22 resultados para histone H3 lys9 acetylation

em AMS Tesi di Dottorato - Alm@DL - Università di Bologna


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9-hydroxystearic acid (9-HSA) is an endogenous lipoperoxidation product and its administration to HT29, a colon adenocarcinoma cell line, induced a proliferative arrest in G0/G1 phase mediated by a direct activation of the p21WAF1 gene, bypassing p53. We have previously shown that 9-HSA controls cell growth and differentiation by inhibiting histone deacetylase 1 (HDAC1) activity, showing interesting features as a new anticancer drug. The interaction of 9-HSA with the catalytic site of the 3D model has been tested with a docking procedure: noticeably, when interacting with the site, the (R)-9-enantiomer is more stable than the (S) one. Thus, in this study, (R)- and (S)-9-HSA were synthesized and their biological activity tested in HT29 cells. At the concentration of 50 M (R)-9-HSA showed a stronger antiproliferative effect than the (S) isomer, as indicated by the growth arrest in G0/G1. The inhibitory effect of (S)-9-HSA on HDAC1, HDAC2 and HDAC3 activity was less effective than that of the (R)-9-HSA in vitro, and the inhibitory activity of both the (R)- and the (S)-9-HSA isomer, was higher on HDAC1 compared to HDAC2 and HDAC3, thus demonstrating the stereospecific and selective interaction of 9-HSA with HDAC1. In addition, histone hyperacetylation caused by 9-HSA treatment was examined by an innovative HPLC/ESI/MS method. Analysis on histones isolated from control and treated HT29 confirmed the higher potency of (R)-9-HSA compared to (S)-9-HSA, severely affecting H2A-2 and H4 acetylation. On the other side, it seemed of interest to determine whether the G0/G1 arrest of HT29 cell proliferation could be bypassed by the stimulation with the growth factor EGF. Our results showed that 9-HSA-treated cells were not only prevented from proliferating, but also showed a decreased [3H]thymidine incorporation after EGF stimulation. In this condition, HT29 cells expressed very low levels of cyclin D1, that didn’t colocalize with HDAC1. These results suggested that the cyclin D1/HDAC1 complex is required for proliferation. Furthermore, in the effort of understanding the possible mechanisms of this effect, we have analyzed the degree of internalization of the EGF/EGFR complex and its interactions with HDAC1. EGF/EGFR/HDAC1 complex quantitatively increases in 9-HSA-treated cells but not in serum starved cells after EGF stimulation. Our data suggested that 9-HSA interaction with the catalytic site of the HDAC1 disrupts the HDAC1/cyclin D1 complex and favors EGF/EGFR recruitment by HDAC1, thus enhancing 9-HSA antiproliferative effects. In conclusion 9-HSA is a promising HDAC inhibitor with high selectivity and specificity, capable of inducing cell cycle arrest and histone hyperacetylation, but also able to modulate HDAC1 protein interaction. All these aspects may contribute to the potency of this new antitumor agent.

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The human DMD locus encodes dystrophin protein. Absence or reduced levels of dystrophin (DMD or BMD phenotype, respectively) lead to progressive muscle wasting. Little is known about the complex coordination of dystrophin expression and its transcriptional regulation is a field of intense interest. In this work we found that DMD locus harbours multiple long non coding RNAs which orchestrate and control transcription of muscle dystrophin mRNA isoforms. These lncRNAs are tissue-specific and highly expressed during myogenesis, suggesting a possible role in tissue-specific expression of DMD gene isoforms. Their forced ectopic expression in human muscle and neuronal cells leads to a specific and negative regulation of endogenous dystrophin full lenght isoforms. An intriguing aspect regarding the transcription of the DMD locus is the gene size (2.4Mb). The mechanism that ensures the complete synthesis of the primary transcript and the coordinated splicing of 79 exons is still completely unknown. By ChIP-on-chip analyses, we discovered novel regions never been involved before in the transcription regulation of the DMD locus. Specifically, we observed enrichments for Pol II, P-Ser2, P-Ser5, Ac-H3 and 2Me-H3K4 in an intronic region of 3Kb (approximately 21Kb) downstream of the end of DMD exon 52 and in a region of 4Kb spanning the DMD exon 62. Interestingly, this latter region and the TSS of Dp71 are strongly marked by 3Me-H3K36, an histone modification associated with the regulation of splicing process. Furthermore, we also observed strong presence of open chromatin marks (Ac-H3 and 2Me-H3K4) around intron 34 and the exon 45 without presence of RNA pol II. We speculate that these two regions may exert an enhancer-like function on Dp427m promoter, although further investigations are necessary. Finally, we investigated the nuclear-cytoplasmic compartmentalization of the muscular dystrophin mRNA and, specifically, we verified whether the exon skipping therapy could influence its cellular distribution.

