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Dive into the research topics where Nicolas Tajeddine is active.

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Featured researches published by Nicolas Tajeddine.


Autophagy | 2007

BH3-only proteins and BH3 mimetics induce autophagy by competitively disrupting the interaction between Beclin 1 and Bcl-2/Bcl-XL

Maria Chiara Maiuri; Alfredo Criollo; Ezgi Tasdemir; Jose Miguel Vicencio; Nicolas Tajeddine; John A. Hickman; Olivier Geneste; Guido Kroemer

Beclin 1 has recently been identified as novel BH3-only protein, meaning that it carries one Bcl-2-homology-3 (BH3) domain. As other BH3-only proteins, Beclin 1 interacts with anti-apoptotic multidomain proteins of the Bcl-2 family (in particular Bcl-2 and its homologue Bcl-XL) by virtue of its BH3 domain, an amphipathic α-helix that binds to the hydrophobic cleft of Bcl-2/Bcl-XL. The BH3 domains of other BH3-only proteins such as Bad, as well as BH3-mimetic compounds such as ABT737, competitively disrupt the inhibitory interaction between Beclin 1 and Bcl-2/Bcl-XL. This causes autophagy of mitochondria (mitophagy) but not of the endoplasmic reticulum (ER-phagy). Only ER-targeted (not mitochondrion-targeted) Bcl-2/Bcl-XL can inhibit autophagy induced by Beclin 1, and only Beclin 1-Bcl-2/Bcl-XL complexes present in the ER (but not those present on heavy membrane fractions enriched in mitochondria) are disrupted by ABT737. These findings suggest that the Beclin 1-Bcl-2/Bcl-XL complexes that normally inhibit autophagy are specifically located in the ER and point to an organelle-specific regulation of autophagy. Furthermore, these data suggest a spatial organization of autophagy and apoptosis control in which BH3-only proteins exert two independent functions. On the one hand, they can induce apoptosis, by (directly or indirectly) activating the mitochondrion-permeabilizing function of pro-apoptotic multidomain proteins from the Bcl-2 family. On the other hand, they can activate autophagy by liberating Beclin 1 from its inhibition by Bcl-2/Bcl-XL at the level of the endoplasmic reticulum. Addendum to: Functional and Physical Interaction Between Bcl-XL and a BH3-Like Domain in Beclin-1 M.C. Maiuri, G. Le Toumelin, A. Criollo, J.-C. Rain, F. Gautier, P. Juin, E. Tasdemir, G. Pierron, K. Troulinaki, N. Tavernarakis, J.A. Hickman, O. Geneste and G. Kroemer EMBO J 2007; In press


Oncogene | 2011

Restoration of the immunogenicity of cisplatin-induced cancer cell death by endoplasmic reticulum stress.

Isabelle Martins; Oliver Kepp; Frederic Schlemmer; Sandy Adjemian; Shensi Shen; Mickaël Michaud; Laurie Menger; Abdelaziz Gdoura; Nicolas Tajeddine; Antoine Tesniere; Laurence Zitvogel; Guido Kroemer

In contrast to other cytotoxic agents including anthracyclins and oxaliplatin (OXP), cisplatin (CDDP) fails to induce immunogenic tumor cell death that would allow to stimulate an anticancer immune response and hence to amplify its therapeutic efficacy. This failure to induce immunogenic cell death can be attributed to CDDPs incapacity to elicit the translocation of calreticulin (CRT) from the lumen of the endoplasmic reticulum (ER) to the cell surface. Here, we show that, in contrast to OXP, CDDP is unable to activate the protein kinase-like ER kinase (PERK)-dependent phosphorylation of the eukaryotic translation initiation factor 2α (eIF2α). Accordingly, CDDP also failed to stimulate the formation of stress granules and macroautophagy, two processes that only occur after eIF2α phosphorylation. Using a screening method that monitors the voyage of CRT from the ER lumen to the cell surface, we identified thapsigargin (THAPS), an inhibitor of the sarco/ER Ca2+-ATPase as a molecule that on its own does not stimulate CRT exposure, yet endows CDDP with the capacity to do so. The combination of ER stress inducers (such as THAPS or tunicamycin) and CDDP effectively induced the translocation of CRT to the plasma membrane, as well as immunogenic cell death, although ER stress or CDDP alone was insufficient to induce CRT exposure and immunogenic cell death. Altogether, our results underscore the contribution of the ER stress response to the immunogenicity of cell death.


