and killed tumor cells, particularly PANC-1 and Mia PaCa-2, but not cells of non-tumor origin such as RAW 264.7, CHO-K1 and pgsA-745. The cancer selectivity of the two BOPs may be attributed to their repeated cationic sequences, which enable multivalent binding to heparan sulfate glycosaminoglycans (HSPGs), bearing multiple anionic sulfation patterns on cancer cells. This interaction of BOPs with HSPGs not only fosters an anti-metastatic effect in vitro, as demonstrated by reduced adhesion and migration of PANC-1 cancer cells, but also shows promising tumor-specific cytotoxicity and low hemolytic activity. Remarkably, the cytotoxicity induced by BOPs triggers the release of DAMPs, particularly HMGB1, IFN-β and ATP, by dying cells, persisting longer than the cytotoxicity of conventional chemotherapeutic agents such as irinotecan and daunorubicin. An in vivo assay in nude mice showed an encouraging 20% inhibition of tumor grafting and growth in a pancreatic cancer model by BOP9.
SET-M33 is a synthetic peptide that is being developed as a new antibiotic against major Gram-negative bacteria. Here we report two in vivo studies to assess the toxicity and efficacy of the peptide in a murine model of pulmonary inflammation. First, we present the toxicity study in which SET-M33 was administered to CD-1 mice by snout inhalation exposure for 1 h/day for 7 days at doses of 5 and 20 mg/kg/day. The results showed adverse clinical signs and effects on body weight at the higher dose, as well as some treatment-related histopathology findings (lungs and bronchi, nose/turbinates, larynx and tracheal bifurcation). On this basis, the no observable adverse effect level (NOAEL) was considered to be 5 mg/kg/day. We then report an efficacy study of the peptide in an endotoxin (LPS)-induced pulmonary inflammation model. Intratracheal administration of SET-M33 at 0.5, 2 and 5 mg/kg significantly inhibited BAL neutrophil cell counts after an LPS challenge. A significant reduction in pro-inflammatory cytokines, KC, MIP-1α, IP-10, MCP-1 and TNF-α was also recorded after SET-M33 administration.
Development of inhalable formulations for delivering peptides to the conductive airways and shielding their interactions with airway barriers, thus enhancing peptide/bacteria interactions, is an important part of peptide-based drug development for lung applications. Here, we report the construction of a biocompatible nanosystem where the antimicrobial peptide SET-M33 is encapsulated within polymeric nanoparticles of poly(lactide-co-glycolide) (PLGA) conjugated with polyethylene glycol (PEG). This system was conceived for better delivery of the peptide to the lungs by aerosol. The encapsulated peptide showed prolonged antibacterial activity, due to its controlled release, and much lower toxicity than the free molecule. The peptide-based nanosystem killed Pseudomonas aeruginosa in planktonic and sessile forms in a dose-dependent manner, remaining active up to 72 h after application. The encapsulated peptide showed no cytotoxicity when incubated with human bronchial epithelial cells from healthy individuals and from cystic fibrosis patients, unlike the free peptide, which showed an EC50 of about 22 µM. In vivo acute toxicity studies in experimental animals showed that the peptide nanosystem did not cause any appreciable side effects, and confirmed its ability to mitigate the toxic and lethal effects of free SET-M33.
Given the relevance of heparan sulfate proteoglycans (HSPG) and of heparin binding ligands in the regulation of cancer cell adhesion, migration and invasiveness, drugs that may interfere with HSPG functions have been studied for decades for their possible use in oncology. In this view heparin analogues have been tested for their effectiveness not only in cancer associated thromboembolism but also for their potential effects on cancer growth and metastasis. Despite a number of promising preclinical results and clinical hypothesis, many different clinical trials on the use of heparin analogues in different cancers reported no significant benefits in tumor progression and overall survival, indicating that using heparin as a soluble decoy for the many HSPG ligands does not appear to be the best possible approach (1,2). Taking advantage of the tetra-branched peptide NT4, which is a specific ligand of HSPG sulfated glycosaminoglycan (GAG) chains (3, 4), we tested the effectiveness of targeting cell membrane HSPG, as a potential alternative approach for interfering with HSPG functions in cancer cell invasiveness. We had demonstrated that NT4 can either inhibit or increase oriented migration in respectively PANC-1 pancreas adenocarcinoma and TE671 rhabdomyosarcoma human cancer cells, indicating a crucial but diverse role of HSPGs in oriented cell migration in different cancer cells. NT4 and heparin were here compared for their effect on adhesion and migration of different cancer cell lines on extracellular matrix (ECM) supports, as well as for their effect on proliferation and in vitro invasiveness of the same cell lines. We found that inhibition of cancer cells adhesion to ECM proteins by NT4 varies in different cancer cell lines, ranging from 90% inhibition to as low as 20%, whereas heparin has no effect. Analogous results were obtained when testing cancer cell migration. NT4 inhibited migration and in vitro invasiveness of different human cancer cell lines, with the sole exception of TE671 cells. Heparin did not modify cell migration in any of the tested cancer cell lines. NT4 had no effect on cell proliferation, whereas, notably, heparin resulted to stimulate cell proliferation in some cancer cell lines. Differently from using heparin as an unspecific soluble decoy, targeting HSPG with well-defined ligands can result in an efficient tumor-specific treatment. Nevertheless, as for most cancer cellular targets, a detailed definition of cellular mechanisms and a related personalized approach is mandatory. 1) Schünemann HJ et al. Lancet Haematol. 2020;7(10):e746. 2) Posch F et al. ibid:e703. 3) Brunetti J et al. Sci. Rep. 2016,6,27174. 4) Depau L et al. J Med Chem 2020;63(24):15997. Citation Format: Lorenzo Depau, Elisabetta Mandarini, Jlenia Brunetti, Marta Zanchi, Chiara Falciani, Luisa Bracci. Targeting HSPG is more efficient than using soluble heparin for interfering with cancer cell adhesion and migration [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2023; Part 1 (Regular and Invited Abstracts); 2023 Apr 14-19; Orlando, FL. Philadelphia (PA): AACR; Cancer Res 2023;83(7_Suppl):Abstract nr 6312.
