Sign in to use this feature.

Years

Between: -

Subjects

remove_circle_outline
remove_circle_outline
remove_circle_outline
remove_circle_outline
remove_circle_outline
remove_circle_outline
remove_circle_outline

Journals

Article Types

Countries / Regions

Search Results (10)

Search Parameters:
Keywords = cytotoxic necrotizing factor type 1

Order results
Result details
Results per page
Select all
Export citation of selected articles as:
10 pages, 469 KB  
Article
Is Virulence Gene papGII a Predictor of Urosepsis in Uropathogenic E. coli?
by Nihitta Hanna, Suji Thangamani, Rosemol Varghese, Jiji Smila Arockiasamy, Balaji Veeraraghavan and Rani Diana Sahni
Infect. Dis. Rep. 2026, 18(4), 63; https://doi.org/10.3390/idr18040063 - 24 Jun 2026
Viewed by 483
Abstract
Background: Urosepsis is a life-threatening condition accounting for approximately 20–30% of all sepsis cases and typically arises from ascending infection by uropathogenic Escherichia coli (UPEC). Disease progression is mediated by virulence factors, including adhesins, iron acquisition systems, and toxins. Among these, P fimbriae, [...] Read more.
Background: Urosepsis is a life-threatening condition accounting for approximately 20–30% of all sepsis cases and typically arises from ascending infection by uropathogenic Escherichia coli (UPEC). Disease progression is mediated by virulence factors, including adhesins, iron acquisition systems, and toxins. Among these, P fimbriae, particularly papGII adhesin subunit, have been implicated in the transition from uncomplicated urinary tract infection (UTI) to severe urosepsis. This study aimed to evaluate whether papGII carriage, alone or in combination with other UPEC virulence determinants and clinical risk factors, can predict urosepsis. Methods: A total of 60 paired Escherichia coli isolates from concurrent blood and urine samples of adults with clinical sepsis were collected between January and June 2024. Control isolates were obtained from patients with cystitis (n = 28) and pyelonephritis (n = 32). Polymerase chain reaction (PCR) assays were used to detect fifteen virulence-associated genes, including the pap operon (with papG allelic variants), the type 1 fimbriae (fimH), S fimbriae (sfaS), curli fimbriae (csgA), afa/Dr adhesin operon genes, cytotoxic necrotizing factor 1 (cnf1), and the aerobactin biosynthesis (iucD) and receptor (iutA) genes. Associations between gene carriage and clinical groups were analyzed using chi-square tests. Results: The incidence of urosepsis increased with age, peaking in the 60–69-year age group. Renal disease and catheterization were identified as significant risk factors (p < 0.05). More than 95% of UPEC isolates carried the csgA gene associated with biofilm formation and the iucD gene. The α- hemolysin toxin (hlyA) was significantly associated with urosepsis [X2(1, N = 120) = 6.62, p = 0.03]. No significant differences were observed in the carriage of papA, papC, or fimH. Although papGII was present in 65% of urosepsis-associated UPEC isolates, it did not demonstrate a statistically significant independent association with urosepsis [p = 0.1]. Conclusion: This study demonstrates that while papGII may contribute to the pathogenic potential of UPEC and facilitate systemic infection, it is not a reliable independent predictor of urosepsis. Full article
(This article belongs to the Section Bacterial Diseases)
Show Figures

Figure 1

13 pages, 594 KB  
Article
Molecular Markers and Antimicrobial Resistance Patterns of Extraintestinal Pathogenic Escherichia coli from Camel Calves Including Colistin-Resistant and Hypermucoviscuous Strains
by Domonkos Sváb, Zoltán Somogyi, István Tóth, Joseph Marina, Shantymol V. Jose, John Jeeba, Anas Safna, Judit Juhász, Péter Nagy, Ahmed Mohamed Taha Abdelnassir, Ahmed Abdelrhman Ismail and László Makrai
Trop. Med. Infect. Dis. 2024, 9(6), 123; https://doi.org/10.3390/tropicalmed9060123 - 23 May 2024
Cited by 2 | Viewed by 3432
Abstract
Extraintestinal pathogenic Escherichia coli (ExPEC) strains are capable of causing various systemic infections in both humans and animals. In this study, we isolated and characterized 30 E. coli strains from the parenchymatic organs and brains of young (<3 months of age) camel calves [...] Read more.
Extraintestinal pathogenic Escherichia coli (ExPEC) strains are capable of causing various systemic infections in both humans and animals. In this study, we isolated and characterized 30 E. coli strains from the parenchymatic organs and brains of young (<3 months of age) camel calves which died in septicemia. Six of the strains showed hypermucoviscous phenotype. Based on minimum inhibitory concentration (MIC) values, seven of the strains were potentially multidrug resistant, with two additional showing colistin resistance. Four strains showed mixed pathotypes, as they carried characteristic virulence genes for intestinal pathotypes of E. coli: three strains carried cnf1, encoding cytotoxic necrotizing factor type 1, the key virulence gene of necrotoxigenic E. coli (NTEC), and one carried eae encoding intimin, the key virulence gene of enteropathogenic E. coli (EPEC). An investigation of the integration sites of pathogenicity islands (PAIs) and the presence of prophage-related sequences showed that the strains carry diverse arrays of mobile genetic elements, which may contribute to their antimicrobial resistance and virulence patterns. Our work is the first to describe ExPEC strains from camels, and points to their veterinary pathogenic as well as zoonotic potential in this important domestic animal. Full article
(This article belongs to the Special Issue Foodborne Zoonotic Bacterial Infections)
Show Figures

