3 resultados para CATALYTIC DOMAIN

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


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Host-Pathogen Interaction is a very vast field of biological sciences, indeed every year many un- known pathogens are uncovered leading to an exponential growth of this field. The present work lyes between its boundaries, touching different aspects of host-pathogen interaction: We have evaluate the permissiveness of Mesenchimal Stem cell (FM-MSC from now on) to all known human affecting herpesvirus. Our study demonstrate that FM-MSC are full permissive to HSV1, HSV2, HCMV and VZV. On the other hand HHV6, HHV7, EBV and HHV8 are susceptible, but failed to activate a lytic infection program. FM-MSC are pluripotent stem cell and have been studied intensely in last decade. FM-MSC are employed in some clinical applications. For this reason it is important to known the degree of susceptibility to transmittable pathogens. Our atten- tion has then moved to bacterial pathogens: we have performed a proteome-wide in silico analy- sis of Chlamydiaceae family, searching for putative Nuclear localization Signal (NLS). Chlamy- diaceae are a family of obligate intracellular parasites. It’s reasonably to think that its members could delivered to nucleus effector proteins via NLS sequences: if that were the case the identifi- cation of NLS carrying proteins could open the way to therapeutic approaches. Our results strengthen this hypothesis: we have identified 72 protein bearing NLS, and verified their func- tionality with in vivo assays. Finally we have conceived a molecular scissor, creating a fusion protein between HIV-1 IN protein and FokI catalytic domain (a deoxyexonuclease domain). Our aim is to obtain chimeric enzyme (trojIN) which selectively identify IN naturally occurring target (HIV LTR sites) and cleaves subsequently LTR carrying DNA (for example integrated HIV1 DNA). Our preliminary results are promising since we have identified trojIN mutated version capable to selectively recognize LTR carrying DNA in an in vitro experiments.

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La Sindrome da Immunodeficienza Acquisita (AIDS o SIDA) causata da HIV-1 (Virus dell'Immunodeficienza umana) è caratterizzata dalla graduale compromissione del sistema immunitario del soggetto colpito. Le attuali terapie farmacologiche, purtroppo, non riescono a eliminare l'infezione a causa della comparsa di continui ceppi resistenti ai farmaci, e inoltre questi trattamenti non sono in grado di eliminare i reservoir virali latenti e permettere l'eradicazione definitiva del virus dall’organismo. E' in questo ambito che si colloca il progetto a cui ho lavorato principalmente in questi anni, cioè la creazione di una strategia per eradicare il provirus di HIV integrato nel genoma della cellula ospite. L'Integrasi di HIV-1 è un enzima che media l'integrazione del cDNA virale nel genoma della cellula ospite. La nostra idea è stata, quindi, quella di associare all'attività di legame dell'IN stessa, un'attività catalitica. A tal fine abbiamo creato una proteina chimerica costituita da un dominio DNA-binding, dato dall'Integrasi, e da un dominio con attività nucleasica fornito dall'enzima FokI. La chimera ottenuta è stata sottoposta a mutagenesi random mediante UV, ed è stata oggetto di selezione in vivo, al fine di ottenere una chimera capace di riconoscere, specificamente le LTR di HIV-1, e idrolizzare i siti di inserzione. Questo lavoro porterà a definire pertanto se l'IN di HIV può essere riprogrammata a catalizzare una nuova funzione mediante la sostituzione dell'attività del proprio dominio catalitico con quello di FokI.

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Group B Streptococcus [GBS; Streptococcus agalactiae] is the leading cause of life-threatening diseases in newborn and is also becoming a common cause of invasive diseases in non-pregnant, elderly and immune-compromised adults. Pili, long filamentous fibers protruding from the bacterial surface, have been discovered in GBS, as important virulence factors and vaccine candidates. Gram-positive bacteria build pili on their cell surface via a class C sortase-catalyzed transpeptidation mechanism from pilin protein substrates. Despite the availability of several crystal structures, pilus-related C sortases remain poorly characterized to date and their mechanisms of transpeptidation and regulation need to be further investigated. The available three-dimensional structures of these enzymes reveal a typical sortase fold except for the presence of a unique feature represented by an N-terminal highly flexible loop, known as the “lid”. This region interacts with the residues composing the catalytic triad and covers the active site, thus maintaining the enzyme in an auto-inhibited state and preventing the accessibility to the substrate. It is believed that enzyme activation may occur only after lid displacement from the catalytic domain. In this work we provide the first direct evidence of the regulatory role of the lid, demonstrating that it is possible to obtain in vitro an efficient polymerization of pilin subunits using an active C sortase lid mutant carrying a single residue mutation in the lid region. Moreover, biochemical analyses of this recombinant mutant reveal that the lid confers thermodynamic and proteolytic stability to the enzyme. A further characterization of this sortase active mutant showed promiscuity in the substrate recognition, as it is able to polymerize different LPXTG-proteins in vitro.