Endodontic and periodontal disease are conditions of infectious origin that can lead to tooth loss or develop into systemic hyperinflammation, which may be associated with a wide variety of diseases, including cardiovascular. Endodontic and periodontal treatment often relies on antibiotics. Since new antimicrobial resistances are a major threat, the use of standard antibiotics is not recommended when the infection is only local. Antimicrobial peptides were recently demonstrated to be valid alternatives for dental treatments. The antimicrobial peptide M33D is a tetrabranched peptide active against Gram-negative and Gram-positive bacteria. It has a long life, unusual for peptides, because its branched form provides resistance to proteases. Here the efficacy of M33D and of its analog M33i/l as antibiotics for local use in dentistry was evaluated. M33D and M33i/l were active against reference strains and multidrug-resistant clinical isolates of Gram-negative and Gram-positive species. Their minimum inhibitory concentration against different strains of dental interest was between 0.4 and 6.0 μM. Both peptides acted rapidly on bacteria, impairing membrane function. They also disrupted biofilm effectively. Disinfection of the root canal is crucial for endodontic treatments. M33D and M33i/l reduced E. faecalis colonies to one-twentieth in a dentin slices model reproducing root canal irrigation. They both captured and neutralized lipopolysaccharide (LPS), a bacterial toxin responsible for inflammation. The release of IL-1β and TNFα by LPS-stimulated murine macrophages was reduced by both peptides. Human cardiac fibroblasts respond to different insults with the release of proinflammatory cytokines, and consequently, they are considered directly involved in atherogenic cardiovascular processes, including those triggered by infections. The presence of M33D and M33i/l at MIC concentration reduced IL6 release from LPS- stimulated human cardiac fibroblasts, hence proving to be promising in preventing bacteria-induced atherogenesis. The two peptides showed low toxicity to mammalian cells, with an EC50 one order of magnitude higher than the average MIC and low hemolytic activity. The development of antimicrobial peptides for dental irrigations and medication is a very promising new field of research that will provide tools to fight dental infections and their severe consequences, while at the same time protecting standard antibiotics from new outbreaks of antimicrobial resistance.
The antimicrobial peptide SET-M33 is under study for the development of a new antibiotic against major Gram-negative pathogens. Here we report the toxicological evaluation of SET-M33 administered intravenously to rats and dogs. Dose range finding experiments determined the doses to use in toxicokinetic evaluation, clinical biochemistry analysis, necroscopy and in neurological and respiratory measurements. Clinical laboratory investigations in dogs and rats showed a dose-related increase in creatinine and urea levels, indicating that the kidneys are the target organ. This was also confirmed by necroscopy studies of animal tissues, where signs of degeneration and regeneration were found in kidney when SET-M33 was administered at the highest doses in the two animal species. Neurological toxicity measurements by the Irwin method and respiratory function evaluation in rats did not reveal any toxic effect even at the highest dose. Finally, repeated administration of SET-M33 by short infusion in dogs revealed a no-observed-adverse-effect-level of 0.5 mg/kg/day.
Emerging and re-emerging viral infections have been an important public health problem in recent years. We focused our attention on Toscana virus (TOSV), an emergent neurotropic negative-strand RNA virus of the Phenuiviridae family. The mechanisms of protection against phlebovirus natural infection are not known; however, it is supposed that a virus-neutralizing antibody response against viral glycoproteins would be useful to block the first stages of infection. By using an improved memory B cell immortalization method, we obtained a panel of human mAbs which reacted with TOSV antigens. We identified three epitopes of TOSV Gn glycoproteins by neutralizing mAbs using synthetic peptide arrays on membrane support (SPOT synthesis). These epitopes, separated in primary structure, might be exposed near one another as a conformational epitope in their native structure. In vivo studies were conducted to evaluate the humoral response elicited in mice immunized with the identified peptides. The results underlined the hypothesis that the first two peptides located in the NH2 terminus could form a conformational epitope, while the third, located near the transmembrane sequence in the carboxyl terminus, was necessary to strengthen neutralizing activity. Our results emphasize the importance of identifying neutralizing epitopes shared among the various phleboviruses, which could be exploited for the development of a potential epitope-based diagnostic assay or a polyvalent protective vaccine against different phleboviruses.
