459 resultados para Starvation


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Agent Communication Languages (ACLs) have been developed to provide a way for agents to communicate with each other supporting cooperation in Multi-Agent Systems. In the past few years many ACLs have been proposed for Multi-Agent Systems, such as KQML and FIPA-ACL. The goal of these languages is to support high-level, human like communication among agents, exploiting Knowledge Level features rather than symbol level ones. Adopting these ACLs, and mainly the FIPA-ACL specifications, many agent platforms and prototypes have been developed. Despite these efforts, an important issue in the research on ACLs is still open and concerns how these languages should deal (at the Knowledge Level) with possible failures of agents. Indeed, the notion of Knowledge Level cannot be straightforwardly extended to a distributed framework such as MASs, because problems concerning communication and concurrency may arise when several Knowledge Level agents interact (for example deadlock or starvation). The main contribution of this Thesis is the design and the implementation of NOWHERE, a platform to support Knowledge Level Agents on the Web. NOWHERE exploits an advanced Agent Communication Language, FT-ACL, which provides high-level fault-tolerant communication primitives and satisfies a set of well defined Knowledge Level programming requirements. NOWHERE is well integrated with current technologies, for example providing full integration for Web services. Supporting different middleware used to send messages, it can be adapted to various scenarios. In this Thesis we present the design and the implementation of the architecture, together with a discussion of the most interesting details and a comparison with other emerging agent platforms. We also present several case studies where we discuss the benefits of programming agents using the NOWHERE architecture, comparing the results with other solutions. Finally, the complete source code of the basic examples can be found in appendix.

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Programa de doctorado en Oceanografía. La fecha de publicación es la fecha de lectura

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[ES]La presente tesis, se centra en el estudio del Sistema de Transporte de Electrones (ETS) en organismos del plancton marino, los factores que lo influencian la interpretación de estas mediciones y su detección mediante espectrofotometría y espectrofluorometría, en muestras oceánicas naturales y en cultivos de organismos marinos. Se pudo establecer, la biomasa, la respiración (R) y la respiración potencial (ɸ), en tres transectos en los océanos Índico y Atlántico Norte Sur. A su vez, se determino el estado fisiológico, en tres tamaños del zooplancton, midiendo la relación R/ɸ. Se exploró los efectos de la inanición sobre la R y la variación con respecto a la ɸ en el zooplancton

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[EN]Respiration of zooplanktonic organisms is an significant fraction of the global carbon cycle. However, it estimation in order to obtain the data required in oceanography is still a problem. In this work, we studied respiration rates in laboratory and field experiments. Laboratory experiments using Daphnia spp. showed a significant decrease of respiration rates during starvation. In addition, we measured the gut fluorescence and enzymatic activity (electron transfer system, ETS). The former did not show the expected decrease probably due to the volume of the incubators. The relationship between respiration and ETS presented the classical variability ranging between 0.5 and 1 as observed in previous works. Copepod respiration rates were measured during RAPROCAN 1504 cruise around the Canary Islands.

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Per dare supporto al traffico multimediale in una rete totalmente distribuita come le reti ad-hoc, il protocollo MAC deve fornire garanzie di QoS. L'IEEE ha sviluppato un standard per supportare le QoS chiamato 802.11e, facente parte della famiglia 802.11. Per dare supporto al QoS viene proposto un nuovo protocollo chiamato PAB che consiste in un accesso al canale preceduto da una serie di invii di burst, inviati alla stessa frequenza dei dati, che inibiscono la trasmissione di stazioni avente minore priorità. Lo scopo di questo protocollo è fornire servizi QoS, evitare starvation e fornire un accesso equo tra le stazioni.