Figure 1

10 pages, 982 KB  
Communication
Cytokine Response of the Biomimetic Porcine Urothelial Model to Different Escherichia coli Strains
by Luka Predojević, Darja Keše, Darja Žgur Bertok, Miša Korva, Mateja Erdani Kreft and Marjanca Starčič Erjavec
Appl. Sci. 2022, 12(17), 8567; https://doi.org/10.3390/app12178567 - 26 Aug 2022
Cited by 1 | Viewed by 2266
Abstract
Escherichia coli is known to be an important uropathogenic agent. Several models were developed for investigating the uropathogensis of E. coli, including the recent biomimetic porcine urothelial in vitro model. The aim of this study was to assess the cytokine response of [...] Read more.
Escherichia coli is known to be an important uropathogenic agent. Several models were developed for investigating the uropathogensis of E. coli, including the recent biomimetic porcine urothelial in vitro model. The aim of this study was to assess the cytokine response of the cells of the biomimetic porcine urothelial model to different E. coli strains. The production of nine different cytokines in response to E. coli infection was evaluated using the commercial pre-configured immunoassay multiplex Cytokine & Chemokine 9-Plex Porcine ProcartaPlex™ Panel 1 kit. Our results showed that cells of the biomimetic porcine urothelial model reacted to the presence of all the employed different E. coli strains, albeit with some differences in levels and types of cytokines produced. Increased production of IL-10, IL-8, TNF-α, IL-1β, IL-4 and IL-12p40 was observed. Statistical analysis (Fisher’s exact test) revealed a correlation between the high fold change in the immune response and the presence of the cnf1 gene that encodes the cytotoxic necrotizing factor. Our results shed light on the cytokine response of normal urothelial cells to different E. coli strains and have the potential to fuel the search for understanding the mechanisms behind the different cytokine responses to different E. coli strains. Full article
(This article belongs to the Section Applied Microbiology)
Show Figures

Figure 1

15 pages, 3351 KB  
Article
Activation of Focal Adhesion Kinase Restores Simulated Microgravity-Induced Inhibition of Osteoblast Differentiation via Wnt/Β-Catenin Pathway
by Cuihong Fan, Zhaojia Wu, David M. L. Cooper, Adam Magnus, Kim Harrison, B. Frank Eames, Rajni Chibbar, Gary Groot, Junqiong Huang, Harald Genth, Jun Zhang, Xing Tan, Yulin Deng and Jim Xiang
Int. J. Mol. Sci. 2022, 23(10), 5593; https://doi.org/10.3390/ijms23105593 - 17 May 2022
Cited by 27 | Viewed by 5132
Abstract
Simulated microgravity (SMG) inhibits osteoblast differentiation (OBD) and induces bone loss via the inhibition of the Wnt/β-catenin pathway. However, the mechanism by which SMG alters the Wnt/β-catenin pathway is unknown. We previously demonstrated that SMG altered the focal adhesion kinase (FAK)-regulated mTORC1, AMPK [...] Read more.
Simulated microgravity (SMG) inhibits osteoblast differentiation (OBD) and induces bone loss via the inhibition of the Wnt/β-catenin pathway. However, the mechanism by which SMG alters the Wnt/β-catenin pathway is unknown. We previously demonstrated that SMG altered the focal adhesion kinase (FAK)-regulated mTORC1, AMPK and ERK1/2 pathways, leading to the inhibition of tumor cell proliferation/metastasis and promoting cell apoptosis. To examine whether FAK similarly mediates SMG-dependent changes to Wnt/β-catenin in osteoblasts, we characterized mouse MC3T3-E1 cells cultured under clinostat-modeled SMG (µg) conditions. Compared to cells cultured under ground (1 g) conditions, SMG reduces focal adhesions, alters cytoskeleton structures, and down-regulates FAK, Wnt/β-catenin and Wnt/β-catenin-regulated molecules. Consequently, protein-2 (BMP2), type-1 collagen (COL1), alkaline-phosphatase activity and matrix mineralization are all inhibited. In the mouse hindlimb unloading (HU) model, SMG-affected tibial trabecular bone loss is significantly reduced, according to histological and micro-computed tomography analyses. Interestingly, the FAK activator, cytotoxic necrotizing factor-1 (CNF1), significantly suppresses all of the SMG-induced alterations in MC3T3-E1 cells and the HU model. Therefore, our data demonstrate the critical role of FAK in the SMG-induced inhibition of OBD and bone loss via the Wnt/β-catenin pathway, offering FAK signaling as a new therapeutic target not only for astronauts at risk of OBD inhibition and bone loss, but also osteoporotic patients. Full article
(This article belongs to the Special Issue Cellular and Molecular Signaling Meet the Space Environment)
Show Figures