A group of researchers have undertaken a review of 125 international, published, epidemiological studies that relate various physical harms to different levels of alcohol consumption. For this review it was necessary to be able to compare the data from the different studies directly. The different measures of alcohol quoted in the studies were converted to the standard measure of grammes of alcohol. The present paper discusses the problems involved in doing this, and gives details of the conversion methods used.
The development of selective tumor targeting agents to deliver multiple units of chemotherapy drugs to cancer tissue would improve treatment efficacy and greatly advance progress in cancer therapy. Here we report a new drug delivery system based on a tetrabranched peptide known as NT4, which is a promising cancer theranostic by virtue of its high cancer selectivity. We developed NT4 directly conjugated with one, two, or three units of paclitaxel and an NT4-based nanosystem, using NIR-emitting quantum dots, loaded with the NT4 tumor-targeting agent and conjugated with paclitaxel, to obtain a NT4-QD-PTX nanodevice designed to simultaneously detect and kill tumor cells. The selective binding and in vitro cytotoxicity of NT4-QD-PTX were higher than for unlabeled QD-PTX when tested on the human colon adenocarcinoma cell line HT-29. NT4-QD-PTX tumor-targeted nanoparticles can be considered promising for early tumor detection and for the development of effective treatments combining simultaneous therapy and diagnosis.
The peptide SET-M33 is a molecule synthesized in tetra-branched form which is being developed as a new antibiotic against Gram-negative bacteria. Its isomeric form with D amino acids instead of the L version (SET-M33D) is also able to kill Gram-positive bacteria because of its higher resistance to bacterial proteases (Falciani et al., PLoS ONE, 2012, 7, e46259). Here we report the strong in vitro activity of SET-M33D (MIC range 0.7–6.0 µM) against multiresistant pathogens of clinical interest, including Gram-positives Staphylococcus aureus, Staphylococcus saprophyticus, and Enterococcus faecalis, and various Gram-negative enterobacteriaceae. SET-M33D antibacterial activity is also confirmed in vivo against a MRSA strain of S. aureus with doses perfectly compatible with clinical use (5 and 2.5 mg/Kg). Moreover, SET-M33D strongly neutralized lipopolysaccharide (LPS) and lipoteichoic acid (LTA), thus exerting a strong anti-inflammatory effect, reducing expression of cytokines, enzymes, and transcription factors (TNF-α, IL6, COX-2, KC, MIP-1, IP10, iNOS, NF-κB) involved in the onset and evolution of the inflammatory process. These results, along with in vitro and in vivo toxicity data and the low frequency of resistance selection reported here, make SET-M33D a strong candidate for the development of a new broad spectrum antibiotic.
The process of heparan sulfate proteoglycan (HSPG) internalization has been described as following different pathways. The tumor-specific branched NT4 peptide has been demonstrated to bind HSPGs on the plasma membrane and to be internalized in tumor cell lines. The polycationic peptide has been also shown to impair migration of different cancer cell lines in 2D and 3D models. Our hypothesis was that HSPG endocytosis could affect two important phenomena of cancer development: cell migration and nourishment. Using NT4 as an experimental tool mimicking heparin-binding ligands, we studied endocytosis and trafficking of HSPGs in a triple-negative human breast cancer cell line, MDA-MB-231. The peptide entered cells employing caveolin- or clathrin-dependent endocytosis and macropinocytosis, in line with what is already known about HSPGs. NT4 then localized in early and late endosomes in a time-dependent manner. The peptide had a negative effect on CDC42-activation triggered by EGF. The effect can be explained if we consider NT4 a competitive inhibitor of EGF on HS that impairs the co-receptor activity of the proteoglycan, reducing EGFR activation. Reduction of the invasive migratory phenotype of MDA-MB-231 induced by NT4 can be ascribed to this effect. RhoA activation was damped by EGF in MDA-MB-231. Indeed, EGF reduced RhoA-GTP and NT4 did not interfere with this receptor-mediated signaling. On the other hand, the peptide alone determined a small but solid reduction in active RhoA in breast cancer cells. This result supports the observation of few other studies, showing direct activation of the GTPase through HSPG, not mediated by EGF/EGFR.
Summary Cell migration is a force-dependent adaptive process mediated by integrin-dependent adhesion as well as other yet poorly defined interactions to the extracellular matrix. Using enzymatic multi-targeted digestion of sugar moieties on the surface of mesenchymal cells and leukocytes after interference with integrin function, we demonstrate that the surface glycocalyx represents an independent adhesion system. The glycocalyx mediates cell attachment to ECM ligand in the 100-500 pN force range and amoeboid migration in 3D environments in vitro and in vivo . Glycan-based adhesions consist of actin-rich membrane deformations and appositions associated with bleb-like and other protrusions forming complex-shaped sub-micron contact sites to ECM fibrils. These data implicate the glycocalyx in mediating generic stickiness to support nanoscale interactions (nanogrips) between the cell surface and ECM, mechano-coupling, and migration.