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Dive into the research topics where Valeria La Pietra is active.

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Featured researches published by Valeria La Pietra.


Journal of Chemical Information and Modeling | 2012

Protein Flexibility in Virtual Screening: The BACE-1 Case Study

Sandro Cosconati; Luciana Marinelli; Francesco Saverio Di Leva; Valeria La Pietra; Angela De Simone; Francesca Mancini; Vincenza Andrisano; Ettore Novellino; David S. Goodsell; Arthur J. Olson

Simulating protein flexibility is a major issue in the docking-based drug-design process for which a single methodological solution does not exist. In our search of new anti-Alzheimer ligands, we were faced with the challenge of including receptor plasticity in a virtual screening campaign aimed at finding new β-secretase inhibitors. To this aim, we incorporated protein flexibility in our simulations by using an ensemble of static X-ray enzyme structures to screen the National Cancer Institute database. A unified description of the protein motion was also generated by computing and combining a set of grid maps using an energy weighting scheme. Such a description was used in an energy-weighted virtual screening experiment on the same molecular database. Assessment of the enrichment factors from these two virtual screening approaches demonstrated comparable predictive powers, with the energy-weighted method being faster than the ensemble method. The in vitro evaluation demonstrated that out of the 32 tested ligands, 17 featured the predicted enzyme inhibiting property. Such an impressive success rate (53.1%) demonstrates the enhanced power of the two methodologies and suggests that energy-weighted virtual screening is a more than valid alternative to ensemble virtual screening given its reduced computational demands and comparable performance.


Scientific Reports | 2015

Apoptosis Therapy in Cancer: The First Single-molecule Co-activating p53 and the Translocator Protein in Glioblastoma

Simona Daniele; Sabrina Taliani; Eleonora Da Pozzo; Chiara Giacomelli; Barbara Costa; Maria Letizia Trincavelli; Leonardo Rossi; Valeria La Pietra; Elisabetta Barresi; Alfonso Carotenuto; Antonio Limatola; Anna Lamberti; Luciana Marinelli; Ettore Novellino; Federico Da Settimo; Claudia Martini

In the complex scenario of cancer, treatment with compounds targeting multiple cell pathways has been emerging. In Glioblastoma Multiforme (GBM), p53 and Translocator Protein (TSPO), both acting as apoptosis inducers, represent two attractive intracellular targets. On this basis, novel indolylglyoxylyldipeptides, rationally designed to activate TSPO and p53, were synthesized and biologically characterized. The new compounds were able to bind TSPO and to reactivate p53 functionality, through the dissociation from its physiological inhibitor, murine double minute 2 (MDM2). In GBM cells, the new molecules caused Δψm dissipation and inhibition of cell viability. These effects resulted significantly higher with respect to those elicited by the single target reference standards applied alone, and coherent with the synergism resulting from the simultaneous activation of TSPO and p53. Taken together, these results suggest that TSPO/MDM2 dual-target ligands could represent a new attractive multi-modal opportunity for anti-cancer strategy in GBM.


Journal of Medicinal Chemistry | 2012

Identification of Glycogen Synthase Kinase-3 Inhibitors with a Selective Sting for Glycogen Synthase Kinase-3α

Fabio Lo Monte; Thomas H. Kramer; Jiamin Gu; Upendra Rao Anumala; Luciana Marinelli; Valeria La Pietra; Ettore Novellino; Bénédicte Franco; David Demedts; Fred Van Leuven; Ana Fuertes; Juan Manuel Dominguez; Batya Plotkin; Hagit Eldar-Finkelman; Boris Schmidt

The glycogen synthase kinase-3 (GSK-3) has been linked to the pathogenesis of colorectal cancer, diabetes, cardiovascular disease, acute myeloid leukemia (AML), and Alzheimers disease (AD). The debate on the respective contributions of GSK-3α and GSK-3β to AD pathology and AML is ongoing. Thus, the identification of potent GSK-3α-selective inhibitors, endowed with favorable pharmacokinetic properties, may elucidate the effect of GSK-3α inhibition in AD and AML models. The analysis of all available crystallized GSK-3 structures provided a simplified scheme of the relevant hot spots responsible for ligand binding and potency. This resulted in the identification of novel scorpion shaped GSK-3 inhibitors. It is noteworthy, compounds 14d and 15b showed the highest GSK-3α selectivity reported so far. In addition, compound 14d did not display significant inhibition of 48 out of 50 kinases in the test panel. The GSK-3 inhibitors were further profiled for efficacy and toxicity in the wild-type (wt) zebrafish embryo assay.


Current Pharmaceutical Design | 2012

State-of-the-art methodologies for the discovery and characterization of DNA G-quadruplex binders.