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Backgrounds:Treatment of patients with relapsed/refractory (R/R) diffuse large B-cell lymphoma (DLBCL) not eligible to high dose therapy represents an unmet medical need. Panobinostat showed encouraging therapeutic activity in studies conducted in lymphoma cell lines and in vivo in patients with advanced hematologic malignancies.Purpose:FIL-PanAL10 (NCT01523834) is a phase II, prospective multicenter trial of the Fondazione Italiana Linfomi (FIL) to evaluate safety and efficacy of single agent Panobinostat as salvage therapy for R/R DLBCL patients and to evaluate a possible relationships between response and any biological features. Patients and Methods:Patients with R/R DLBCL were included. The treatment plan included 6 induction courses with Panobinostat monotherapy followed by other 6 courses of consolidation. The primary objective was to evaluate Panobinostat activity in terms of overall response (OR); secondary objectives were: CR rate, time to response (TTR), progression-free survival (PFS), safety and feasibility of Panobinostat. We included evaluation of the impact of pharmacogenetics, immunohistochemical patterns and patient’s specific gene expression and mutations as potential predictors of response to Panobinostat as explorative objectives. To this aim a pre-enrollment new tissue biopsy was mandatory. ResultsThirty-five patients, 21 males (60%), were enrolled between June 2011 and March 2014. At the end of induction phase, 7 responses (20%) were observed, including 4 CR (11%), while 28 patients (80%) discontinued treatment due to progressive disease (PD) in 21 (60%) or adverse events in 7 (20%). Median TTR in 9 responders was 2.6 months (range 1.8-12). With a median follow up of 6 months (range 1-34), the estimated 12 months PFS and OS were 27% and 30.5%, respectively. Grade 3-4 thrombocytopenia and neutropenia were the most common toxicities (in 29 (83%) and 12 (34%) patients, respectively. Conclusions The results of this study indicate that Panobinostat might be remarkably active in some patients with R/R DLBCL, showing durable CR

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9-hydroxystearic acid (9-HSA) belongs to a class of lipid peroxidation products identified in several human and murine cell lines. These products are greatly diminished in tumors compared to normal tissues and their amount is inversely correlated with the malignancy of the tumor. 9-HSA activity has been tested in cancer cell lines, where it showed to act as a histone deacetylase 1 (HDAC1) inhibitor. In particular, in a colon cancer cell line (HT29), its administration resulted in an inhibition of proliferation together with an induction of differentiation. In this thesis the effect of (R)-9-hydroxystearic acid has been tested in vivo on cell proliferation and differentiation processes, in the early stages of zebrafish development. The final aim of this work was to elucidate the role of (R)-9-HSA in the control of cell differentiation and proliferation during normal development, in order to better understand its molecular control of cancerogenesis. The molecule has been administered via injection in the yolk of zebrafish embryos. The analysis of the histone acetylation pattern showed a hyperacetilation of histone H4 after treatment with the molecule, as detectable in HDAC1 mutants. (R)-9-HSA was also demonstrated to interfere with the signaling pathways that regulate proliferation and differentiation in zebrafish retina and hindbrain. This resulted in a reduction of proliferation in the hindbrain at 24 hours post injection (hpi), and in a hyperproliferation at 48 and 72 hpi in the retina, with a concomitant inhibition of differentiation. Finally, (R)-9-HSA effects were evident on proliferation of stem cell located in the ciliary marginal zone (CMZ) of the retina. The presence of ROS and 4-hydroxynoneal in the CMZ of wild-type embryos supports the hypothesis that oxidative stress could regulate stem cells fate in zebrafish retina.

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Il superavvolgimento del DNA nelle cellule, regolato dalle DNA Topoisomerasi, influenza molti processi biologici, quali la trascrizione, la replicazione, la ricombinazione ed il rimodellamento della cromatina. La DNA Topoisomerasi IB eucariotica, (Top1), è un enzima efficiente nella rimozione dei superavvolgimenti del DNA in vitro e la sua principale funzione cellulare è la rimozione dei superavvolgimenti positivi e negativi generati durante la trascrizione e la replicazione. Risultati recenti hanno fornito evidenze sperimentali del coinvolgimento di Top1 in meccanismi multipli di regolazione dell’espressione genica eucariotica, in particolare nella fase di inizio e maturazione dei trascritti. Tuttavia, le funzioni di Top1 non sono ancora state stabilite a livello globale. Pertanto, nella presente tesi di dottorato abbiamo risposto a questa domanda con l’analisi dei profili di trascrizione genica globale e con studi di immunoprecipitazione della cromatina (ChIP) in cellule di S. cerevisiae. Circa il 9% dei geni sono influenzati da Top1, e l’analisi dei profili di espressione mostra che Top1 wt aumenta l’utilizzo del glucosio e dei pathway per la produzione di energia, con specifica diminuzione della trascrizione dei geni telomerici e subtelomerici. Abbiamo inoltre dimostrato che Top1 wt, ma non il suo mutante inattivo, aumenta la velocità di crescita cellulare nelle cellule di lievito studiate. Le analisi di ChIP mostrano che, in confronto all’assenza dell’enzima, Top1 wt diminuisce l’acetilazione dell’istone H4, compresa quella specifica della lisina 16, nel telomero destro del cromosoma XIV mentre la mutazione che inattiva l’enzima aumenta in maniera marcata l’acetilazione dell’istone H4 e la di-metilazione della lisina 4 dell’istone H3. Top1 wt incrementa anche il reclutamento di Sir3 nelle regioni di confine della cromatina silenziata dello stesso telomero. Studi di immunoprecipitazione indicano che l’enzima interagisce direttamente con la struttura della cromatina telomerica poichè entrambe le proteine, quella wt e quella inattiva, sono localizzate sulle ripetizioni telomeriche dei cromosomi di lievito. Questi risultati dimostrano che Top1, una proteina non essenziale in lievito, ottimizza i livelli globali dei trascritti per una crescita più efficiente di cellule in fase esponenziale. Indagando il meccanismo che è alla base della specifica repressione dei geni telomerici, abbiamo dimostrato che Top1 favorisce delle modifiche posttraduzionali degli istoni che indicano una struttura della cromatina repressa nelle regioni telomeriche.