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60 strains (belonging to the genera Lactobacillus, Bifidobacterium, Leuconostoc and Enterococcus) were tested for their capacity to inhibit the growth of 3 strains of Campylobacter jejuni: Lactobacilli and bifidobacteria were left to grow in MRS or TPY broth at 37°C overnight in anaerobic conditions; Campylobacter jejuni was inoculated in blood agar plates at 37°C for 24-48 hours in microaerophilic conditions. The inhibition experiments were carried out in vitro using ”Spot agar test” and “Well diffusion assay” techniques testing both cellular activity and that of the surnatant. 11 strains proved to inhibit the growth of Campylobacter jejuni. These strains were subsequently analised analised in order to evaluate the resistance to particular situations of stress which are found in the gastrointestinal tract and during the industrial transformation processes (Starvation stress, osmotic stress, heat stress, resistance to pH and to bile salts). Resistance to starvation stress: all strains seemed to resist the stress (except one strain). Resistance to osmotic stress: all strains were relatively resistant to the concentrations of 6% w/v of NaCl (except one strain). Resistance to heat stress: only one strain showed little resistance to the 55°C temperature. Resistance to pH: In the presence of a low pH (2.5), many strains rapidly lost their viability after approximately 1 hour. Resistance to bile salts: Except for one strain, all strains seemed to be relatively resistant to the 2% w/v concentration of bile salts. Afterward, strains were identified by using phenotipic and molecular techniques. Phenotipic identification was carried out by using API 50 CHL (bioMérieux) and API 20 STREP identification system (bioMérieux); molecular identification with species-specific PCR: the molecular techniques confirmed the results by phenotipic identification. For testing the antibiotic resistance profile, bacterial strains were subcultured in MRS or TPY broth and incubated for 18 h at 37°C under anaerobic conditions. Antibiotics tested (Tetracycline, Trimethoprim, Cefuroxime, Kanamycin, Chloramphenicol, Vancomycin, Ampycillin, Sterptomycin, Erythromycin) were diluted to the final concentrations of: 2,4,8,16,32,64,128,256 mg/ml. Then, 20 μl fresh bacterial culture (final concentration in the plates approximately 106 cfu/ml) were added to 160 μl MRS or TPY broth and 20 μl antibiotic solution. As positive control the bacterial culture (20 ul) was added to broth (160 ul) and water (20 ul). Test was performed on plates P96, that after the inoculum were incubated for 24 h at 37oC, then the antibiotic resistance was determined by measuring the Optical Density (OD) at 620 nm with Multiscan EX. All strains showed a similar behaviour: resistance to all antibiotic tested. Further studies are needed.