Figure 1

31 pages, 1280 KB  
Review
Effects of the Escherichia coli Bacterial Toxin Cytotoxic Necrotizing Factor 1 on Different Human and Animal Cells: A Systematic Review
by Francesca Carlini, Zaira Maroccia, Carla Fiorentini, Sara Travaglione and Alessia Fabbri
Int. J. Mol. Sci. 2021, 22(22), 12610; https://doi.org/10.3390/ijms222212610 - 22 Nov 2021
Cited by 22 | Viewed by 4925
Abstract
Cytotoxic necrotizing factor 1 (CNF1) is a bacterial virulence factor, the target of which is represented by Rho GTPases, small proteins involved in a huge number of crucial cellular processes. CNF1, due to its ability to modulate the activity of Rho GTPases, represents [...] Read more.
Cytotoxic necrotizing factor 1 (CNF1) is a bacterial virulence factor, the target of which is represented by Rho GTPases, small proteins involved in a huge number of crucial cellular processes. CNF1, due to its ability to modulate the activity of Rho GTPases, represents a widely used tool to unravel the role played by these regulatory proteins in different biological processes. In this review, we summarized the data available in the scientific literature concerning the observed in vitro effects induced by CNF1. An article search was performed on electronic bibliographic resources. Screenings were performed of titles, abstracts, and full-texts according to PRISMA guidelines, whereas eligibility criteria were defined for in vitro studies. We identified a total of 299 records by electronic article search and included 76 original peer-reviewed scientific articles reporting morphological or biochemical modifications induced in vitro by soluble CNF1, either recombinant or from pathogenic Escherichia coli extracts highly purified with chromatographic methods. Most of the described CNF1-induced effects on cultured cells are ascribable to the modulating activity of the toxin on Rho GTPases and the consequent effects on actin cytoskeleton organization. All in all, the present review could be a prospectus about the CNF1-induced effects on cultured cells reported so far. Full article
(This article belongs to the Section Molecular Toxicology)
Show Figures

Figure 1

11 pages, 1990 KB  
Communication
CTX-CNF1 Recombinant Protein Selectively Targets Glioma Cells In Vivo
by Eleonora Vannini, Elisabetta Mori, Elena Tantillo, Gudula Schmidt, Matteo Caleo and Mario Costa
Toxins 2021, 13(3), 194; https://doi.org/10.3390/toxins13030194 - 8 Mar 2021
Cited by 22 | Viewed by 4423
Abstract
Current strategies for glioma treatment are only partly effective because of the poor selectivity for tumoral cells. Hence, the necessity to identify novel approaches is urgent. Recent studies highlighted the effectiveness of the bacterial protein cytotoxic necrotizing factor 1 (CNF1) in reducing tumoral [...] Read more.
Current strategies for glioma treatment are only partly effective because of the poor selectivity for tumoral cells. Hence, the necessity to identify novel approaches is urgent. Recent studies highlighted the effectiveness of the bacterial protein cytotoxic necrotizing factor 1 (CNF1) in reducing tumoral mass, increasing survival of glioma-bearing mice and protecting peritumoral neural tissue from dysfunction. However, native CNF1 needs to be delivered into the brain, because of its incapacity to cross the blood–brain barrier (BBB) per se, thus hampering its clinical translation. To allow a non-invasive administration of CNF1, we here developed a chimeric protein (CTX-CNF1) conjugating CNF1 with chlorotoxin (CTX), a peptide already employed in clinics due to its ability of passing the BBB and selectively binding glioma cells. After systemic administration, we found that CTX-CNF1 is able to target glioma cells and significantly prolong survival of glioma-bearing mice. Our data point out the potentiality of CTX-CNF1 as a novel effective tool to treat gliomas. Full article
(This article belongs to the Section Bacterial Toxins)
Show Figures