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The Clusterin (CLU) gene produces different forms of protein products which vary in their biological properties and distribution within the cell. Both the extra- and intracellular CLU forms regulate cell proliferation and apoptosis. Dis-regulation of CLU expression occurs in many cancer types, including prostate cancer. The role that CLU plays in tumorigenesis is still unclear. We found that CLU over-expression inhibited cell proliferation and induced apoptosis in prostate cancer cells. Here we show that depletion of CLU affects the growth of PC-3 prostate cancer cells. Following siRNA, all protein products quickly disappeared, inducing cell cycle progression and higher expression of specific proliferation markers (i.e. H3 mRNA, PCNA and cyclins A, B1 and D) as detected by RT-qPCR and Western blot. Quite surprisingly, we also found that the turnover of CLU protein is very rapid and tightly regulated by ubiquitin–proteasome mediated degradation. Inhibition of protein synthesis by cycloheximide showed that CLU half-life is less than 2 hours. All CLU protein products were found poly-ubiquitinated by co-immuniprecipitation. Proteasome inhibition by MG132 caused stabilization and accumulation of all CLU protein products, strongly inducing the nuclear form of CLU (nCLU) and committing cells to caspase-dependent death. In conclusion, proteasome inhibition may induce prostate cancer cell death through accumulation of nCLU, a potential tumour suppressor factor.

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Transcription is controlled by promoter-selective transcriptional factors (TFs), which bind to cis-regulatory enhancers elements, termed hormone response elements (HREs), in a specific subset of genes. Regulation by these factors involves either the recruitment of coactivators or corepressors and direct interaction with the basal transcriptional machinery (1). Hormone-activated nuclear receptors (NRs) are well characterized transcriptional factors (2) that bind to the promoters of their target genes and recruit primary and secondary coactivator proteins which possess many enzymatic activities required for gene expression (1,3,4). In the present study, using single-cell high-resolution fluorescent microscopy and high throughput microscopy (HTM) coupled to computational imaging analysis, we investigated transcriptional regulation controlled by the estrogen receptor alpha (ERalpha), in terms of large scale chromatin remodeling and interaction with the associated coactivator SRC-3 (Steroid Receptor Coactivator-3), a member of p160 family (28) primary coactivators. ERalpha is a steroid-dependent transcriptional factor (16) that belongs to the NRs superfamily (2,3) and, in response to the hormone 17-ß estradiol (E2), regulates transcription of distinct target genes involved in development, puberty, and homeostasis (8,16). ERalpha spends most of its lifetime in the nucleus and undergoes a rapid (within minutes) intranuclear redistribution following the addition of either agonist or antagonist (17,18,19). We designed a HeLa cell line (PRL-HeLa), engineered with a chromosomeintegrated reporter gene array (PRL-array) containing multicopy hormone response-binding elements for ERalpha that are derived from the physiological enhancer/promoter region of the prolactin gene. Following GFP-ER transfection of PRL-HeLa cells, we were able to observe in situ ligand dependent (i) recruitment to the array of the receptor and associated coregulators, (ii) chromatin remodeling, and (iii) direct transcriptional readout of the reporter gene. Addition of E2 causes a visible opening (decondensation) of the PRL-array, colocalization of RNA Polymerase II, and transcriptional readout of the reporter gene, detected by mRNA FISH. On the contrary, when cells were treated with an ERalpha antagonist (Tamoxifen or ICI), a dramatic condensation of the PRL-array was observed, displacement of RNA Polymerase II, and complete decreasing in the transcriptional FISH signal. All p160 family coactivators (28) colocalize with ERalpha at the PRL-array. Steroid Receptor Coactivator-3 (SRC-3/AIB1/ACTR/pCIP/RAC3/TRAM1) is a p160 family member and a known oncogenic protein (4,34). SRC-3 is regulated by a variety of posttranslational modifications, including methylation, phosphorylation, acetylation, ubiquitination and sumoylation (4,35). These events have been shown to be important for its interaction with other coactivator proteins and NRs and for its oncogenic potential (37,39). A number of extracellular signaling molecules, like steroid hormones, growth factors and cytokines, induce SRC-3 phosphorylation (40). These actions are mediated by a wide range of kinases, including extracellular-regulated kinase 1 and 2 (ERK1-2), c-Jun N-terminal kinase, p38 MAPK, and IkB kinases (IKKs) (41,42,43). Here, we report SRC-3 to be a nucleocytoplasmic shuttling protein, whose cellular localization is regulated by phosphorylation and interaction with ERalpha. Using a combination of high throughput and fluorescence microscopy, we show that both chemical inhibition (with U0126) and siRNA downregulation of the MAP/ERK1/2 kinase (MEK1/2) pathway induce a cytoplasmic shift in SRC-3 localization, whereas stimulation by EGF signaling enhances its nuclear localization by inducing phosphorylation at T24, S857, and S860, known partecipants in the regulation of SRC-3 activity (39). Accordingly, the cytoplasmic localization of a non-phosphorylatable SRC-3 mutant further supports these results. In the presence of ERalpha, U0126 also dramatically reduces: hormone-dependent colocalization of ERalpha and SRC-3 in the nucleus; formation of ER-SRC-3 coimmunoprecipitation complex in cell lysates; localization of SRC-3 at the ER-targeted prolactin promoter array (PRL-array) and transcriptional activity. Finally, we show that SRC-3 can also function as a cotransporter, facilitating the nuclear-cytoplasmic shuttling of estrogen receptor. While a wealth of studies have revealed the molecular functions of NRs and coregulators, there is a paucity of data on how these functions are spatiotemporally organized in the cellular context. Technically and conceptually, our findings have a new impact upon evaluating gene transcriptional control and mechanisms of action of gene regulators.

