TY - JOUR A1 - Adaku Chilaka, Cynthia A1 - Mally, Angela T1 - Mycotoxin Occurrence, Exposure and Health Implications in Infants and Young Children in Sub-Saharan Africa: A Review JF - Foods N2 - Infants and young children (IYC) remain the most vulnerable population group to environmental hazards worldwide, especially in economically developing regions such as sub-Saharan Africa (SSA). As a result, several governmental and non-governmental institutions including health, environmental and food safety networks and researchers have been proactive toward protecting this group. Mycotoxins, toxic secondary fungal metabolites, contribute largely to the health risks of this young population. In SSA, the scenario is worsened by socioeconomic status, poor agricultural and storage practices, and low level of awareness, as well as the non-establishment and lack of enforcement of regulatory limits in the region. Studies have revealed mycotoxin occurrence in breast milk and other weaning foods. Of concern is the early exposure of infants to mycotoxins through transplacental transfer and breast milk as a consequence of maternal exposure, which may result in adverse health effects. The current paper presents an overview of mycotoxin occurrence in foods intended for IYC in SSA. It discusses the imperative evidence of mycotoxin exposure of this population group in SSA, taking into account consumption data and the occurrence of mycotoxins in food, as well as biomonitoring approaches. Additionally, it discusses the health implications associated with IYC exposure to mycotoxins in SSA. KW - mycotoxin KW - occurrence KW - exposure KW - child health KW - sub-Saharan Africa Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-219250 SN - 2304-8158 VL - 9 IS - 11 ER - TY - JOUR A1 - Adam, W. A1 - Ahrweiler, M. A1 - Saha-Möller, C. R. A1 - Sauter, M. A1 - Schönberger, A. A1 - Epe, B. A1 - Müller, E. A1 - Schiffmann, D. A1 - Stopper, Helga A1 - Wild, D. T1 - Genotoxicity studies of benzofuran dioxetanes and epoxides with isolated DNA, bacteria and mammalian cells N2 - 1.2-Dioxetanes, very reactive and high energy molecules. are involved as labile intermediates in dioxygenase- activated aerobic metabolism and in physiological processes. Various toxico1ogica1 tests reveal that dioxetanes are indeed genotoxic. In supercoiled DNA of bacteriophage PM2 they induce endonucleasesensitive sites, most of them are FPG protein-sensitive base modifications (8-hydroxyguanine, fonnamidopyrimidines). Pyrimidinedimersand sites ofbase loss (AP sites) which were probed by UV endonuclease and exonuclease 111 are minor lesions in this system. While the alky1-substituted dioxetanes do not show any significant mutagenic activity in different Salmonella typhimurium strains, heteroarene dioxetanes such as benzofuran and furocoumarin dioxetanes are strongly mutagenic in S. typhimurium strain TA I 00. DNA adducts formed with an intermediary alkyJating agent appear to be responsible for the mutagenic activity of benzofuran dioxetane. We assume that the benzofuran epoxides, generated in situ from benzofuran dioxetanes by deoxygenation are the ultimate mutagens of the latter. since benzofuran epoxides are highly mutagenic in the S. typhimurium strain TAIOO and they form DNA adducts. as detected by the 212Ppostlabelling technique. Our results imply that the type of D NA darnage promoted by dioxetanes is dependent on the structural feature of dioxetanes. Furthermore, the direct photochemical DNA darnage by energy transfer. i.e., pyrimidine dimers, plays a minor role in the genotoxicity of dioxetanes. Instead, photooxidation dominates in isolated DNA. while radical darnage and alkylation prevail in the cellular system. KW - Toxikologie KW - 1 KW - 2-Dioxetane KW - Benzefuran dioxetane KW - Benzefuran epoxide KW - DNA damage KW - Mutagenicity KW - DNA adduct . Repair endonuclease KW - FPG protein Y1 - 1993 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-63420 ER - TY - JOUR A1 - Adami, Hans-Olov A1 - Dragsted, Lars A1 - Enig, Bent A1 - Hansen, Jens A1 - Haraldsdóttir, Jóhanna A1 - Hill, Michael J. A1 - Holm, Lars Erik A1 - Knudsen, Ib A1 - Larsen, Jens-Jorgen A1 - Lutz, Werner K. A1 - Osler, Merete A1 - Overvad, Kim A1 - Sabroe, Svend A1 - Sanner, Tore A1 - Strube, Michael A1 - Sorensen, Thorkild I. A. A1 - Thorling, Eivind