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Dive into the research topics where Mehdi Khaled is active.

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Featured researches published by Mehdi Khaled.


Journal of Cell Biology | 2005

Hypoxia-inducible factor 1α is a new target of microphthalmia-associated transcription factor (MITF) in melanoma cells

Roser Buscà; Edurne Berra; Cedric Gaggioli; Mehdi Khaled; Karine Bille; Barbara Marchetti; Raphaël Thyss; Giorgos Fitsialos; Lionel Larribere; Corine Bertolotto; Thierry Virolle; Pascal Barbry; Jacques Pouysségur; Gilles Ponzio; Robert Ballotti

In melanocytes and melanoma cells α-melanocyte stimulating hormone (α-MSH), via the cAMP pathway, elicits a large array of biological responses that control melanocyte differentiation and influence melanoma development or susceptibility. In this work, we show that cAMP transcriptionally activates Hif1a gene in a melanocyte cell–specific manner and increases the expression of a functional hypoxia-inducible factor 1α (HIF1α) protein resulting in a stimulation of Vegf expression. Interestingly, we report that the melanocyte-specific transcription factor, microphthalmia-associated transcription factor (MITF), binds to the Hif1a promoter and strongly stimulates its transcriptional activity. Further, MITF “silencing” abrogates the cAMP effect on Hif1a expression, and overexpression of MITF in human melanoma cells is sufficient to stimulate HIF1A mRNA. Our data demonstrate that Hif1a is a new MITF target gene and that MITF mediates the cAMP stimulation of Hif1a in melanocytes and melanoma cells. Importantly, we provide results demonstrating that HIF1 plays a pro-survival role in this cell system. We therefore conclude that the α-MSH/cAMP pathway, using MITF as a signal transducer and HIF1α as a target, might contribute to melanoma progression.


Molecular and Cellular Biology | 2017

Tfe3 and Tfeb transcriptionally regulate peroxisome proliferator-activated receptor γ2 expression in adipocytes and mediate adiponectin and glucose levels in mice

Nunciada Salma; Jun S. Song; Akinori Kawakami; Suprabha P. Devi; Mehdi Khaled; José M. Cacicedo; David E. Fisher

ABSTRACT Members of the MiT transcription factor family are pivotal regulators of several lineage-selective differentiation programs. We show that two of these, Tfeb and Tfe3, control the regulator of adipogenesis, peroxisome proliferator-activated receptor γ2 (Pparγ2). Knockdown of Tfeb or Tfe3 expression during in vitro adipogenesis causes dramatic downregulation of Pparγ2 expression as well as adipogenesis. Additionally, we found that these factors regulate Pparγ2 in mature adipocytes. Next, we demonstrated that Tfeb and Tfe3 act directly by binding to consensus E-boxes within the Pparγ transcriptional regulatory region. This transcriptional control also exists in vivo, as we discovered that wild-type mice in the fed state increased their expression of Tfe3, Tf3b, and Pparγ in white adipose tissue. Furthermore, Tfe3 knockout (Tfe3KO) mice in the fed state failed to upregulate Pparγ and the adiponectin gene, a Pparγ-dependent gene, confirming the in vivo role for Tfe3. Lastly, we found that blood glucose is elevated and serum adiponectin levels are suppressed in the Tfe3KO mice, indicating that the Tfe3/Tfeb/Pparγ2 axis may contribute to whole-body energy balance. Thus, we offer new insights into the upstream regulation of Pparγ by Tfe3/Tf3b and propose that targeting these transcription factors may offer opportunities to complement existing approaches for the treatment of diseases that have dysregulated energy metabolism.


Journal of Immunology | 2017

Cutting Edge: NANOG Activates Autophagy under Hypoxic Stress by Binding to BNIP3L Promoter

Meriem Hasmim; Bassam Janji; Mehdi Khaled; Muhammad Zaeem Noman; Fawzia Louache; Didier Bordereaux; Abdou Abderamane; Véronique Baud; Fathia Mami-Chouaib; Salem Chouaib

