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Dive into the research topics where Maria Antonietta Calvaruso is active.

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Featured researches published by Maria Antonietta Calvaruso.


Human Molecular Genetics | 2014

Different mtDNA mutations modify tumor progression in dependence of the degree of respiratory complex I impairment

Luisa Iommarini; Ivana Kurelac; Mariantonietta Capristo; Maria Antonietta Calvaruso; Valentina Giorgio; Anna Ghelli; Patrizia Nanni; Carla De Giovanni; Valerio Carelli; Romana Fato; Pier Luigi Lollini; Michela Rugolo; Giuseppe Gasparre; Anna Maria Porcelli

Mitochondrial DNA mutations are currently investigated as modifying factors impinging on tumor growth and aggressiveness, having been found in virtually all cancer types and most commonly affecting genes encoding mitochondrial complex I (CI) subunits. However, it is still unclear whether they exert a pro- or anti-tumorigenic effect. We here analyzed the impact of three homoplasmic mtDNA mutations (m.3460G>A/MT-ND1, m.3571insC/MT-ND1 and m.3243A>G/MT-TL1) on osteosarcoma progression, chosen since they induce different degrees of oxidative phosphorylation impairment. In fact, the m.3460G>A/MT-ND1 mutation caused only a reduction in CI activity, whereas the m.3571insC/MT-ND1 and the m.3243A>G/MT-TL1 mutations induced a severe structural and functional CI alteration. As a consequence, this severe CI dysfunction determined an energetic defect associated with a compensatory increase in glycolytic metabolism and AMP-activated protein kinase activation. Osteosarcoma cells carrying such marked CI impairment displayed a reduced tumorigenic potential both in vitro and in vivo, when compared with cells with mild CI dysfunction, suggesting that mtDNA mutations may display diverse impact on tumorigenic potential depending on the type and severity of the resulting oxidative phosphorylation dysfunction. The modulation of tumor growth was independent from reactive oxygen species production but correlated with hypoxia-inducible factor 1α stabilization, indicating that structural and functional integrity of CI and oxidative phosphorylation are required for hypoxic adaptation and tumor progression.


The International Journal of Biochemistry & Cell Biology | 2013

Complex I impairment in mitochondrial diseases and cancer: parallel roads leading to different outcomes.

Luisa Iommarini; Maria Antonietta Calvaruso; Ivana Kurelac; Giuseppe Gasparre; Anna Maria Porcelli

Respiratory chain complex I (CI) dysfunctions have been recognized as one of the most frequent causes of mitochondrial neuro-muscular disorders. Moreover, latest reports reveal that CI impairment is a major contributing factor in many other pathological processes, including cancer. In fact, energy depletion, oxidative stress and metabolites unbalance are frequently associated with CI functional and structural alterations. The occurrence of mitochondrial DNA (mtDNA) mutations is a shared feature in neuro-muscular diseases and cancer; however, the two diverging phenotypes arise depending on the mutation type (disassembling versus non-disassembling mutations), the mutant load and the cytotype. In this review, we unify our knowledge on CI impairment caused by mutations in structural CI genes and assembly chaperones, both in mitochondrial disorders and cancer, stratifying such mutations based on their functional versus structural effects. We summarize shared and specific metabolic consequences of CI dysfunction in these pathologies, which allow us to draw two parallel roads that lead to different clinical outcomes. This article is part of a Directed Issue entitled: Bioenergetic dysfunction, adaptation and therapy.


Cancer and Metabolism | 2013

Respiratory complex I is essential to induce a Warburg profile in mitochondria-defective tumor cells.

Claudia Calabrese; Luisa Iommarini; Ivana Kurelac; Maria Antonietta Calvaruso; Mariantonietta Capristo; Pier Luigi Lollini; Patrizia Nanni; Giordano Nicoletti; Carla De Giovanni; Anna Ghelli; Valentina Giorgio; Mariano Francesco Caratozzolo; Flaviana Marzano; Caterina Manzari; Christine M. Betts; Valerio Carelli; Claudio Ceccarelli; Marcella Attimonelli; Giovanni Romeo; Romana Fato; Michela Rugolo; Apollonia Tullo; Giuseppe Gasparre; Anna Maria Porcelli