B. T1 - Report from the working group on diet and cancer. N2 - No abstract available. KW - Krebs KW - Ernährung Y1 - 1993 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-71601 ER - TY - JOUR A1 - Agarwal, Shailesh R. A1 - Yang, Pei-Chi A1 - Rice, Monica A1 - Singer, Cherie A. A1 - Nikolaev, Viacheslav O. A1 - Lohse, Martin J. A1 - Clancy, Colleen E. A1 - Harvey, Robert D. T1 - Role of Membrane Microdomains in Compartmentation of cAMP Signaling JF - PLOS ONE N2 - Spatially restricting cAMP production to discrete subcellular locations permits selective regulation of specific functional responses. But exactly where and how cAMP signaling is confined is not fully understood. Different receptors and adenylyl cyclase isoforms responsible for cAMP production are not uniformly distributed between lipid raft and non-lipid raft domains of the plasma membrane. We sought to determine the role that these membrane domains play in organizing cAMP responses in HEK293 cells. The freely diffusible FRET-based biosensor Epac2-camps was used to measure global cAMP responses, while versions of the probe targeted to lipid raft (Epac2-MyrPalm) and non-raft (Epac2-CAAX) domains were used to monitor local cAMP production near the plasma membrane. Disruption of lipid rafts by cholesterol depletion selectively altered cAMP responses produced by raft-associated receptors. The results indicate that receptors associated with lipid raft as well as non-lipid raft domains can contribute to global cAMP responses. In addition, basal cAMP activity was found to be significantly higher in non-raft domains. This was supported by the fact that pharmacologic inhibition of adenylyl cyclase activity reduced basal cAMP activity detected by Epac2-CAAX but not Epac2-MyrPalm or Epac2-camps. Responses detected by Epac2-CAAX were also more sensitive to direct stimulation of adenylyl cyclase activity, but less sensitive to inhibition of phosphodiesterase activity. Quantitative modeling was used to demonstrate that differences in adenylyl cyclase and phosphodiesterase activities are necessary but not sufficient to explain compartmentation of cAMP associated with different microdomains of the plasma membrane. KW - protein-coupled-receptors KW - adenylyl-cyclase isoforms KW - adult cardiac myocytes KW - plasma membrane KW - lipid rafts KW - cholesterol depletion KW - BETA(2)-adrenergic receptor KW - living vells KW - cyclic-AMP KW - domains Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-116673 SN - 1932-6203 VL - 9 IS - 4 ER - TY - JOUR A1 - Alldrick, A. J. A1 - Lutz, Werner K. T1 - Covalent binding of [2-\(^{14}\)C]2-amino-3,8-dimethylimidazo[4,5-f]-quinoxaline (MeIQx) to mouse DNA in vivo N2 - Fernale BALB/c mice were administered intragastrically with equimolar amounts of either [2-\(^{14}\)C]2-amino-3,8-dimethyi[ 4,5-J]qulnoxaline (MeiQx) or 2-acetylamino[9-\(^{14}\)C]fluorene (2AAF). DNA was isolated from tissues of mice killed either 6 or 24 h after administration. Analysis of liver DNA nucleotide digests by HPLC analysis revealed that all of the radioactivity was attributable to adduct formation. Tbe specific activities of DNA samples were converted to covalent bindlog indices (CBI, J.LIDOI adduct per mol DNA nucleotides/mmol chemical app6ed per kg animal body weight). CBI values of 25 and 9 were detennined for 2AAF and MeiQx in tbe llvers of mice killed 6 h after dosing. The values were in general agreement with the moderate carcinogenic potency of these compounds. The specific activities of DNA preparations obtained from the lddneys, spleens, stomachs, small intestines and large intestlnes of mice treated witb MeiQx and killed 6 h after doslng were S- to 35-times less tban those obtained witb the llver. DNA isolated from tbe lungs (a target organ for MeiQx tumorigenicity) of MeiQx-treated mice was not radiolabeUed at tbe limit of detection (CBI <0.3). With tbe exception of tbe gastrolntestinal tract, the specific activities of DNA samples isolated from mice killed 6 h after administration were higher than those from mice killed after 24 h. KW - Toxikologie Y1 - 1989 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-60832 ER - TY - THES A1 - Anton, Selma T1 - Characterization of cAMP nanodomains surrounding the human Glucagon-like peptide 1 receptor using FRET-based reporters T1 - Charakterisierung