Bruno Pagano; Sandro Cosconati; Valérie Gabelica; Luigi Petraccone; Stefano De Tito; Luciana Marinelli; Valeria La Pietra; Francesco Saverio Di Leva; Ilaria Lauri; Roberta Trotta; Ettore Novellino; Concetta Giancola; Antonio Randazzo

Nowadays, the molecular basis of interaction between low molecular weight compounds and biological macromolecules is the subject of numerous investigations aimed at the rational design of molecules with specific therapeutic applications. In the last decades, it has been demonstrated that DNA quadruplexes play a critical role in several biological processes both at telomeric and gene promoting levels thus providing a great stride in the discovery of ligands able to interact with such a biologically relevant DNA conformation. So far, a number of experimental and computational approaches have been successfully employed in order to identify new ligands and to characterize their binding to the DNA. The main focus of this review is the description of these methodologies, placing a particular emphasis on computational methods, isothermal titration calorimetry (ITC), mass spectrometry (MS), nuclear magnetic resonance (NMR), circular dichroism (CD) and fluorescence spectroscopies.


European Journal of Medicinal Chemistry | 2012

Progresses in the pursuit of aldose reductase inhibitors: The structure-based lead optimization step

Anna Ramunno; Sandro Cosconati; Stefania Sartini; Vita Maglio; Sara Angiuoli; Valeria La Pietra; Salvatore Di Maro; Mariateresa Giustiniano; Concettina La Motta; Federico Da Settimo; Luciana Marinelli; Ettore Novellino

Aldose reductase (ALR2) is a crucial enzyme in the development of the major complications of diabetes mellitus. Very recently it has been demonstrated that the ARL2 inhibitor, fidarestat, significantly prevents inflammatory signals (TNF-α, LPS) that cause cancer (colon, breast, prostate and lung), metastasis, asthma, and other inflammatory diseases. Currently, fidarestat is in phase III clinical trial for diabetic neuropathy and was found to be safe. Thus the finding of novel, potent ARL2 inhibitors is today more than in the past in great demand as they can pave the way for a novel therapeutic approach for a number of diseases besides the diabetes. Herein, starting from the virtual screening-derived ALR2 inhibitor S12728 (1), a rational receptor-based lead optimization has been undertaken. The design and synthetic efforts here reported led to the discovery of several new compounds endowed with low micromolar/submicromolar activities.


Journal of Medicinal Chemistry | 2015

A Novel Cell-Permeable, Selective, and Noncompetitive Inhibitor of KAT3 Histone Acetyltransferases from a Combined Molecular Pruning/Classical Isosterism Approach

Ciro Milite; Alessandra Feoli; Kazuki Sasaki; Valeria La Pietra; Amodio Luca Balzano; Luciana Marinelli; Antonello Mai; Ettore Novellino; Sabrina Castellano; Alessandra Tosco; Gianluca Sbardella

Selective inhibitors of the two paralogue KAT3 acetyltransferases (CBP and p300) may serve not only as precious chemical tools to investigate the role of these enzymes in physiopathological mechanisms but also as lead structures for the development of further antitumor agents. After the application of a molecular pruning approach to the hardly optimizable and not very cell-permeable garcinol core structure, we prepared many analogues that were screened for their inhibitory effects using biochemical and biophysical (SPR) assays. Further optimization led to the discovery of the benzylidenebarbituric acid derivative 7h (EML425) as a potent and selective reversible inhibitor of CBP/p300, noncompetitive versus both acetyl-CoA and a histone H3 peptide, and endowed with good cell permeability. Furthermore, in human leukemia U937 cells, it induced a marked and time-dependent reduction in the acetylation of lysine H4K5 and H3K9, a marked arrest in the G0/G1 phase and a significant increase in the hypodiploid nuclei percentage.


Journal of Medicinal Chemistry | 2011

Non-nucleoside inhibitors of human adenosine kinase: synthesis, molecular modeling, and biological studies

Stefania Butini; Sandra Gemma; Margherita Brindisi; Giuseppe Borrelli; Andrea Lossani; Anna Maria Ponte; Andrea Torti; Giovanni Maga; Luciana Marinelli; Valeria La Pietra; Isabella Fiorini; Stefania Lamponi; Giuseppe Campiani; Daniela M. Zisterer; Seema-Maria Nathwani; Stefania Sartini; Concettina La Motta; Federico Da Settimo; Ettore Novellino; Federico Focher