Oncogene | 2008

Hierarchical involvement of Bak, VDAC1 and Bax in cisplatin-induced cell death.

Nicolas Tajeddine; Lorenzo Galluzzi; Oliver Kepp; E Hangen; Eugenia Morselli; Laura Senovilla; N Araujo; Guillaume Pinna; Nathanael Larochette; Naoufal Zamzami; Nazanine Modjtahedi; Annick Harel-Bellan; Guido Kroemer

Following the screening of a battery of distinct small-interfering RNAs that target various components of the apoptotic machinery, we found that knockdown of the voltage-dependent anion channel 1 (VDAC1) was particularly efficient in preventing cell death induced by cisplatin (CDDP) in non-small cell lung cancer cells. Both the downregulation of VDAC1 and its chemical inhibition with 4,4′-diisothiocyanatostilbene-2,2′-disulfonic acid reduced the apoptosis-associated modifications induced by CDDP, including mitochondrial transmembrane potential dissipation and plasma membrane permeabilization. VDAC1 inhibition strongly reduced the CDDP-induced conformational activation of Bax, yet had no discernible effect on the activation of Bak, suggesting that VDAC1 acts downstream of Bak and upstream of Bax. Accordingly, knockdown of Bak abolished the activation of Bax, whereas Bax downregulation had no effect on Bak activation. In VDAC1-depleted cells, the failure of CDDP to activate Bax could be reversed by means of the Bcl-2/Bcl-XL antagonist ABT-737, which concomitantly restored CDDP cytotoxicity. Altogether, these results delineate a novel pathway for the induction of mitochondrial membrane permeabilization (MMP) in the course of CDDP-induced cell death that involves a hierarchical contribution of Bak, VDAC1 and Bax. Moreover, our data suggest that VDAC1 may act as a facultative regulator/effector of MMP, depending on the initial cytotoxic event.


Gerontology | 2008

Senescence, apoptosis or autophagy? When a damaged cell must decide its path--a mini-review.

Jose Miguel Vicencio; Lorenzo Galluzzi; Nicolas Tajeddine; Carla Ortiz; Alfredo Criollo; Ezgi Tasdemir; Eugenia Morselli; Amena Ben Younes; Maria Chiara Maiuri; Sergio Lavandero; Guido Kroemer

Many features of aging result from the incapacity of cells to adapt to stress conditions. When damage accumulates irreversibly, mitotic cells from renewable tissues rely on either of two mechanisms to avoid replication. They can permanently arrest the cell cycle (cellular senescence) or trigger cell death programs. Apoptosis (self-killing) is the best-described form of programmed cell death, but autophagy (self-eating), which is a lysosomal degradation pathway essential for homeostasis, reportedly contributes to cell death as well. Unlike mitotic cells, postmitotic cells like neurons or cardiomyocytes cannot become senescent since they are already terminally differentiated. The fate of these cells entirely depends on their ability to cope with stress. Autophagy then operates as a major homeostatic mechanism to eliminate damaged organelles, long-lived or aberrant proteins and superfluous portions of the cytoplasm. In this mini-review, we briefly summarize the molecular networks that allow damaged cells either to adapt to stress or to engage in programmed-cell-death pathways.


The EMBO Journal | 2010

Multipolar mitosis of tetraploid cells: inhibition by p53 and dependency on Mos

Ilio Vitale; Laura Senovilla; Mohamed Jemaà; Mickaël Michaud; Lorenzo Galluzzi; Oliver Kepp; Lisa Nanty; Alfredo Criollo; Santiago Rello-Varona; Gwenola Manic; Didier Métivier; Sonia Vivet; Nicolas Tajeddine; Nicholas Joza; Alexander Valent; Maria Castedo; Guido Kroemer

Tetraploidy can constitute a metastable intermediate between normal diploidy and oncogenic aneuploidy. Here, we show that the absence of p53 is not only permissive for the survival but also for multipolar asymmetric divisions of tetraploid cells, which lead to the generation of aneuploid cells with a near‐to‐diploid chromosome content. Multipolar mitoses (which reduce the tetraploid genome to a sub‐tetraploid state) are more frequent when p53 is downregulated and the product of the Mos oncogene is upregulated. Mos inhibits the coalescence of supernumerary centrosomes that allow for normal bipolar mitoses of tetraploid cells. In the absence of p53, Mos knockdown prevents multipolar mitoses and exerts genome‐stabilizing effects. These results elucidate the mechanisms through which asymmetric cell division drives chromosomal instability in tetraploid cells.