der Rezeptor-assoziierten cAMP Nanodomänen des humanen Glucagon-like peptide 1 Rezeptors mittels FRET-basierter Sensoren N2 - Cyclic adenosine monophosphate (cAMP), the ubiquitous second messenger produced upon stimulation of GPCRs which couple to the stimulatory GS protein, orchestrates an array of physiological processes including cardiac function, neuronal plasticity, immune responses, cellular proliferation and apoptosis. By interacting with various effector proteins, among others protein kinase A (PKA) and exchange proteins directly activated by cAMP (Epac), it triggers signaling cascades for the cellular response. Although the functional outcomes of GSPCR-activation are very diverse depending on the extracellular stimulus, they are all mediated exclusively by this single second messenger. Thus, the question arises how specificity in such responses may be attained. A hypothesis to explain signaling specificity is that cellular signaling architecture, and thus precise operation of cAMP in space and time would appear to be essential to achieve signaling specificity. Compartments with elevated cAMP levels would allow specific signal relay from receptors to effectors within a micro- or nanometer range, setting the molecular basis for signaling specificity. Although the paradigm of signaling compartmentation gains continuous recognition and is thoroughly being investigated, the molecular composition of such compartments and how they are maintained remains to be elucidated. In addition, such compartments would require very restricted diffusion of cAMP, but all direct measurements have indicated that it can diffuse in cells almost freely. In this work, we present the identification and characterize of a cAMP signaling compartment at a GSPCR. We created a Förster resonance energy transfer (FRET)-based receptor-sensor conjugate, allowing us to study cAMP dynamics in direct vicinity of the human glucagone-like peptide 1 receptor (hGLP1R). Additional targeting of analogous sensors to the plasma membrane and the cytosol enables assessment of cAMP dynamics in different subcellular regions. We compare both basal and stimulated cAMP levels and study cAMP crosstalk of different receptors. With the design of novel receptor nanorulers up to 60nm in length, which allow mapping cAMP levels in nanometer distance from the hGLP1R, we identify a cAMP nanodomain surrounding it. Further, we show that phosphodiesterases (PDEs), the only enzymes known to degrade cAMP, are decisive in constraining cAMP diffusion into the cytosol thereby maintaining a cAMP gradient. Following the discovery of this nanodomain, we sought to investigate whether downstream effectors such as PKA are present and active within the domain, additionally studying the role of A-kinase anchoring proteins (AKAPs) in targeting PKA to the receptor compartment. We demonstrate that GLP1-produced cAMP signals translate into local nanodomain-restricted PKA phosphorylation and determine that AKAP-tethering is essential for nanodomain PKA. Taken together, our results provide evidence for the existence of a dynamic, receptor associated cAMP nanodomain and give prospect for which key proteins are likely to be involved in its formation. These conditions would allow cAMP to exert its function in a spatially and temporally restricted manner, setting the basis for a cell to achieve signaling specificity. Understanding the molecular mechanism of cAMP signaling would allow modulation and thus regulation of GPCR signaling, taking advantage of it for pharmacological treatment. N2 - G Protein gekoppelte Rezeptoren (GPCRs) stellen eine große und sehr vielfältige Familie an Membranproteinen dar, deren primäre Funktion die Signalübertragung von extrazellulären Stimuli in intrazelluläre Signale ist. Dank ihrer breiten Expression im gesamten menschlichen Körper regulieren sie unterschiedliche zelluläre Prozesse und damit deren physiologische Funktion, unter anderem die Sinnesempfindung, zelluläre Kommunikation und Neurotransmission. GPCRs stehen im Zusammenhang mit unterschiedlichen Erkrankungen wie Herzinsuffizienz, Krebs, neurologischen Funktionsstörungen und diverser metabolischer Krankheiten, weswegen sie als Ziele („Targets“) zur Behandlung verschiedener Erkrankungen erforscht und genutzt werden. Aufgrund ihrer Expression auf der