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Gli istoni sono proteine basiche che possono essere classificate in varie classi: H1, H2A, H2B, H3 e H4. Queste proteine formano l’ottamero proteico attorno al quale si avvolge il DNA per formare il nucleosoma che è l’unità fondamentale della cromatina. A livello delle code N-terminali, gli istoni possono essere soggetti a numerose modifiche posttraduzionali quali acetilazioni, metilazioni, fosforilazioni, ADP-ribosilazioni e ubiquitinazioni. Queste modifiche portano alla formazione di diversi siti di riconoscimento per diversi complessi enzimatici coinvolti in importanti processi come la riparazione e la replicazione del DNA e l’assemblaggio della cromatina. La più importante e la più studiata di queste modifiche è l’acetilazione che avviene a livello dei residui amminici della catena laterale dell’amminoacido lisina. I livelli corretti di acetilazione delle proteine istoniche sono mantenuti dall’attività combinata di due enzimi: istone acetil transferasi (HAT) e istone deacetilasi (HDAC). Gli enzimi appartenenti a questa famiglia possono essere suddivisi in varie classi a seconda delle loro diverse caratteristiche, quali la localizzazione cellulare, la dimensione, l’omologia strutturale e il meccanismo d’azione. Recentemente è stato osservato che livelli aberranti di HDAC sono coinvolti nella carcinogenesi; per questo motivo numerosi gruppi di ricerca sono interessati alla progettazione e alla sintesi di composti che siano in grado di inibire questa classe enzimatica. L’inibizione delle HDAC può infatti provocare arresto della crescita cellulare, apoptosi o morte cellulare. Per questo motivo la ricerca farmaceutica in campo antitumorale è mirata alla sintesi di inibitori selettivi verso le diverse classi di HDAC per sviluppare farmaci meno tossici e per cercare di comprendere con maggiore chiarezza il ruolo biologico di questi enzimi. Il potenziale antitumorale degli inibitori delle HDAC deriva infatti dalla loro capacità di interferire con diversi processi cellulari, generalmente non più controllati nelle cellule neoplastiche. Nella maggior parte dei casi l’attività antitumorale risiede nella capacità di attivare programmi di differenziamento, di inibire la progressione del ciclo cellulare e di indurre apoptosi. Inoltre sembra essere molto importante anche la capacità di attivare la risposta immunitaria e l’inibizione dell’angiogenesi. Gli inibitori delle HDAC possono essere a loro volta classificati in base alla struttura chimica, alla loro origine (naturale o sintetica), e alla loro capacità di inibire selettivamente le HDAC appartenenti a classi diverse. Non è ancora chiaro se la selettività di queste molecole verso una specifica classe di HDAC sia importante per ottenere un effetto antitumorale, ma sicuramente inibitori selettivi possono essere molto utili per investigare e chiarire il ruolo delle HDAC nei processi cellulari che portano all’insorgenza del tumore. Nel primo capitolo di questa tesi quindi è riportata un’introduzione sull’importanza delle proteine istoniche non solo da un punto di vista strutturale ma anche funzionale per il destino cellulare. Nel secondo capitolo è riportato lo stato dell’arte dell’analisi delle proteine istoniche che comprende sia i metodi tradizionali come il microsequenziamento e l’utilizzo di anticorpi, sia metodi più innovativi (RP-LC, HILIC, HPCE) ideati per poter essere accoppiati ad analisi mediante spettrometria di massa. Questa tecnica consente infatti di ottenere importanti e precise informazioni che possono aiutare sia a identificare gli istoni come proteine che a individuare i siti coinvolti nelle modifiche post-traduzionali. Nel capitolo 3 è riportata la prima parte del lavoro sperimentale di questa tesi volto alla caratterizzazione delle proteine istoniche mediante tecniche cromatografiche accoppiate alla spettrometria di massa. Nella prima fase del lavoro è stato messo a punto un nuovo metodo cromatografico HPLC che ha consentito di ottenere una buona separazione, alla linea di base, delle otto classi istoniche (H1-1, H1-2, H2A-1, H2A-2, H2B, H3-1, H3-2 e H4). La separazione HPLC delle proteine istoniche ha permesso di poter eseguire analisi accurate di spettrometria di massa mediante accoppiamento con un analizzatore a trappola ionica tramite la sorgente electrospray (ESI). E’ stato così possibile identificare e quantificare tutte le isoforme istoniche, che differiscono per il tipo e il numero di modifiche post-traduzionali alle quali sono soggette, previa estrazione da colture cellulari di HT29 (cancro del colon). Un’analisi così dettagliata delle isoforme non può essere ottenuta con i metodi immunologici e permette di eseguire un’indagine molto accurata delle modifiche delle proteine istoniche correlandole ai diversi stadi della progressione del ciclo e alla morte cellulare. Il metodo messo a punto è stato convalidato mediante analisi comparative che prevedono la stessa separazione cromatografica ma accoppiata a uno spettrometro di massa avente sorgente ESI e analizzatore Q-TOF, dotato di maggiore sensibilità e risoluzione. Successivamente, per identificare quali sono gli specifici amminoacidi coinvolti nelle diverse modifiche post-traduzionali, l’istone H4 è stato sottoposto a digestione enzimatica e successiva analisi mediante tecniche MALDI-TOF e LC-ESI-MSMS. Queste analisi hanno permesso di identificare le specifiche lisine acetilate della coda N-terminale e la sequenza temporale di acetilazione delle lisine stesse. Nel quarto capitolo sono invece riportati gli studi di inibizione, mirati a caratterizzare le modifiche a carico delle proteine istoniche indotte da inibitori delle HDAC, dotati di diverso profilo di potenza e selettività. Dapprima Il metodo messo a punto per l’analisi delle proteine istoniche è stato applicato all’analisi di istoni estratti da cellule HT29 trattate con due noti inibitori delle HDAC, valproato e butirrato, somministrati alle cellule a dosi diverse, che corrispondono alle dosi con cui sono stati testati in vivo, per convalidare il metodo per studi di inibizione di composti incogniti. Successivamente, lo studio è proseguito con lo scopo di evidenziare effetti legati alla diversa potenza e selettività degli inibitori. Le cellule sono state trattate con due inibitori più potenti, SAHA e MS275, alla stessa concentrazione. In entrambi i casi il metodo messo a punto ha permesso di evidenziare l’aumento dei livelli di acetilazione indotto dal trattamento con gli inibitori; ha inoltre messo in luce differenti livelli di acetilazione. Ad esempio il SAHA, potente inibitore di tutte le classi di HDAC, ha prodotto un’estesa iperacetilazione di tutte le proteine istoniche, mentre MS275 selettivo per la classe I di HDAC, ha prodotto modifiche molto più blande. E’ stato quindi deciso di applicare questo metodo per studiare la dose e la tempo-dipendenza dell’effetto di quattro diversi inibitori delle HDAC (SAHA, MS275, MC1855 e MC1568) sulle modifiche post-traduzionali di istoni estratti da cellule HT29. Questi inibitori differiscono oltre che per la struttura chimica anche per il profilo di selettività nei confronti delle HDAC appartenenti alle diverse classi. Sono stati condotti quindi studi di dose-dipendenza che hanno consentito di ottenere i valori di IC50 (concentrazione capace di ridurre della metà la quantità relativa dell’istone meno acetilato) caratteristici per ogni inibitore nei confronti di tutte le classi istoniche. E’ stata inoltre calcolata la percentuale massima di inibizione per ogni inibitore. Infine sono stati eseguiti studi di tempo-dipendenza. I risultati ottenuti da questi studi hanno permesso di correlare i livelli di acetilazione delle varie classi istoniche con la selettività d’azione e la struttura chimica degli inibitori somministrati alle cellule. In particolare, SAHA e MC1855, inibitori delle HDAC di classi I e II a struttura idrossamica, hanno causato l’iperacetilazione di tutte le proteine istoniche, mentre MC1568 (inibitore selettivo per HDAC di classe II) ha prodotto l’iperacetilazione solo di H4. Inoltre la potenza e la selettività degli inibitori nel provocare un aumento dei livelli di acetilazione a livello delle distinte classi istoniche è stata correlata al destino biologico della cellula, tramite studi di vitalità cellulare. E’ stato osservato che il SAHA e MC1855, inibitori potenti e non selettivi, somministrati alla coltura HT29 a dose 50 μM producono morte cellulare, mentre MS275 alla stessa dose produce accumulo citostatico in G1/G0. MC1568, invece, non produce effetti significatici sul ciclo cellulare. Questo studio ha perciò dimostrato che l’analisi tramite HPLC-ESI-MS delle proteine istoniche permette di caratterizzare finemente la potenza e la selettività di nuovi composti inibitori delle HDAC, prevedendone l’effetto sul ciclo cellulare. In maggiore dettaglio è risultato che l’iperacetilazione di H4 non è in grado di provocare modifiche significative sul ciclo cellulare. Questo metodo, insieme alle analisi MALDI-TOF e LC-ESI-MSMS che permettono di individuare l’ordine di acetilazione delle lisine della coda N-terminale, potrà fornire importanti informazioni sugli inibitori delle HDAC e potrà essere applicato per delineare la potenza, la selettività e il meccanismo di azione di nuovi potenziali inibitori di questa classe enzimatica in colture cellulari tumorali.