BackgroundAerobic glycolysis, namely the Warburg effect, is the main hallmark of cancer cells. Mitochondrial respiratory dysfunction has been proposed to be one of the major causes for such glycolytic shift. This hypothesis has been revisited as tumors appear to undergo waves of gene regulation during progression, some of which rely on functional mitochondria. In this framework, the role of mitochondrial complex I is still debated, in particular with respect to the effect of mitochondrial DNA mutations in cancer metabolism. The aim of this work is to provide the proof of concept that functional complex I is necessary to sustain tumor progression.MethodsComplex I-null osteosarcoma cells were complemented with allotopically expressed complex I subunit 1 (MT-ND1). Complex I re-assembly and function recovery, also in terms of NADH consumption, were assessed. Clones were tested for their ability to grow in soft agar and to generate tumor masses in nude mice. Hypoxia levels were evaluated via pimonidazole staining and hypoxia-inducible factor-1α (HIF-1α) immunoblotting and histochemical staining. 454-pyrosequencing was implemented to obtain global transcriptomic profiling of allotopic and non-allotopic xenografts.ResultsComplementation of a truncative mutation in the gene encoding MT-ND1, showed that a functional enzyme was required to perform the glycolytic shift during the hypoxia response and to induce a Warburg profile in vitro and in vivo, fostering cancer progression. Such trigger was mediated by HIF-1α, whose stabilization was regulated after recovery of the balance between α-ketoglutarate and succinate due to a recuperation of NADH consumption that followed complex I rescue.ConclusionRespiratory complex I is essential for the induction of Warburg effect and adaptation to hypoxia of cancer cells, allowing them to sustain tumor growth. Differently from other mitochondrial tumor suppressor genes, therefore, a complex I severe mutation such as the one here reported may confer anti-tumorigenic properties, highlighting the prognostic values of such genetic markers in cancer.


Human Molecular Genetics | 2013

The cytochrome b p.278Y>C mutation causative of a multisystem disorder enhances superoxide production and alters supramolecular interactions of respiratory chain complexes

Anna Ghelli; Concetta Valentina Tropeano; Maria Antonietta Calvaruso; Alessandra Marchesini; Luisa Iommarini; Anna Maria Porcelli; Claudia Zanna; Vera De Nardo; Andrea Martinuzzi; John Vissing; Ivana Kurelac; Giuseppe Gasparre; Nur Selamoglu; Fevzi Daldal; Michela Rugolo

Cytochrome b is the only mtDNA-encoded subunit of the mitochondrial complex III (CIII), the functional bottleneck of the respiratory chain. Previously, the human cytochrome b missense mutation m.15579A>G, which substitutes the Tyr 278 with Cys (p.278Y>C), was identified in a patient with severe exercise intolerance and multisystem manifestations. In this study, we characterized the biochemical properties of cybrids carrying this mutation and report that the homoplasmic p.278Y>C mutation caused a dramatic reduction in the CIII activity and in CIII-driven mitochondrial ATP synthesis. However, the CI, CI + CIII and CII + CIII activities and the rate of ATP synthesis driven by the CI or CII substrate were only partially reduced or unaffected. Consistent with these findings, mutated cybrids maintained the mitochondrial membrane potential in the presence of oligomycin, indicating that it originated from the respiratory electron transport chain. The p.278Y>C mutation enhanced superoxide production, as indicated by direct measurements in mitochondria and by the imbalance of glutathione homeostasis in intact cybrids. Remarkably, although the assembly of CI or CIII was not affected, the examination of respiratory supercomplexes revealed that the amounts of CIII dimer and III2IV1 were reduced, whereas those of I1III2IVn slightly increased. We therefore suggest that the deleterious effects of p.278Y>C mutation on cytochrome b are palliated when CIII is assembled into the supercomplexes I1III2IVn, in contrast to when it is found alone. These findings underline the importance of supramolecular interactions between complexes for maintaining a basal respiratory chain activity and shed light to the molecular basis of disease manifestations associated with this mutation.


Biochimica et Biophysica Acta | 2013

Cybrid studies establish the causal link between the mtDNA m.3890G>A/MT-ND1 mutation and optic atrophy with bilateral brainstem lesions

Leonardo Caporali; Anna Ghelli; Luisa Iommarini; Alessandra Maresca; Maria Lucia Valentino; Chiara La Morgia; Rocco Liguori; Claudia Zanna; Piero Barboni; Vera De Nardo; Andrea Martinuzzi; Giovanni Rizzo; Caterina Tonon; Raffaele Lodi; Maria Antonietta Calvaruso; Martina Cappelletti; Anna Maria Porcelli; Alessandro Achilli; Maria Pala; Antonio Torroni; Valerio Carelli

Complex I (CI) deficiency is a frequent cause of mitochondrial disorders and, in most cases, is due to mutations in CI subunit genes encoded by mitochondrial DNA (mtDNA). In this study, we establish the pathogenic role of the heteroplasmic mtDNA m.3890G>A/MT-ND1 (p.R195Q) mutation, which affects an extremely conserved amino acid position in ND1 subunit of CI. This mutation was found in a young-adult male with optic atrophy resembling Lebers hereditary optic neuropathy (LHON) and bilateral brainstem lesions. The only previously reported case with this mutation was a girl with fatal infantile Leigh syndrome with bilateral brainstem lesions. Transfer of the mutant mtDNA in the cybrid cell system resulted in a marked reduction of CI activity and CI-dependent ATP synthesis in the presence of a normally assembled enzyme. These findings establish the pathogenicity of the m.3890G>A/MT-ND1 mutation and remark the link between CI mutations affecting the mtDNA-encoded ND subunits and LHON-like optic atrophy, which may be complicated by bilateral and symmetric lesions affecting the central nervous system. Peculiar to this mutation is the distribution of the brainstem lesions, with sparing of the striatum in both patients.