Zelloberfläche sind sie leicht zugänglich, und die Diversität ihrer Liganden begünstigt zusätzlich ihre Nutzung als pharmakologische Targets. Heutzutage vermitteln bereits 30% aller weltweit zugelassenen Arzneistoffe ihre Wirkung an GPCRs. GPCRs üben ihre Funktion aus, indem sie hauptsächlich an G Proteine binden, welche wiederum die Produktion sogenannter second messenger in Gang setzen. cAMP ist das Hauptsignalmolekül der Rezeptoren, welche an das stimulatorische GS Protein koppeln. cAMP überträgt hunderte ankommende Signale in einer hochspezifischen Weise, indem es an unterschiedliche Effektorproteine bindet, welche sich in bestimmten zellulären Regionen befinden. Dadurch koordiniert dieses Signalmolekül eine Vielzahl zellulärer Prozesse, angefangen bei der Regulierung von Ionenkanalaktivität über die Kontraktilität glatter- und quergestreifter Muskulatur bis hin zur Genexpression, Zellproliferation und Apoptose. Durch die pleiotropen Effekte, welche durch cAMP reguliert werden, stellt sich die Frage, wie GS-gekoppelte Rezeptoren Signalspezifität erreichen, obwohl sie ihre Funktion durch dieses eine Signalmolekül ausführen. Ursprünglich ging man von einer uneingeschränkten Diffusion und dadurch homogenen Verteilung von cAMP in der Zelle aus. Diese Vorstellung ist jedoch nicht mit der Signalisierungsspezifität von GPCRs vereinbar, da unter diesen Umständen cAMP unselektiv all seine Effektorproteine in der gesamten Zelle aktivieren könnte. Daher entstand die Hypothese der cAMP-Kompartimentierung, wobei die Zelle lokal begrenzte Bereiche mit hohen oder niedrigen cAMP Konzentrationen umfassen würde. Jedoch gab es bisher keinerlei Beweise für die Existenz und die molekulare Zusammensetzung mutmaßlicher Domänen. Folglich setzten wir uns als Ziel, hochkonzentrierte cAMP-Kompartimente in der Zelle zu lokalisieren, ihre räumliche Dimension aufzuklären und ihre Rolle zur Realisierung zellulärer Signalisierungsspezifität zu ermitteln. Im Rahmen der vorliegenden Studie setzten wir einen Förster resonance energy transfer (FRET)-basierten cAMP Sensor ein, fusionierten ihn mit dem humanen glucagone-like peptide 1 Rezeptor (hGLP1R) als Prototyp eines GS-koppelnden Rezeptors, um cAMP am Ursprung des Signals zu messen. Mittels dieser Sensoren weisen wir eine Rezeptor-umgebende begrenzte cAMP Domäne nach, welche eine erhöhte cAMP Konzenztration aufweist (Figure ‎3.10). Bei Stimulation des Rezeptors mit GLP1 Konzenztrationen beginnend bei 10 fM entsteht eine Rezeptordomäne mit lokal erhöhten cAMP Konzentrationen, welche getrennt von Plasmamembran und Cytosol ist. Wir zeigen, dass das hGLP1R-Kompartiment geschützt ist vor cAMP Signalen, welche an weiteren, unabhängigen GS-gekoppelten Rezeptoren ihren Ursprung haben (Figure ‎3.11). Um die räumliche Dimension dieser Domäne zu untersuchen, verwendeten wir Nanolinker der Länge 30- und 60 nm als Abstandhalter zwischen Rezeptor und Sensor (Figure ‎3.12) und zeigen dabei, dass sich die Domäne über eine Länge von 60 Nanometern erstreckt, wobei ein abnehmender cAMP-Gradient erkennbar ist. Weiterhin beweisen wir, dass Phosphodiesterasen (PDEs) Schlüsselfaktoren für die Bildung des cAMP-Gradienten um den Rezeptor herum sind, indem sie die Diffusion ins Cytosol beschränken (Figure ‎3.13). Darüber hinaus zeigen wir (Figure ‎3.15), dass Rezeptor-spezifische cAMP Signale PKA-Phosphorylierung in der Rezeptordomäne auslösen und, dass AKAPs elementar für nanodomänen PKA-Aktivität sind, wohingegen die cytosolische PKA-Phosphorylierung unabhängig von AKAP-Targeting der PKA ist (Figure ‎3.16). Zusammenfassend beweisen unsere Ergebnisse die Existenz einer Rezeptor-umgebenden Nanodomäne mit erhöhten cAMP Spiegeln eines GS-gekoppelten Rezeptors. Zeitgleiche Studien in unserer Gruppe zeigen, dass cAMP in der Zelle weitgehend gebunden vorliegt und diffusionslimitiert ist. Dies stellt den Nachweis für eine eingeschränkte Diffusion als molekulare Voraussetzung für die Bildung von Signalkompartimenten dar. Wir gehen davon aus, dass unsere Ergebnisse ein Ausgangspunkt für die Aufklärung von Rezeptoren als Quelle für Signalkompartimente darstellen, jedoch bedarf es weiterer Studien, um die präzise molekulare Zusammensetzung und die beteiligten Proteine dieser Signaldomäne zu untersuchen. Das Grundverständnis der Signalisierungskaskaden auf molekularer Ebene könnte