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A new formulate containing citokinins, that is commercialized as Cytokin, has been introduced as dormancy breaking agents. During a three-years study, Cytokin was applied at different concentrations and application times in two producing areas of the Emilia-Romagna region to verify its efficacy as a DBA. Cytokin application increased the bud break and showed a lateral flower thinning effect. Moreover, treated vines showed an earlier and more uniform flowering as compared to control ones. Results obtained on the productive performance revealed a constant positive effect in the fruit fresh weight at harvest. Moreover, Cytokin did not cause any phytotoxicity even at the highest concentrations. Starting from the field observation, which suggested the involvement of cytokinins in kiwifruit bud release from dormancy, 6-BA was applied in open field condition and molecular and histological analyses were carried out in kiwifruit buds collected starting from the endo dormant period up to complete bud break to compare the natural occurring situation to the one induced by exogenous cytokinin application. In details, molecular analyses were set up on to verify the expression of genes involved in the reactivation of cell cycle: cyclin D3, histone H4, cyclin-dependent kinase B, as well as of others which are known to be up regulated during bud release in other species, i.e.isopenteniltransferases (IPTs), which catalyze the first step in the CK biosynthesis, and sucrose synthase 1 and A, which are involved in the sugar supplied. Moreover, histological analyses of the cell division rate in kiwifruit bud apical meristems were performed. These analyses showed a reactivation of the cell divisions during bud release and changes in the expression level of the investigated genes.