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The hydrogen production in the green microalga Chlamydomonas reinhardtii was evaluated by means of a detailed physiological and biotechnological study. First, a wide screening of the hydrogen productivity was done on 22 strains of C. reinhardtii, most of which mutated at the level of the D1 protein. The screening revealed for the first time that mutations upon the D1 protein may result on an increased hydrogen production. Indeed, productions ranged between 0 and more than 500 mL hydrogen per liter of culture (Torzillo, Scoma et al., 2007a), the highest producer (L159I-N230Y) being up to 5 times more performant than the strain cc124 widely adopted in literature (Torzillo, Scoma, et al., 2007b). Improved productivities by D1 protein mutants were generally a result of high photosynthetic capabilities counteracted by high respiration rates. Optimization of culture conditions were addressed according to the results of the physiological study of selected strains. In a first step, the photobioreactor (PBR) was provided with a multiple-impeller stirring system designed, developed and tested by us, using the strain cc124. It was found that the impeller system was effectively able to induce regular and turbulent mixing, which led to improved photosynthetic yields by means of light/dark cycles. Moreover, improved mixing regime sustained higher respiration rates, compared to what obtained with the commonly used stir bar mixing system. As far as the results of the initial screening phase are considered, both these factors are relevant to the hydrogen production. Indeed, very high energy conversion efficiencies (light to hydrogen) were obtained with the impeller device, prooving that our PBR was a good tool to both improve and study photosynthetic processes (Giannelli, Scoma et al., 2009). In the second part of the optimization, an accurate analysis of all the positive features of the high performance strain L159I-N230Y pointed out, respect to the WT, it has: (1) a larger chlorophyll optical cross-section; (2) a higher electron transfer rate by PSII; (3) a higher respiration rate; (4) a higher efficiency of utilization of the hydrogenase; (5) a higher starch synthesis capability; (6) a higher per cell D1 protein amount; (7) a higher zeaxanthin synthesis capability (Torzillo, Scoma et al., 2009). These information were gathered with those obtained with the impeller mixing device to find out the best culture conditions to optimize productivity with strain L159I-N230Y. The main aim was to sustain as long as possible the direct PSII contribution, which leads to hydrogen production without net CO2 release. Finally, an outstanding maximum rate of 11.1 ± 1.0 mL/L/h was reached and maintained for 21.8 ± 7.7 hours, when the effective photochemical efficiency of PSII (ΔF/F'm) underwent a last drop to zero. If expressed in terms of chl (24.0 ± 2.2 µmoles/mg chl/h), these rates of production are 4 times higher than what reported in literature to date (Scoma et al., 2010a submitted). DCMU addition experiments confirmed the key role played by PSII in sustaining such rates. On the other hand, experiments carried out in similar conditions with the control strain cc124 showed an improved final productivity, but no constant PSII direct contribution. These results showed that, aside from fermentation processes, if proper conditions are supplied to selected strains, hydrogen production can be substantially enhanced by means of biophotolysis. A last study on the physiology of the process was carried out with the mutant IL. Although able to express and very efficiently utilize the hydrogenase enzyme, this strain was unable to produce hydrogen when sulfur deprived. However, in a specific set of experiments this goal was finally reached, pointing out that other than (1) a state 1-2 transition of the photosynthetic apparatus, (2) starch storage and (3) anaerobiosis establishment, a timely transition to the hydrogen production is also needed in sulfur deprivation to induce the process before energy reserves are driven towards other processes necessary for the survival of the cell. This information turned out to be crucial when moving outdoor for the hydrogen production in a tubular horizontal 50-liter PBR under sunlight radiation. First attempts with laboratory grown cultures showed that no hydrogen production under sulfur starvation can be induced if a previous adaptation of the culture is not pursued outdoor. Indeed, in these conditions the hydrogen production under direct sunlight radiation with C. reinhardtii was finally achieved for the first time in literature (Scoma et al., 2010b submitted). Experiments were also made to optimize productivity in outdoor conditions, with respect to the light dilution within the culture layers. Finally, a brief study of the anaerobic metabolism of C. reinhardtii during hydrogen oxidation has been carried out. This study represents a good integration to the understanding of the complex interplay of pathways that operate concomitantly in this microalga.

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'Bcl-2-homologe Proteine aus dem Schwamm Geodia cydonium: Klonierung, Charakterisierung und Funktionsanalyse von Apoptose-Regulatoren der Porifera'. Auf der Suche nach der molekularbiologischen Grundlage der Apoptose in den Porifera, dem phylogenetisch ältesten Metazoen-Tierstamm, wurden Mitglieder der apoptoseregulatorischen Bcl?2 Familie unter Anwendung diverser Techniken im Schwamm G. cydonium identifiziert: GCBHP1 und GCBHP2. Detaillierte Analysen offenbarten Bcl-2-charakteristische Signaturen sowie eine durch apoptotische Stimuli induzierbare Expression. Die parallele HSP70-Induktion zeugte von der GCBHP2-Expression als Teil einer antiapoptotischen Streßantwort zum Schutz des Organismus'. Die kontinuierliche Transkription des im Rahmen dieser Arbeit gleichfalls klonierten Proliferationsmarkers SEP1 veranschaulichte zudem die Effektivität dieser Streßreaktion. Mit der Herstellung eines rekombinanten Proteins und der Gewinnung eines Antiserums konnte auch die streßinduzierte Proteinexpression des GCBHP2 verfolgt werden. Zum Zweck der Funktionsstudie wurden Säugetierzellen (HEK-293, NIH/3T3) mit einem GCBHP2-Konstrukt stabil transfiziert und auf die Expression des Schwammproteins untersucht. Diese Zellen unterschieden sich bereits phänotypisch von mock-transfizierten Zellen. Immunzytochemische Untersuchungen enthüllten eine für antiapoptotische Bcl-2 Proteine charakteristische Assoziation mit Mitochondrien. Unter dem Einfluß zweier apoptotischer Stimuli wurde für GCBHP2-transfizierte Zellen eine vierzehn-/sechsmal höhere Vitalität und eine reduzierte Aktivierung der Caspase-Kaskade registriert (im Vergleich zu mock-transfizierten Kontrollen). Somit wurde der antiapoptotische Charakter des GCBHP2 und die Existenz apoptotischer Mechanismen in den Porifera bestätigt.