es uns ermöglichen, die zellulären Reaktionen zu manipulieren, um eine Fehlfunktion der Signalisierung in erkrankten Zellen wiederherzustellen. Da der hGLP1R entscheidend für Aufrechterhaltung ausgeglichener Blutglucosespiegel ist, würde die Erfassung der molekularen Details der kompartimentalisierten Signalübertragung die Feinabstimmung der Rezeptorsignale ermöglichen, um ihn als spezifisches Target zur Behandlung von Diabetes Mellitus einzusetzen. KW - FRET KW - cAMP KW - compartments KW - GPCR Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-190695 ER - TY - JOUR A1 - Arimany-Nardi, Cristina A1 - Minuesa, Gerard A1 - Pastor-Anglada, Marçal A1 - Keller, Thorsten A1 - Erkizia, Itziar A1 - Koepsell, Hermann A1 - Martinez-Picado, Javier T1 - Role of Human Organic Cation Transporter 1 (hOCT1) Polymorphisms in Lamivudine (3TC) Uptake and Drug-Drug Interactions JF - Frontiers in Pharmacology N2 - Lamivudine (3TC), a drug used in the treatment of HIV infection, needs to cross the plasma membrane to exert its therapeutic action. Human Organic cation transporter 1 (hOCT1), encoded by the SLC22A1 gene, is the transporter responsible for its uptake into target cells. As SLC22A1 is a highly polymorphic gene, the aim of this study was to determine how SNPs in the OCT1-encoding gene affected 3TC internalization and its interaction with other co-administered drugs. HEK293 cells stably transfected with either the wild type form or the polymorphic variants of hOCT1 were used to perform kinetic and drug-drug interaction studies. Protein co-immunoprecipitation was used to assess the impact of selected polymorphic cysteines on the oligomerization of the transporter. Results showed that 3TC transport efficiency was reduced in all polymorphic variants tested (R61C, C88R, S189L, M420del, and G465R). This was not caused by lack of oligomerization in case of variants located at the transporter extracellular loop (R61C and C88R). Drug-drug interaction measurements showed that co-administered drugs [abacavir (ABC), zidovudine (AZT), emtricitabine (FTC), tenofovir diproxil fumarate (TDF), efavirenz (EFV) and raltegravir (RAL)], differently inhibited 3TC uptake depending upon the polymorphic variant analyzed. These data highlight the need for accurate analysis of drug transporter polymorphic variants of clinical relevance, because polymorphisms can impact on substrate (3TC) translocation but even more importantly they can differentially affect drug-drug interactions at the transporter level. KW - hOCT1 KW - pharmacogenetics KW - lamivudine KW - HIV infection KW - therapy Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-165236 VL - 7 IS - 175 ER - TY - JOUR A1 - Awad, Eman A1 - Othman, Eman M. A1 - Stopper, Helga T1 - Effects of resveratrol, lovastatin and the mTOR-inhibitor RAD-001 on insulin-induced genomic damage in vitro JF - Molecules N2 - Diabetes mellitus (DM) is one of the major current health problems due to lifestyle changes. Before diagnosis and in the early years of disease, insulin blood levels are elevated. However, insulin generates low levels of reactive oxygen species (ROS) which are integral to the regulation of a variety of intracellular signaling pathways, but excess levels of insulin may also lead to DNA oxidation and DNA damage. Three pharmaceutical compounds, resveratrol, lovastatin and the mTOR-inhibitor RAD-001, were investigated due to their known beneficial effects. They showed protective properties against genotoxic damage and significantly reduced ROS after in vitro treatment of cultured cells with insulin. Therefore, the selected pharmaceuticals may be attractive candidates to be considered for support of DM therapy. KW - genomic damage KW - insulin KW - resveratrol KW - lovastatin KW - mTOR-inhibitor RAD-001 Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-159260 VL - 22 IS - 12 ER - TY - JOUR A1 - Baertsch, A. A1 - Lutz, Werner K. A1 - Schlatter, C. T1 - Effect of inhalation exposure regimen on DNA binding potency of 1,2-dichloroethane in the rat N2 - 1 ,2-Dichloroethane (DCE) was reported to be carcinogenic in rats in a long-tenn bioassay using gavage in com oil (24 and 48 mg/kg/day), but not by inhalation (up to 150-250 ppm, 7 h/day, 5 days/week). The daily dose metabolized was similar in the two experiments. In order to address this discrepancy, the