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Myc is a transcription factor that can activate transcription of several hundreds genes by direct binding to their promoters at specific DNA sequences (E-box). However, recent studies have also shown that it can exert its biological role by repressing transcription. Such studies collectively support a model in which c-Myc-mediated repression occurs through interactions with transcription factors bound to promoter DNA regions but not through direct recognition of typical E-box sequences. Here, we investigated whether N-Myc can also repress gene transcription, and how this is mechanistically achieved. We used human neuroblastoma cells as a model system in that N-MYC amplification/over-expression represents a key prognostic marker of this tumour. By means of transcription profile analyses we could identify at least 5 genes (TRKA, p75NTR, ABCC3, TG2, p21) that are specifically repressed by N-Myc. Through a dual-step-ChIP assay and genetic dissection of gene promoters, we found that N-Myc is physically associated with gene promoters in vivo, in proximity of the transcription start site. N-Myc association with promoters requires interaction with other proteins, such as Sp1 and Miz1 transcription factors. Furthermore, we found that N-Myc may repress gene expression by interfering directly with Sp1 and/or with Miz1 activity (i.e. TRKA, p75NTR, ABCC3, p21) or by recruiting Histone Deacetylase 1 (Hdac1) (i.e. TG2). In vitro analyses show that distinct N-Myc domains can interact with Sp1, Miz1 and Hdac1, supporting the idea that Myc may participate in distinct repression complexes by interacting specifically with diverse proteins. Finally, results show that N-Myc, through repressed genes, affects important cellular functions, such as apoptosis, growth, differentiation and motility. Overall, our results support a model in which N-Myc, like c-Myc, can repress gene transcription by direct interaction with Sp1 and/or Miz1, and provide further lines of evidence on the importance of transcriptional repression by Myc factors in tumour biology.

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The nuclear signaling that is triggered in response to DNA damage entails the recruitment and assembly of repair proteins and the induction of genes involved in the activation of cell cycle checkpoint, apoptosis or senescence. The extensive changes in chromatin structure underlying these processes suggest that chromatin-modifying enzymes could be relevant targets of DNA damage-activated signaling. The acetyltransferases p300 and CBP participate in DNA damage-activated responses, including local histone hyperacetylation, cell cycle regulation, and co-activation of DNA damage activated proteins, such as p53, p73 and BRCA1. However, the link between DNA damage and p300/CBP activation has not been identified.We have detected p300 tyrosine phosphorylation in response to DNA damage. We show that the DNA damage-activated cAbl tyrosine kinase enters the nuclei of cells exposed to genotoxic agents and phosphorylates p300 on a tyrosine residue within the bromodomain that is conserved in p300, CBP and many other bromodomain-containing proteins. Antibodies against tyrosine phosphorylated p300/CBP show a DNA damage-inducible nuclear staining, suggesting that p300 tyrosine phosphorylation is an event linking DNA damage and chromatin modifications.