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Background: Nilotinib is a potent and selective BCR-ABL inhibitor. The phase 3 ENESTnd trial demonstrated superior efficacy nilotinib vs imatinib, with higher and faster molecular responses. After 24 months, the rates of progression to accelerated-blastic phase (ABP) were 0.7% and 1.1% with nilotinib 300mg and 400mg BID, respectively, significantly lower compared to imatinib (4.2%). Nilotinib has been approved for the frontline treatment of Ph+ CML. With imatinib 400mg (IRIS trial), the rate of any event and of progression to ABP were higher during the first 3 years. Consequently, a confirmation of the durability of responses to nilotinib beyond 3 years is extremely important. Aims: To evaluate the response and the outcome of patients treated for 3 years with nilotinib 400mg BID as frontline therapy. Methods: A multicentre phase 2 trial was conducted by the GIMEMA CML WP (ClinicalTrials.gov.NCT00481052). Minimum 36-month follow-up data for all patients will be presented. Definitions: Major Molecular Response (MMR): BCR-ABL/ABL ratio <0,1%IS; Complete Molecular Response (CMR): undetectable transcript levels with ≥10,000 ABL transcripts; failures: according to the revised ELN recommendations; events: failures and treatment discontinuation for any reason. All the analysis has been made according to the intention-to-treat principle. Results: 73 patients enrolled: median age 51 years; 45% low, 41% intermediate and 14% high Sokal risk. The cumulative incidence of CCgR at 12 months was 100%. CCgR at each milestone: 78%, 96%, 96%, 95%, 92% at 3, 6, 12, 18 and 24 months, respectively. The overall estimated probability of MMR was 97%, while the rates of MMR at 3, 6, 12, 18 and 24 months were 52%, 66%, 85%, 81% and 82%, respectively. The overall estimated probability of CMR was 79%, while the rates of CMR at 12 and 24 months were 12% and 27%, respectively. No patient achieving a MMR progressed to AP. Only one patient progressed at 6 months to ABP and subsequently died (high Sokal risk, T315I mutation). Adverse events were mostly grade 1 or 2 and manageable with appropriate dose adaptations. During the first 12 months, the mean daily dose was 600-800mg in 74% of patients. The nilotinib last daily dose was as follows: 800mg in 46 (63%) patients, 600mg in 3 (4%) patients and 400mg in 18 (25%), 6 permanent discontinuations. Detail of discontinuation: 1 patient progressed to ABP; 3 patients had recurrent episodes of amylase and/or lipase increase (no pancreatitis); 1 patient had atrial fibrillation (unrelated to study drug) and 1 patient died after 32 months of mental deterioration and starvation (unrelated to study drug). Two patients are currently on imatinib second-line and 2 on dasatinib third-line. With a median follow-up of 39 months, the estimated probability of overall survival, progression-free survival and failure-free survival was 97%, the estimated probability of event-free survival was 91%. Conclusions: The rate of failures was very low during the first 3 years. Responses remain stable. The high rates of responses achieved during the first 12 months are being translated into optimal outcome for most of patients.