genotoxicity of DCE was investigated in vivo under different exposure conditions. Fernale F-344 rats (183-188 g) were exposed to [1,2-14C]DCE in a closed inhalation chamber to either a low, constant concentration (0.3 mg/l = 80 ppm for 4 h) or to a peak concentration (up to 18 mg/1 = 4400 ppm) for a few minutes. After 12 h in the chamber, the dose metabolized under the two conditions was 34 mg/kg and 140 mg/k:g. DNA was isolated from liver and lung and was purified to constant specific radioactivity. DNA was enzymaticaBy hydrolyzed to the 3' -nucleotides which were separated by reverse phase HPLC. Most radioactivity eluted without detectable or with little optical density' indicating that the major part of the DNA radioactivity was due to covalent binding of the test compound. The Ievel of DNA adducts was expressed in the dose-nonnalized units ofthe Covalent Binding Index, CBI = f.Lmol adduct per mol DNA nucleotide/ mmol DCE per kg body wt. In liver DNA, the different exposure regimens resulted in markedly different CBI values of 1.8 and 69, for "constant-low" and ''peak" DCE exposure Ievels. In the Jung, the respective values were 0.9 and 31. It is concluded that the DNA darnage by DCE depends upon the concentration-time profile and that the carcinogenic potency determined in the gavage study should not be used for low-Ievel inhalation exposure. KW - Toxikologie KW - 1 KW - 2-Dichloroethane KW - Carcinogens KW - DNA KW - binding KW - Rat KW - Inhalation KW - Dose response Y1 - 1991 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-60743 ER - TY - JOUR A1 - Balasubramanian, Srikkanth A1 - Othman, Eman M. A1 - Kampik, Daniel A1 - Stopper, Helga A1 - Hentschel, Ute A1 - Ziebuhr, Wilma A1 - Oelschlaeger, Tobias A. A1 - Abdelmohsen, Usama R. T1 - Marine sponge-derived Streptomyces sp SBT343 extract inhibits staphylococcal biofilm formation JF - Frontiers in Microbiology N2 - Staphylococcus epidermidis and Staphylococcus aureus are opportunistic pathogens that cause nosocomial and chronic biofilm-associated infections. Indwelling medical devices and contact lenses are ideal ecological niches for formation of staphylococcal biofilms. Bacteria within biofilms are known to display reduced susceptibilities to antimicrobials and are protected from the host immune system. High rates of acquired antibiotic resistances in staphylococci and other biofilm-forming bacteria further hamper treatment options and highlight the need for new anti-biofilm strategies. Here, we aimed to evaluate the potential of marine sponge-derived actinomycetes in inhibiting biofilm formation of several strains of S. epidermidis, S. aureus, and Pseudomonas aeruginosa. Results from in vitro biofilm-formation assays, as well as scanning electron and confocal microscopy, revealed that an organic extract derived from the marine sponge-associated bacterium Streptomyces sp. SBT343 significantly inhibited staphylococcal biofilm formation on polystyrene, glass and contact lens surfaces, without affecting bacterial growth. The extract also displayed similar antagonistic effects towards the biofilm formation of other S. epidermidis and S. aureus strains tested but had no inhibitory effects towards Pseudomonas biofilms. Interestingly the extract, at lower effective concentrations, did not exhibit cytotoxic effects on mouse fibroblast, macrophage and human corneal epithelial cell lines. Chemical analysis by High Resolution Fourier Transform Mass Spectrometry (HRMS) of the Streptomyces sp. SBT343 extract proportion revealed its chemical richness and complexity. Preliminary physico-chemical characterization of the extract highlighted the heat-stable and non-proteinaceous nature of the active component(s). The combined data suggest that the Streptomyces sp. SBT343 extract selectively inhibits staphylococcal biofilm formation without interfering with bacterial cell viability. Due to absence of cell toxicity, the extract might represent a good starting material to develop a future remedy to block staphylococcal biofilm formation on contact lenses and thereby to prevent intractable contact lens-mediated ocular infections. KW - medicine KW - marine sponges KW - actinomycetes KW - Streptomyces KW - staphilococci KW - biofilms KW - contact lens Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-171844 VL - 8 ER -