Figure 1

16 pages, 3813 KB  
Article
The Bacterial Toxin CNF1 Protects Human Neuroblastoma SH-SY5Y Cells against 6-Hydroxydopamine-Induced Cell Damage: The Hypothesis of CNF1-Promoted Autophagy as an Antioxidant Strategy
by Sara Travaglione, Stefano Loizzo, Rosa Vona, Giulia Ballan, Roberto Rivabene, Danila Giordani, Marco Guidotti, Maria Luisa Dupuis, Zaira Maroccia, Monica Baiula, Roberto Rimondini, Gabriele Campana and Carla Fiorentini
Int. J. Mol. Sci. 2020, 21(9), 3390; https://doi.org/10.3390/ijms21093390 - 11 May 2020
Cited by 6 | Viewed by 5130
Abstract
Several chronic neuroinflammatory diseases, including Parkinson’s disease (PD), have the so-called ‘redox imbalance’ in common, a dynamic system modulated by various factors. Among them, alteration of the mitochondrial functionality can cause overproduction of reactive oxygen species (ROS) with the consequent induction of oxidative [...] Read more.
Several chronic neuroinflammatory diseases, including Parkinson’s disease (PD), have the so-called ‘redox imbalance’ in common, a dynamic system modulated by various factors. Among them, alteration of the mitochondrial functionality can cause overproduction of reactive oxygen species (ROS) with the consequent induction of oxidative DNA damage and apoptosis. Considering the failure of clinical trials with drugs that eliminate ROS directly, research currently focuses on approaches that counteract redox imbalance, thus restoring normal physiology in a neuroinflammatory condition. Herein, we used SH-SY5Y cells treated with 6-hydroxydopamine (6-OHDA), a neurotoxin broadly employed to generate experimental models of PD. Cells were pre-treated with the Rho-modulating Escherichia coli cytotoxic necrotizing factor 1 (CNF1), before the addition of 6-OHDA. Then, cell viability, mitochondrial morphology and dynamics, redox profile as well as autophagic markers expression were assessed. We found that CNF1 preserves cell viability and counteracts oxidative stress induced by 6-OHDA. These effects are accompanied by modulation of the mitochondrial network and an increase in macroautophagic markers. Our results confirm the Rho GTPases as suitable pharmacological targets to counteract neuroinflammatory diseases and evidence the potentiality of CNF1, whose beneficial effects on pathological animal models have been already proven to act against oxidative stress through an autophagic strategy. Full article
(This article belongs to the Special Issue Bacterial Protein Toxins: Enemies within or Unexpected Friends 2.0)
Show Figures

Figure 1

14 pages, 2668 KB  
Article
Cnf1 Variants Endowed with the Ability to Cross the Blood–Brain Barrier: A New Potential Therapeutic Strategy for Glioblastoma
by Andrea Colarusso, Zaira Maroccia, Ermenegilda Parrilli, Elena Angela Pia Germinario, Andrea Fortuna, Stefano Loizzo, Laura Ricceri, Maria Luisa Tutino, Carla Fiorentini and Alessia Fabbri
Toxins 2020, 12(5), 291; https://doi.org/10.3390/toxins12050291 - 4 May 2020
Cited by 9 | Viewed by 3768
Abstract
Among gliomas, primary tumors originating from glial cells, glioblastoma (GBM) identified as WHO grade IV glioma, is the most common and aggressive malignant brain tumor. We have previously shown that the Escherichia coli protein toxin cytotoxic necrotizing factor 1 (CNF1) is remarkably effective [...] Read more.
Among gliomas, primary tumors originating from glial cells, glioblastoma (GBM) identified as WHO grade IV glioma, is the most common and aggressive malignant brain tumor. We have previously shown that the Escherichia coli protein toxin cytotoxic necrotizing factor 1 (CNF1) is remarkably effective as an anti-neoplastic agent in a mouse model of glioma, reducing the tumor volume, increasing survival, and maintaining the functional properties of peritumoral neurons. However, being unable to cross the blood–brain barrier (BBB), CNF1 requires injection directly into the brain, which is a very invasive administration route. Thus, to overcome this pitfall, we designed a CNF1 variant characterized by the presence of an N-terminal BBB-crossing tag. The variant was produced and we verified whether its activity was comparable to that of wild-type CNF1 in GBM cells. We investigated the signaling pathways engaged in the cell response to CNF1 variants to provide preliminary data to the subsequent studies in experimental animals. CNF1 may represent a novel avenue for GBM therapy, particularly because, besides blocking tumor growth, it also preserves the healthy surrounding tissue, maintaining its architecture and functionality. This renders CNF1 the most interesting candidate for the treatment of brain tumors, among other potentially effective bacterial toxins. Full article
(This article belongs to the Special Issue Toxins and Cancer Therapy)
Show Figures