Hypoxia upregulates the core pluripotency factors NANOG, SOX2, and OCT4, associated with tumor aggressiveness and resistance to conventional anticancer treatments. We have previously reported that hypoxia-induced NANOG contributed in vitro to tumor cell resistance to autologous-specific CTL and in vivo to the in situ recruitment of immune-suppressive cells. In this study, we investigated the mechanisms underlying NANOG-mediated tumor cell resistance to specific lysis under hypoxia. We demonstrated the tumor-promoting effect of hypoxia on tumor initiation into immunodeficient mice using human non–small lung carcinoma cells. We next showed a link between NANOG and autophagy activation under hypoxia because inhibition of NANOG decreased autophagy in tumor cells. Chromatin immunoprecipitation and luciferase reporter assays revealed a direct binding of NANOG to a transcriptionally active site in a BNIP3L enhancer sequence. These data establish a new link between the pluripotency factor NANOG and autophagy involved in resistance to CTL under hypoxia.


bioRxiv | 2017

OCT4 Impedes Cell Fate Redirection By The Melanocyte Lineage Master Regulator MITF

Danna Sheinboim; Itay Maza; Iris Dror; Shivang Parikh; Vladislav Krupalnik; Rachel E. Bell; Asaf Zviran; Yusuke Suita; Ofir Hakim; Yael Mandel Gutfreund; Mehdi Khaled; Jacob Hanna; Carmit Levy

Ectopic expression of lineage master regulators induces transdifferentiation. Whether cell fate transitions can be induced during various developmental stages has never been systemically examined. Here we discovered that amongst different developmental stages, embryonic stem cells (ESCs) were resistant to cell fate conversion induced by the melanocyte lineage master regulator MITF. We generated a transgenic system and found that in ESCs, the pluripotency master regulator, OCT4, counteracts pro-differentiation induced by MITF by physical interference with MITF transcriptional activity. We further found that ESCs must be released from OCT4-maintained pluripotency prior to ectopically induced differentiation. Moreover, OCT4 induction in various differentiated cells repressed their lineage identity in vivo. Alongside, chromatin architecture combined with ChIP-seq analysis suggested that OCT4 competes with various lineage master regulators for binding promoters and enhancers. Our analysis reveals pluripotency and transdifferentiation regulatory principles and could open new opportunities in the field of regenerative medicine.


Journal of Biological Chemistry | 2002

Glycogen Synthase Kinase 3β Is Activated by cAMP and Plays an Active Role in the Regulation of Melanogenesis

Mehdi Khaled; Lionel Larribere; Karine Bille; Edith Aberdam; Jean Paul Ortonne; Robert Ballotti; Corine Bertolotto


Journal of Investigative Dermatology | 2003

Microphthalmia Associated Transcription Factor Is a Target of the Phosphatidylinositol-3-Kinase Pathway

Mehdi Khaled; Lionel Larribere; Karine Bille; Jean-Paul Ortonne; Robert Ballotti; Corine Bertolotto


Molecular Cell | 2015

Interactions of Melanoma Cells with Distal Keratinocytes Trigger Metastasis via Notch Signaling Inhibition of MITF

Tamar Golan; Arielle R. Messer; Aya Amitai-Lange; Ze’ev Melamed; Reut Ohana; Rachel E. Bell; Oxana Kapitansky; Galya Lerman; Shoshana Greenberger; Mehdi Khaled; Nira Amar; Jean Albrengues; Cedric Gaggioli; Pinchas Gonen; Yuval Tabach; David Sprinzak; Ruby Shalom-Feuerstein; Carmit Levy


Archive | 2007

Methods and compositions for modulating melanogenesis by using a mclr agonist

David E. Fisher; John A. D'Orazio; Mehdi Khaled


Journal of Genetics and Genomics | 2016

Parkin Somatic Mutations Link Melanoma and Parkinson's Disease

Lotan Levin; Shani Srour; Jared J. Gartner; Oxana Kapitansky; Nouar Qutob; Shani Dror; Tamar Golan; Roy Dayan; Ronen Brener; Tamar Ziv; Mehdi Khaled; Ora Schueler-Furman; Yardena Samuels; Carmit Levy


Nature Communications | 2017

OCT4 impedes cell fate redirection by the melanocyte lineage master regulator MITF in mouse ESCs

Danna Sheinboim; Itay Maza; Iris Dror; Shivang Parikh; Vladislav Krupalnik; Rachel E. Bell; Asaf Zviran; Yusuke Suita; Ofir Hakim; Yael Mandel-Gutfreund; Mehdi Khaled; Jacob Hanna; Carmit Levy

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Iris Dror

University of Southern California

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