American Journal of Physiology-cell Physiology | 2010

Role of TRPC1 channel in skeletal muscle function

Nadège Zanou; Georges Shapovalov; Magali Louis; Nicolas Tajeddine; Chiara Gallo; Monique Van Schoor; Isabelle Anguish; My Linh Cao; Olivier Schakman; Alexander Dietrich; Jean Lebacq; Urs T. Ruegg; Emmanuelle Roulet; Lutz Birnbaumer; Philippe Gailly

Skeletal muscle contraction is reputed not to depend on extracellular Ca2+. Indeed, stricto sensu, excitation-contraction coupling does not necessitate entry of Ca2+. However, we previously observed that, during sustained activity (repeated contractions), entry of Ca2+ is needed to maintain force production. In the present study, we evaluated the possible involvement of the canonical transient receptor potential (TRPC)1 ion channel in this entry of Ca2+ and investigated its possible role in muscle function. Patch-clamp experiments reveal the presence of a small-conductance channel (13 pS) that is completely lost in adult fibers from TRPC1(-/-) mice. The influx of Ca2+ through TRPC1 channels represents a minor part of the entry of Ca(2+) into muscle fibers at rest, and the activity of the channel is not store dependent. The lack of TRPC1 does not affect intracellular Ca2+ concentration ([Ca2+](i)) transients reached during a single isometric contraction. However, the involvement of TRPC1-related Ca2+ entry is clearly emphasized in muscle fatigue. Indeed, muscles from TRPC1(-/-) mice stimulated repeatedly progressively display lower [Ca2+](i) transients than those observed in TRPC1(+/+) fibers, and they also present an accentuated progressive loss of force. Interestingly, muscles from TRPC1(-/-) mice display a smaller fiber cross-sectional area, generate less force per cross-sectional area, and contain less myofibrillar proteins than their controls. They do not present other signs of myopathy. In agreement with in vitro experiments, TRPC1(-/-) mice present an important decrease of endurance of physical activity. We conclude that TRPC1 ion channels modulate the entry of Ca(2+) during repeated contractions and help muscles to maintain their force during sustained repeated contractions.


Cell Cycle | 2008

Targeting p53 to mitochondria for cancer therapy

Lorenzo Galluzzi; Eugenia Morselli; Oliver Kepp; Nicolas Tajeddine; Guido Kroemer

Although the tumor suppressor protein p53 is a major senescence- and cell death-inducing transcription factor, recent work has clearly demonstrated that p53 has additional, extranuclear effects that contribute to its cell cycle-arresting and proapoptotic functions. Mitochondrial outer membrane permeabilization (MOMP) is (one of) the most prominent apoptotic checkpoint(s), and cytoplasmic p53 can induce MOMP by direct interactions with multidomain proteins from the Bcl-2 family present at the mitochondrial outer membrane (OM). Since MOMP is commonly disabled in cancer cells, its pharmacological induction constitutes a therapeutic goal, and this has stimulated the design of mitochondriotropic inducers of apoptosis, both inhibitors of antiapoptotic Bcl-2 family proteins (e.g. Bcl-2, Bcl-XL) or activators of their proapoptotic counterparts (e.g. Bak, Bax). Moreover, novel approaches of gene therapy have been designed in which p53 is specifically targeted to mitochondria and have been demonstrated to inhibit the growth of human cancer xenografts in immunodeficient mice. Thus, a number of distinct strategies can be employed to achieve the therapeutic induction of MOMP in cancer cells.