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Im Rahmen dieser Arbeit wurde das in Kopf-Hals-Tumoren überexprimierte, hinsichtlich seiner Funktion jedoch kontrovers diskutierte Protein OSF-2 (Osteoblast specific factor-2) molekularbiologisch charakterisiert und funktionell analysiert. Die endogene OSF-2-Expression wurde in verschiedenen Zelllinien, Geweben, sowie in Primärzellen untersucht. Die durch das N-terminale Sekretionssignal verursachte Proteinsekretion konnte sowohl morphologisch als auch biochemisch nachgewiesen werden. In Microarray-Experimenten konnte gezeigt werden, dass sowohl Tumorzellen als auch Tumor- assoziierte Fibroblasten OSF-2 exprimieren, wobei allerdings keine OSF-2-Isoformsignatur nachgewiesen werden konnte. In funktionellen Assays zeigte OSF-2 zwar keinen Einfluß auf die Proliferation von Kopf-Hals-Tumorzellen, stellte sich jedoch als wichtig für die Zellmigration und das Überleben der Zellen unter ungünstigen Wachstumsbedingungen heraus. Diese Ergebnisse konnten anhand von in vivo-Untersuchungen bestätigt werden. Das verbesserte Überleben der Zellen lässt sich wahrscheinlich durch die OSF-2-induzierte Aktivierung des “Survival Pathways“ Akt/PKB über die PI3-Kinase erklären. Bei den im Rahmen dieser Arbeit durchgeführten Untersuchungen humanen Tumorgewebes war es möglich eine neue Tumorzelllinie des frontalen Sinus zu etablieren und charakterisieren. Hierbei konnte gezeigt werden, dass es sich um HPV-negative, morphologisch äußerst heterogene Zellen mit geringer Migrationsgeschwindigkeit handelt, die eine große Zahl an Chromosomenaberrationen aufweisen. Sie konnten ungünstige Wachstumsbedingungen wie Nährstoffmangel besser überleben als die im Vergleich untersuchte Kopf-Hals-Tumorzelllinie und waren dazu in der Lage nach subkutaner Injektion Tumorwachstum in immundefizienten Nacktmäusen zu initiieren. Aus der Tumorzellpopulation isolierte CD133+ Zellen erhöhten die Tumorinitiation erheblich, was auf das Vorhandensein von Tumorstammzellen innerhalb der CD133+ Zellfraktion hindeutet. Um die Bedeutung von OSF-2 als Zielstruktur für neue Krebsmedikamente einschätzen zu können, sind allerdings weitere Informationen über dessen funktionelle Bedeutung notwendig.

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Bei Menschen mit unreifem oder geschwächtem Immunsystem kann eine Infektion mit dem Humanen Cytomegalovirus (HCMV) zu schweren Erkrankungen führen. Hingegen kontrolliert das Immunsystem bei Gesunden die HCMV-Infektion fast vollständig. Wichtige Effektoren hierbei sind CD8-positive zytotoxische T-Zellen (CTLs). Um dieser Kontrolle entgegenzuwirken, exprimiert HCMV die als Immunevasine bekannten Proteine gpUS2, gpUS3, gpUS6 und gpUS11. Sie greifen an unterschiedlichen Stellen in die MHC-Klasse-I (MHC-I)-vermittelte Antigenpräsentation ein und schützen so infizierte Zellen vor der Erkennung durch CTLs. Zusätzlich waren auch den Tegumentproteinen pp65 und pp71 immunevasive Funktionen zugeschrieben worden, wobei jedoch über diese Funktionen bisher nur wenig bekannt war. Daher sollte im ersten Teil der vorliegenden Arbeit die Beteiligung von pp71 an der MHC-I-Immunevasion von HCMV-infizierten humanen Fibroblasten untersucht werden. Zu diesem Zweck wurden HCMV-Mutanten eingesetzt, die pp71 verstärkt exprimierten. Entgegen der postulierten immunevasiven Rolle von pp71 konnte zu keinem Zeitpunkt der Infektion ein inhibierender Effekt von pp71 auf die Antigenpräsentation infizierter Fibroblasten festgestellt werden. Sehr früh nach Infektion war sogar eine pp71-vermittelte Steigerung der Präsentation des HCMV-Proteins IE1 zu beobachten. Um zu prüfen, ob es auch während einer natürlichen Infektion zu einer Erhöhung der pp71-Expression und den damit verbundenen Effekten kommen kann, wurde untersucht, ob die Expression von pp71 durch Zellstress induzierbar ist. Dies erschien möglich, da der Leserahmen für pp71 von einer bizistronischen mRNA kodiert wird. Über die Erzeugung von Zellstress durch Serumentzug konnte zum ersten Mal gezeigt werden, dass die Expression des wichtigen viralen Transaktivators pp71 abhängig vom physiologischen Zustand der infizierten Zellen reguliert wird. Im zweiten Teil der vorliegenden Arbeit sollte die Rolle des Immunevasins gpUS3 näher beleuchtet werden. Sein Wirkmechanismus war, wie die Mechanismen der drei anderen Immunevasine gpUS2, gpUS6 und gpUS11, bereits ausführlicher untersucht worden. Der individuelle Beitrag von gpUS3 zur MHC-I-Immunevasion in infizierten Zellen sowie ein mögliches Zusammenspiel mit den anderen Immunevasinen waren hingegen noch zu erforschen. Hierzu wurden HCMV-Mutanten eingesetzt, die keines oder nur eines der Immunevasine exprimierten. Mit ihrer Hilfe konnte gezeigt werden, dass gpUS3 sehr früh nach Infektion überraschenderweise die Immunevasion in infizierten Fibroblasten behindert. Zu späteren Infektionszeitpunkten war dagegen ein immunevasiver Effekt von gpUS3 in Form einer Kooperation mit jeweils einem der drei anderen Immunevasine festzustellen. Aus diesen Ergebnissen ergibt sich die neue Hypothese, dass die Hauptaufgabe von gpUS3 im Rahmen der HCMV-Immunevasion in der Regulation der Funktionen der übrigen Immunevasine liegt.