Figure 1

10 pages, 1285 KB  
Communication
The Bacterial Protein CNF1 as a Potential Therapeutic Strategy against Mitochondrial Diseases: A Pilot Study
by Alessia Fabbri, Sara Travaglione, Zaira Maroccia, Marco Guidotti, Ciro Leonardo Pierri, Guido Primiano, Serenella Servidei, Stefano Loizzo and Carla Fiorentini
Int. J. Mol. Sci. 2018, 19(7), 1825; https://doi.org/10.3390/ijms19071825 - 21 Jun 2018
Cited by 16 | Viewed by 4096
Abstract
The Escherichia coli protein toxin cytotoxic necrotizing factor 1 (CNF1), which acts on the Rho GTPases that are key regulators of the actin cytoskeleton, is emerging as a potential therapeutic tool against certain neurological diseases characterized by cellular energy homeostasis impairment. In this [...] Read more.
The Escherichia coli protein toxin cytotoxic necrotizing factor 1 (CNF1), which acts on the Rho GTPases that are key regulators of the actin cytoskeleton, is emerging as a potential therapeutic tool against certain neurological diseases characterized by cellular energy homeostasis impairment. In this brief communication, we show explorative results on the toxin’s effect on fibroblasts derived from a patient affected by myoclonic epilepsy with ragged-red fibers (MERRF) that carries a mutation in the m.8344A>G gene of mitochondrial DNA. We found that, in the patient’s cells, besides rescuing the wild-type-like mitochondrial morphology, CNF1 administration is able to trigger a significant increase in cellular content of ATP and of the mitochondrial outer membrane marker Tom20. These results were accompanied by a profound F-actin reorganization in MERRF fibroblasts, which is a typical CNF1-induced effect on cell cytoskeleton. These results point at a possible role of the actin organization in preventing or limiting the cell damage due to mitochondrial impairment and at CNF1 treatment as a possible novel strategy against mitochondrial diseases still without cure. Full article
(This article belongs to the Special Issue Bacterial Protein Toxins: Enemies within or Unexpected Friends)
Show Figures

Figure 1

19 pages, 296 KB  
Review
Different Types of Cell Death Induced by Enterotoxins
by Chiou-Feng Lin, Chia-Ling Chen, Wei-Ching Huang, Yi-Lin Cheng, Chia-Yuan Hsieh, Chi-Yun Wang and Ming-Yuan Hong
Toxins 2010, 2(8), 2158-2176; https://doi.org/10.3390/toxins2082158 - 11 Aug 2010
Cited by 30 | Viewed by 13856
Abstract
The infection of bacterial organisms generally causes cell death to facilitate microbial invasion and immune escape, both of which are involved in the pathogenesis of infectious diseases. In addition to the intercellular infectious processes, pathogen-produced/secreted enterotoxins (mostly exotoxins) are the major weapons that [...] Read more.
The infection of bacterial organisms generally causes cell death to facilitate microbial invasion and immune escape, both of which are involved in the pathogenesis of infectious diseases. In addition to the intercellular infectious processes, pathogen-produced/secreted enterotoxins (mostly exotoxins) are the major weapons that kill host cells and cause diseases by inducing different types of cell death, particularly apoptosis and necrosis. Blocking these enterotoxins with synthetic drugs and vaccines is important for treating patients with infectious diseases. Studies of enterotoxin-induced apoptotic and necrotic mechanisms have helped us to create efficient strategies to use against these well-characterized cytopathic toxins. In this article, we review the induction of the different types of cell death from various bacterial enterotoxins, such as staphylococcal enterotoxin B, staphylococcal alpha-toxin, Panton-Valentine leukocidin, alpha-hemolysin of Escherichia coli, Shiga toxins, cytotoxic necrotizing factor 1, heat-labile enterotoxins, and the cholera toxin, Vibrio cholerae. In addition, necrosis caused by pore-forming toxins, apoptotic signaling through cross-talk pathways involving mitochondrial damage, endoplasmic reticulum stress, and lysosomal injury is discussed. Full article
(This article belongs to the Special Issue Enterotoxins)
Show Figures

Graphical abstract

Back to TopTop