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In this PhD-thesis new synthetic approaches towards new azetidinone derivatives are described. In particular, 4-alkyliden-β-lactams were used as starting materials for the preparation of new biologically active compounds. The carbapenem Thienamycin has got a broad spectrum of activity as antibiotic. It has got 3 stereocenters and apart of one epimer, all isomers have been synthesized. Using the 4-alkyliden-β-lactam benzilyc ester as precursor, we developed a synthesis for this missing epimer, which is described in chapter II. Biological tests in order to establish its biological activity are under way. The Hunsdiecker-Borodine reaction was extensively studied for the preparation of the mono halogenated and – surprisingly – the dihalogenated derivative from the 4-alkyliden-azetidinone carboxylic acid. The herein described synthetic procedures allowed the preparation of chloro-, bromo- and iodo derivatives in good to excellent yield. Furthermore, the reaction mechanism was investigated by NMR-experiments and is described in detail in chapter III. In chapter IV, synthetic approaches towards new β-lactam derivatives for inhibition of the histone deacetylase enzymes (HDACs) are reported. In collaboration with the company Sigma-Tau (Rome), 14 new β-lactams were synthesized. The new β-lactams were evaluated for the activity showing a promising activityparticulary, 10 of the β-lactams synthesized were evaluated for the in vitro inhibitory activity against the 11 human HDACs isoforms and they showed a selective inhibition of HDAC6 or HDAC8 in micromolar range. Finally, preliminary studies were conducted for the employment of 4-alkyliden-β-lactams as precursors for the synthesis of chiral β-amino acids by an opening of the β-lactam ring. In chapter V is described the ring opening reaction catalyzed by the enzyme lipase Cal-B. Preliminary results have shown that the enzyme not only catalyzes the ring opening of the β-lactam precursor, moreover, it leads to the formation of a cyclic dimer by the reaction of two molecules of β-amino acid obtained.

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La regolazione dell’espressione genica è un processo molto complesso e finemente controllato da fattori multipli, tra i quali quelli epigenetici hanno richiamato l’attenzione nell’ultima decade. I meccanismi di regolazione epigenetica comprendono la metilazione del DNA a livello delle isole CpG nella regione del promotore del gene e le modifiche istoniche post-traduzionali, quali acetilazioni e metilazioni. Questa serie di elementi di regolazione concorre a determinare uno stato di impacchettamento della cromatina più o meno rilassato, che influenzerà la trascrizione di geni critici, per esempio nello sviluppo o nelle neoplasie. Gli ambiti nei quali lo studio del profilo epigenetico ha assunto maggiore rilievo sono effettivamente quello oncologico e quello del differenziamento di cellule staminali, due contesti nei quali si è svolto il mio programma di Dottorato, nel quale ho seguito in parallelo più progetti presentati nella tesi in modo indipendente. La ricerca in campo tumorale è centrata sull’indagine di nuovi marcatori e sull’individuazione di profili epigenetici specifici per un determinato tumore che possano aiutare la diagnostica precoce, la classificazione e la sorveglianza dell’evoluzione clinica della neoplasia. In questo contesto si inserisce il progetto finalizzato alla costruzione di quadri associativi di metilazione in due tumori cerebrali, il glioblastoma (GBM) e l’oligodendroglioma (ODG). La casistica di GBM e di ODG in dotazione è stata valutata dal punto di vista della metilazione dei promotori di geni (MGMT, EMP3,..) con funzioni oncosoppressive e trovati ipermetilati anche in altri tumori o localizzati in regioni citologicamente instabili, per poter correlare questi dati con la risposta terapeutica nel caso del GBM o con i dati di perdita di eterozigosità (LOH) 1p19q nel caso dell’ODG. Parallelamente all’individuazione di marcatori epigenetici in ambito oncologico, la ricerca si sta muovendo anche nell’indagine di nuove potenziali terapie farmacologiche antitumorali su base epigenetica. In questo contesto, con lo scopo di approfondire le relazioni tra i meccanismi alla base della regolazione epigenetica, ci si è riproposti di valutare la correlazione tra il meccanismo di metilazione/demetilazione del DNA e quello di acetilazione/deacetilazione istonica e la loro vicendevole influenza nel determinare silenziamento genico piuttosto che riattivazione dell’espressione di geni ipermetilati. Sono stati usati farmaci epigenetici demetilanti, quali Azacitidina e Decitabina, inibitori della istone deacetilasi, quali la Tricostatina A, e inibitori della via di sintesi di molecole, le poliammine, coinvolte nella regolazione dell’espressione genica con modalità ancora da precisare in modo definitivo. Sebbene i meccanismi di regolazione epigenetica vengano studiati per lo più nel cancro, a causa delle gravi conseguenze che una loro disregolazione porta in termini di silenziamento di geni oncosoppressori, essi sono implicati fisiologicamente anche nel differenziamento di cellule staminali. Gli ultimi due progetti trattati nella tesi si contestualizzano in questo ambito. In particolare viene presentata la messa a punto di una metodologia di immunoprecipitazione sequenziale della cromatina finalizzata all’individuazione di due modificazioni istoniche associate alla stessa regione di DNA. Le modifiche hanno riguardato i marcatori rappresenatativi di cromatina trascrizionalmente repressa H3K27me3 (trimetilazione della Lys27 dell’istone H3) e di cromatina trascrizionalmente attiva H3K24me2 (dimetilazione della Lys4 dell’istone H3) che definiscono i domini detti bivalenti, associati a geni che codificano per fattori di trascrizione che regolano lo sviluppo in cellule embrionali staminali, mantenendoli pronti per un veloce indirizzamento verso l’ attivazione trascrizionale. Il ruolo che la regolazione epigenetica svolge durante il differenziamento di cellule staminali non è ancora noto con precisione. È chiaro però che la memoria della linea cellulare verso la quale si differenzia una cellula staminale adulta, implica l’utilizzo di modifiche epigenetiche, quali la metilazione del DNA e correlati pattern di metilazione e acetilazione istonica. L’ultimo progetto, trattato, è stato finalizzato a verificare il coinvolgimento dell’epigenetica e in particolare della metilazione dei promotori di fattori trascrizionali precocemente attivati durante il differenziamento verso il fenotipo muscolare cardiaco di cellule staminali umane derivate da tessuto adiposo (ADSCs).