Adenosine kinase (AK) catalyzes the phosphorylation of adenosine (Ado) to AMP by means of a kinetic mechanism in which the two substrates Ado and ATP bind the enzyme in a binary and/or ternary complex, with distinct protein conformations. Most of the described inhibitors have Ado-like structural motifs and are nonselective, and some of them (e.g., the tubercidine-like ligands) are characterized by a toxic profile. We have cloned and expressed human AK (hAK) and searched for novel non-substrate-like inhibitors. Our efforts to widen the structural diversity of AK inhibitors led to the identification of novel non-nucleoside, noncompetitive allosteric modulators characterized by a unique molecular scaffold. Among the pyrrolobenzoxa(thia)zepinones (4a-qq) developed, 4a was identified as a non-nucleoside prototype hAK inhibitor. 4a has proapoptotic efficacy, slight inhibition of short-term RNA synthesis, and cytostatic activity on tumor cell lines while showing low cytotoxicity and no significant adverse effects on short-term DNA synthesis in cells.


Journal of Medicinal Chemistry | 2013

Design, Synthesis, and Biological Evaluation of 1-Phenylpyrazolo[3,4-e]pyrrolo[3,4-g]indolizine-4,6(1H,5H)-diones as New Glycogen Synthase Kinase-3β Inhibitors

Valeria La Pietra; Giuseppe La Regina; Antonio Coluccia; Valeria Famiglini; Sveva Pelliccia; Batya Plotkin; Hagit Eldar-Finkelman; Andrea Brancale; Carlo Ballatore; Alex Crowe; Kurt R. Brunden; Luciana Marinelli; Ettore Novellino; Romano Silvestri

Compound 5 was selected from our in-house library as a suitable starting point for the rational design of new GSK-3β inhibitors. MC/FEP calculations of 5 led to the identification of a structural class of new GSK-3β inhibitors. Compound 18 inhibited GSK-3β with an IC50 of 0.24 μM and inhibited tau phosphorylation in a cell-based assay. It proved to be a selective inhibitor of GSK-3 against a panel of 17 kinases and showed >10-fold selectivity against CDK2. Calculated physicochemical properties and Volsurf predictions suggested that compound 18 has the potential to diffuse passively across the blood-brain barrier.


Journal of Medicinal Chemistry | 2014

Discovery of covalent inhibitors of glyceraldehyde-3-phosphate dehydrogenase, a target for the treatment of malaria.

Stefano Bruno; Andrea Pinto; Gianluca Paredi; Lucia Tamborini; Carlo De Micheli; Valeria La Pietra; Luciana Marinelli; Ettore Novellino; Paola Conti; Andrea Mozzarelli

We developed a new class of covalent inhibitors of Plasmodium falciparum glyceraldehyde-3-phosphate dehydrogenase, a validated target for the treatment of malaria, by screening a small library of 3-bromo-isoxazoline derivatives that inactivate the enzyme through a covalent, selective bond to the catalytic cysteine, as demonstrated by mass spectrometry. Substituents on the isoxazolinic ring modulated the potency up to 20-fold, predominantly due to an electrostatic effect, as assessed by computational analysis.


European Journal of Medicinal Chemistry | 2011

Synthesis and biological evaluation in U87MG glioma cells of (ethynylthiophene)sulfonamido-based hydroxamates as matrix metalloproteinase inhibitors

Elisa Nuti; F Casalini; Salvatore Santamaria; P Gabelloni; S Bendinelli; Eleonora Da Pozzo; Barbara Costa; Luciana Marinelli; Valeria La Pietra; Ettore Novellino; M. Margarida Bernardo; Rafael Fridman; Federico Da Settimo; Claudia Martini; Armando Rossello

Matrix metalloproteinases (MMPs) are important factors in gliomas since these enzymes facilitate invasion into the surrounding brain and participate in neovascularization. In particular, the gelatinases (MMP-2 and MMP-9), and more recently MMP-25, have been shown to be highly expressed in gliomas and have been associated with disease progression. Thus, inhibition of these MMPs may represent a promising non-cytotoxic approach to glioma treatment. We report herein the synthesis and biological evaluation of a series of 4-butylphenyl(ethynylthiophene)sulfonamido-based hydroxamates. Among the new compounds tested, a promising derivative, 5a, was identified, which exhibits nanomolar inhibition of MMP-2, MMP-9, and MMP-25, but weak inhibitory activity toward other members of the MMP family. This compound also exhibited anti-invasive activity of U87MG glioblastoma cells at nanomolar concentrations, without affecting cell viability.

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Ettore Novellino

University of Naples Federico II

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Luciana Marinelli

University of Naples Federico II

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Sandro Cosconati

Seconda Università degli Studi di Napoli

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Mariateresa Giustiniano

University of Naples Federico II

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Salvatore Di Maro

University of Naples Federico II

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