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Autophagie ist ein konservierter, kataboler Mechanismus in allen eukaryoten Zellen. Unter anderem wird ihm eine wichtige Rolle als zellautonomer Abwehrmechanismus gegen Mikroorganismen zugeschrieben; von manchen Infektionserregern wird er jedoch unterlaufen oder sogar genutzt. Der stärkste Auslöser der Autophagie ist ein Mangel an Nährstoffen, insbesondere Aminosäuren. Über die Deaktivierung der Kinase mTORC1 und die Phosphorylierung des eukaryoten Translationsinitiationsfaktors eIF2α hemmt die Nährstoffknappheit die Proteinbiosynthese und aktiviert gleichzeitig Autophagie. Wie Mikroorganismen, insbesondere Bakterien, Autophagie auslösen oder manipulieren, ist derzeit Gegenstand intensiver Forschung. Modifikationen an Mikroben oder Phagosomen und Adapterproteine, die diese Veränderungen und Komponenten des Autophagieapparates erkennen, scheinen jedenfalls bei der selektiven Erkennung durch die Autophagie-Maschinerie wichtig zu sein. rnIn der vorliegenden Dissertationsarbeit wird die Rolle des membranporenbildenden α-Toxins von Staphylococcus aureus für die Induktion von Autophagie beleuchtet. Zum einen erwies sich die Akkumulation von (EGFP)-LC3(II), einem Marker der Autophagosomen, um intrazelluläre S. aureus als abhängig von α-Toxin. Zweitens, genügt extrazellulär appliziertes α-Toxin um (EGFP)-LC3(II)-positive Endosomen zu induzieren. Während der Angriff aus dem extrazellulären Raum jedoch binnen kurzer Zeit eine fokale Kumulation von phosphoryliertem eIF2α an der Plasmamembran induziert, die an der Internalisierung des Toxins beteiligt ist, findet sich am phagosomalen Kompartiment keine Toxin-abhängige Anhäufung von p-eIF2α oder proximalen Autophagieregulatoren. Dies impliziert, dass Toxin-Angriff auf die Plasmamembran, nicht aber auf das Phagosom, zu einer Reaktion führt, wie sie bei massivem Nährstoffmangel zu beobachten ist. Obwohl keine α-Toxin-abhängige Kumulation von p-eIF2α bei einem Angriff aus dem Phagosom erfolgt, findet sich um α-Toxin-produzierende Bakterien eine massive Kumulation von LC3 und Adapterprotein p62/Sequestosome1. Dies deutet daraufhin, dass der Ort des Angriffs - Plasmamembran oder Phagosom – für den Autophagie-induzierenden Mechanismus wichtig sein könnte. Der unterschiedliche Effekt auf die zellulären Ionenkonzentrationen, den ein Angriff auf die Plasmamembran oder auf ein Phagosom auslösen würde, bietet hierfür eine mögliche Erklärung. Die Aktivierung der Autophagie über Adapterproteine könnte dann als back-up Mechanismus fungieren, der auch dann greift, wenn eine Invasion ohne Schädigung der Plasmamembran erfolgt. Ein cross-talk der beiden Induktionswege ist angesichts der Bedeutung von p62 für die selektive und die Hunger-assoziierte Autophagie gut möglich; sezerniertes Toxin könnte durch die Aktivierung der basalen Autophagie Adapter-basierte Mechanismen verstärken.