Cell Cycle | 2007

Cell cycle-dependent induction of autophagy, mitophagy and reticulophagy

Ezgi Tasdemir; M. Chiara Maiuri; Nicolas Tajeddine; Ilio Vitale; Alfredo Criollo; Jose Miguel Vicencio; John Hickman; Guido Kroemer

When added to cells, a variety of autophagy inducers that operate through distinct mechanisms and target different organelles for autophagic destruction (mitochondria in mitophagy, endoplasmic reticulum in reticulophagy) rarely induce autophagic vacuolization in more than 50% or the cells. Here we show that this heterogeneity may be explained by cell cycle-specific effects. The BH3 mimetic ABT737, lithium, rapamycin, tunicamycin or nutrient depletion stereotypically induce autophagy preferentially in the G1 and S phases of the cell cycle, as determined by simultaneous monitoring of cell cycle markers and the cytoplasmic aggregation of GFP-LC3 in autophagic vacuoles. These results point to a hitherto neglected crosstalk between autophagic vacuolization and cell cycle regulation.


Oncogene | 2008

Disruption of the hexokinase–VDAC complex for tumor therapy

Lorenzo Galluzzi; Oliver Kepp; Nicolas Tajeddine; Guido Kroemer

Unlike mitochondria from most normal tissues, cancer cell mitochondria demonstrate an association between the glycolytic enzyme hexokinase (HK) and the voltage-dependent anion channel (VDAC). This provides a therapeutic opportunity, as the association appears to protect tumor cells from mitochondrial outer membrane permeabilization (MOMP), an event that marks the point of no return in multiple pathways leading to cell death. In this issue of Oncogene, the plant hormone methyl jasmonate (MJ) is shown to disrupt the interaction between human HK and VDAC, causing the inhibition of glycolysis and the induction of MOMP. MJ has already been shown to have selective anticancer activity in preclinical studies, and this finding may stimulate the development of a novel class of small anticancer compounds that inhibit the HK–VDAC interaction.


Cell Reports | 2012

Prognostic Impact of Vitamin B6 Metabolism in Lung Cancer

Lorenzo Galluzzi; Ilio Vitale; Laura Senovilla; Ken André Olaussen; Guillaume Pinna; Tobias Eisenberg; Aicha Goubar; Isabelle Martins; Judith Michels; Gueorgui Kratassiouk; Didac Carmona-Gutierrez; Marie Scoazec; Erika Vacchelli; Frederic Schlemmer; Oliver Kepp; Shensi Shen; Mireia Niso-Santano; Eugenia Morselli; Alfredo Criollo; Sandy Adjemian; Mohamed Jemaà; Kariman Chaba; Claire Pailleret; Mickaël Michaud; Federico Pietrocola; Nicolas Tajeddine; Thibault de La Motte Rouge; Natalia Araujo; Nadya Morozova; Thomas Robert

Patients with non-small cell lung cancer (NSCLC) are routinely treated with cytotoxic agents such as cisplatin. Through a genome-wide siRNA-based screen, we identified vitamin B6 metabolism as a central regulator of cisplatin responses in vitro and in vivo. By aggravating a bioenergetic catastrophe that involves the depletion of intracellular glutathione, vitamin B6 exacerbates cisplatin-mediated DNA damage, thus sensitizing a large panel of cancer cell lines to apoptosis. Moreover, vitamin B6 sensitizes cancer cells to apoptosis induction by distinct types of physical and chemical stress, including multiple chemotherapeutics. This effect requires pyridoxal kinase (PDXK), the enzyme that generates the bioactive form of vitamin B6. In line with a general role of vitamin B6 in stress responses, low PDXK expression levels were found to be associated with poor disease outcome in two independent cohorts of patients with NSCLC. These results indicate that PDXK expression levels constitute a biomarker for risk stratification among patients with NSCLC.

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Philippe Gailly

Université catholique de Louvain

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Bertrand Tombal

Cliniques Universitaires Saint-Luc

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Nadège Zanou

Université catholique de Louvain

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Christophe Beauloye

Cliniques Universitaires Saint-Luc

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Jean-Luc Gala

Université catholique de Louvain

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Louis Hue

Université catholique de Louvain

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Luc Bertrand

Université catholique de Louvain

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Magali Balteau

Université catholique de Louvain

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