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The Myc oncoproteins belong to a family of transcription factors composed by Myc, N-Myc and L-Myc. The most studied components of this family are Myc and N-Myc because their expressions are frequently deregulated in a wide range of cancers. These oncoproteins can act both as activators or repressors of gene transcription. As activators, they heterodimerize with Max (Myc associated X-factor) and the heterodimer recognizes and binds a specific sequence elements (E-Box) onto gene promoters recruiting histone acetylase and inducing transcriptional activation. Myc-mediated transcriptional repression is a quite debated issue. One of the first mechanisms defined for the Myc-mediated transcriptional repression consisted in the interaction of Myc-Max complex Sp1 and/or Miz1 transcription factors already bound to gene promoters. This interaction may interfere with their activation functions by recruiting co-repressors such as Dnmt3 or HDACs. Moreover, in the absence of , Myc may interfere with the Sp1 activation function by direct interaction and subsequent recruitment of HDACs. More recently the Myc/Max complex was also shown to mediate transcriptional repression by direct binding to peculiar E-box. In this study we analyzed the role of Myc overexpression in Osteosarcoma and Neuroblastoma oncogenesis and the mechanisms underling to Myc function. Myc overexpression is known to correlate with chemoresistance in Osteosarcoma cells. We extended this study by demonstrating that c-Myc induces transcription of a panel of ABC drug transporter genes. ABCs are a large family trans-membrane transporter deeply involved in multi drug resistance. Furthermore expression levels of Myc, ABCC1, ABCC4 and ABCF1 were proved to be important prognostic tool to predict conventional therapy failure. N-Myc amplification/overexpression is the most important prognostic factor for Neuroblastoma. Cyclin G2 and Clusterin are two genes often down regulated in neuroblastoma cells. Cyclin G2 is an atypical member of Cyclin family and its expression is associated with terminal differentiation and apoptosis. Moreover it blocks cell cycle progression and induces cell growth arrest. Instead, CLU is a multifunctional protein involved in many physiological and pathological processes. Several lines of evidences support the view that CLU may act as a tumour suppressor in Neuroblastoma. In this thesis I showed that N-Myc represses CCNG2 and CLU transcription by different mechanisms. • N-Myc represses CCNG2 transcription by directly interacting with Sp1 bound in CCNG2 promoter and recruiting HDAC2. Importantly, reactivation of CCNG2 expression through epigenetic drugs partially reduces N-Myc and HDAC2 mediated cell proliferation. • N-Myc/Max complex represses CLU expression by direct binding to a peculiar E-box element on CLU promoter and by recruitment of HDACs and Polycomb Complexes, to the CLU promoter. Overall our findings strongly support the model in which Myc overexpression/amplification may contribute to some aspects of oncogenesis by a dual action: i) transcription activation of genes that confer a multidrug resistant phenotype to cancer cells; ii), transcription repression of genes involved in cell cycle inhibition and cellular differentiation.

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With life expectancies increasing around the world, populations are getting age and neurodegenerative diseases have become a global issue. For this reason we have focused our attention on the two most important neurodegenerative diseases: Parkinson’s and Alzheimer’s. Parkinson’s disease is a chronic progressive neurodegenerative movement disorder of multi-factorial origin. Environmental toxins as well as agricultural chemicals have been associated with PD. Has been observed that N/OFQ contributes to both neurotoxicity and symptoms associated with PD and that pronociceptin gene expression is up-regulated in rat SN of 6-OHDA and MPP induced experimental parkinsonism. First, we investigated the role of N/OFQ-NOP system in the pathogenesis of PD in an animal model developed using PQ and/or MB. Then we studied Alzheimer's disease. This disorder is defined as a progressive neurologic disease of the brain leading to the irreversible loss of neurons and the loss of intellectual abilities, including memory and reasoning, which become severe enough to impede social or occupational functioning. Effective biomarker tests could prevent such devastating damage occurring. We utilized the peripheral blood cells of AD discordant monozygotic twin in the search of peripheral markers which could reflect the pathology within the brain, and also support the hypothesis that PBMC might be a useful model of epigenetic gene regulation in the brain. We investigated the mRNA levels in several genes involve in AD pathogenesis, as well DNA methylation by MSP Real-Time PCR. Finally by Western Blotting we assess the immunoreactivity levels for histone modifications. Our results support the idea that epigenetic changes assessed in PBMCs can also be useful in neurodegenerative disorders, like AD and PD, enabling identification of new biomarkers in order to develop early diagnostic programs.