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Trypanosoma brucei and related pathogens transcribe most genes as polycistronic arrays that are subsequently processed into monocistronic mRNAs. Expression is frequently regulated post-transcriptionally by cis-acting elements in the untranslated regions (UTRs). GPEET and EP procyclins are the major surface proteins of procyclic (insect midgut) forms of T. brucei. Three regulatory elements common to the 3' UTRs of both mRNAs regulate mRNA turnover and translation. The glycerol-responsive element (GRE) is unique to the GPEET 3' UTR and regulates its expression independently from EP. A synthetic RNA encompassing the GRE showed robust sequence-specific interactions with cytoplasmic proteins in electromobility shift assays. This, combined with column chromatography, led to the identification of 3 Alba-domain proteins. RNAi against Alba3 caused a growth phenotype and reduced the levels of Alba1 and Alba2 proteins, indicative of interactions between family members. Tandem-affinity purification and co-immunoprecipitation verified these interactions and also identified Alba4 in sub-stoichiometric amounts. Alba proteins are cytoplasmic and are recruited to starvation granules together with poly(A) RNA. Concomitant depletion of all four Alba proteins by RNAi specifically reduced translation of a reporter transcript flanked by the GPEET 3' UTR. Pulldown of tagged Alba proteins confirmed interactions with poly(A) binding proteins, ribosomal protein P0 and, in the case of Alba3, the cap-binding protein eIF4E4. In addition, Alba2 and Alba3 partially cosediment with polyribosomes in sucrose gradients. Alba-domain proteins seem to have exhibited great functional plasticity in the course of evolution. First identified as DNA-binding proteins in Archaea, then in association with nuclear RNase MRP/P in yeast and mammalian cells, they were recently described as components of a translationally silent complex containing stage-regulated mRNAs in Plasmodium. Our results are also consistent with stage-specific regulation of translation in trypanosomes, but most likely in the context of initiation.

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An often-overlooked aspect of neural plasticity is the plasticity of neuronal composition, in which the numbers of neurons of particular classes are altered in response to environment and experience. The Drosophila brain features several well-characterized lineages in which a single neuroblast gives rise to multiple neuronal classes in a stereotyped sequence during development. We find that in the intrinsic mushroom body neuron lineage, the numbers for each class are highly plastic, depending on the timing of temporal fate transitions and the rate of neuroblast proliferation. For example, mushroom body neuroblast cycling can continue under starvation conditions, uncoupled from temporal fate transitions that depend on extrinsic cues reflecting organismal growth and development. In contrast, the proliferation rates of antennal lobe lineages are closely associated with organismal development, and their temporal fate changes appear to be cell-cycle dependent, such that the same numbers and types of uniglomerular projection neurons innervate the antennal lobe following various perturbations. We propose that this surprising difference in plasticity for these brain lineages is adaptive, given their respective roles as parallel processors versus discrete carriers of olfactory information.

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An often-overlooked aspect of neural plasticity is the plasticity of neuronal composition, in which the numbers of neurons of particular classes are altered in response to environment and experience. The Drosophila brain features several well-characterized lineages in which a single neuroblast gives rise to multiple neuronal classes in a stereotyped sequence during development [1]. We find that in the intrinsic mushroom body neuron lineage, the numbers for each class are highly plastic, depending on the timing of temporal fate transitions and the rate of neuroblast proliferation. For example, mushroom body neuroblast cycling can continue under starvation conditions, uncoupled from temporal fate transitions that depend on extrinsic cues reflecting organismal growth and development. In contrast, the proliferation rates of antennal lobe lineages are closely associated with organismal development, and their temporal fate changes appear to be cell cycle-dependent, such that the same numbers and types of uniglomerular projection neurons innervate the antennal lobe following various perturbations. We propose that this surprising difference in plasticity for these brain lineages is adaptive, given their respective roles as parallel processors versus discrete carriers of olfactory information.