BMC Medical Genomics | 2013

Genome-wide expression profiling and functional characterization of SCA28 lymphoblastoid cell lines reveal impairment in cell growth and activation of apoptotic pathways

Cecilia Mancini; Paola Roncaglia; Alessandro Brussino; Giovanni Stevanin; Nicola Lo Buono; Helena Krmac; Francesca Maltecca; Elena Gazzano; Anna Bartoletti Stella; Maria Antonietta Calvaruso; Luisa Iommarini; Claudia Cagnoli; Sylvie Forlani; Isabelle Le Ber; Alexandra Durr; Alexis Brice; Dario Ghigo; Giorgio Casari; Anna Maria Porcelli; Ada Funaro; Giuseppe Gasparre; Stefano Gustincich

BackgroundSCA28 is an autosomal dominant ataxia associated with AFG3L2 gene mutations. We performed a whole genome expression profiling using lymphoblastoid cell lines (LCLs) from four SCA28 patients and six unrelated healthy controls matched for sex and age.MethodsGene expression was evaluated with the Affymetrix GeneChip Human Genome U133A 2.0 Arrays and data were validated by real-time PCR.ResultsWe found 66 genes whose expression was statistically different in SCA28 LCLs, 35 of which were up-regulated and 31 down-regulated. The differentially expressed genes were clustered in five functional categories: (1) regulation of cell proliferation; (2) regulation of programmed cell death; (3) response to oxidative stress; (4) cell adhesion, and (5) chemical homeostasis. To validate these data, we performed functional experiments that proved an impaired SCA28 LCLs growth compared to controls (p < 0.005), an increased number of cells in the G0/G1 phase (p < 0.001), and an increased mortality because of apoptosis (p < 0.05). We also showed that respiratory chain activity and reactive oxygen species levels was not altered, although lipid peroxidation in SCA28 LCLs was increased in basal conditions (p < 0.05). We did not detect mitochondrial DNA large deletions. An increase of TFAM, a crucial protein for mtDNA maintenance, and of DRP1, a key regulator of mitochondrial dynamic mechanism, suggested an alteration of fission/fusion pathways.ConclusionsWhole genome expression profiling, performed on SCA28 LCLs, allowed us to identify five altered functional categories that characterize the SCA28 LCLs phenotype, the first reported in human cells to our knowledge.


The International Journal of Biochemistry & Cell Biology | 2016

A unique combination of rare mitochondrial ribosomal RNA variants affects the kinetics of complex I assembly.

Anna Maria Porcelli; Maria Antonietta Calvaruso; Luisa Iommarini; Ivana Kurelac; Roberta Zuntini; Simona Ferrari; Giuseppe Gasparre

Mitochondrial DNA (mtDNA) mutations in respiratory complexes subunits contribute to a large spectrum of human diseases. Nonetheless, ribosomal RNA variants remain largely under-investigated from a functional point of view. We here report a unique combination of two rare mitochondrial rRNA variants detected by serendipity in a subject with chronic granulomatous disease and never reported to co-occur within the same mitochondrial haplotype. In silico prediction of the mitochondrial ribosomal structure showed a dramatic rearrangement of the rRNA secondary structure. Functional investigation of cybrids carrying this unique haplotype demonstrated that the co-occurrence of the two rRNA variants determines a slow-down of the mitochondrial protein synthesis, especially in cells with an elevated metabolic rate, which impairs the assembly kinetics of Complex I, induces a bioenergetic defect and stimulates reactive oxygen species production. In conclusion, our results point to a sub-pathogenic role for these two rare mitochondrial rRNA variants, when found in the unique combination here reported in a single individual.


Molecular BioSystems | 2014

Analysis of the mitochondrial proteome of cybrid cells harbouring a truncative mitochondrial DNA mutation in respiratory complex I.

Clara Musicco; Antonella Cormio; Maria Antonietta Calvaruso; Luisa Iommarini; Giuseppe Gasparre; Anna Maria Porcelli; Anna Maria Timperio; Lello Zolla; Maria Nicola Gadaleta


Biochimica et Biophysica Acta | 2012

Alterations in the supramolecular interactions of respiratory chain complexes and enhanced superoxide production by the cytochrome b Y278C mutation which causes a multisystem disorder

Anna Ghelli; Concetta Valentina Tropeano; Maria Antonietta Calvaruso; A. Marchesini; Luisa Iommarini; Anna Maria Porcelli; Claudia Zanna; Giuseppe Gasparre; Ivana Kurelac; V. De Nardo; Andrea Martinuzzi; John Vissing; Nur Selamoglu; Fevzi Daldal; Michela Rugolo


Biochimica et Biophysica Acta | 2014

Impaired mitochondrial energetic function and altered supramolecular interactions of respiratory chain complexes in cells bearing a novel pathogenic cytochrome b microdeletion

Michela Rugolo; Concetta Valentina Tropeano; Maria Antonietta Calvaruso; Leonardo Caporali; Valerio Carelli; Fevzi Daldal; Anna Ghelli

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