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Puissant, Alexandre

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Puissant

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Alexandre

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Puissant, Alexandre

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Now showing 1 - 2 of 2
  • Publication

    The small heat shock protein B8 (HSPB8) confers resistance to bortezomib by promoting autophagic removal of misfolded proteins in multiple myeloma cells

    (Impact Journals LLC, 2014) Hamouda, Mohamed-Amine; Belhacene, Nathalie; Puissant, Alexandre; Colosetti, Pascal; Robert, Guillaume; Jacquel, Arnaud; Mari, Bernard; Auberger, Patrick; Luciano, Frederic

    Velcade is one of the inescapable drug to treat patient suffering from multiple myeloma (MM) and resistance to this drug represents a major drawback for patients. However, the mechanisms underlying velcade resistance remain incompletely understood. We derived several U266 MM cell clones that resist to velcade. U266-resistant cells were resistant to velcade-induced cell death but exhibited a similar sensitivity to various proapoptotic stimuli. Careful analysis of proteosomal subunits and proteasome enzymatic activities showed that neither the composition nor the activity of the proteasome was affected in velcade-resistant cells. Elimination of velcade-induced poly-ubiquitinated proteins and protein aggregates was drastically stimulated in the resistant cells and correlated with increased cell survival. Inhibition of the lysosomal activity in velcade-resistant cells resulted in an increase of cell aggregates and decrease survival, indicating that aggregates are eliminated through lysosomal degradation. In addition, pangenomic profiling of velcade-sensitive and resistant cells showed that the small heat shock protein HSPB8 was overexpressed in resistant cells. Finally, gain and loss of function experiment demonstrated that HSPB8 is a key factor for velcade resistance. In conclusion, HSPB8 plays an important role for the elimination of aggregates in velcade-resistant cells that contributes to their enhanced survival.

  • Publication

    BCL-B (BCL2L10) is overexpressed in patients suffering from multiple myeloma (MM) and drives an MM-like disease in transgenic mice

    (The Rockefeller University Press, 2016) Hamouda, Mohamed-Amine; Jacquel, Arnaud; Robert, Guillaume; Puissant, Alexandre; Richez, Valentine; Cassel, Romeo; Fenouille, Nina; Roulland, Sandrine; Gilleron, Jerome; Griessinger, Emmanuel; Dubois, Alix; Bailly-Maitre, Beatrice; Goncalves, Diogo; Mallavialle, Aude; Colosetti, Pascal; Marchetti, Sandrine; Amiot, Martine; Gomez-Bougie, Patricia; Rochet, Nathalie; Deckert, Marcel; Avet-Loiseau, Herve; Hofman, Paul; Karsenti, Jean-Michel; Jeandel, Pierre-Yves; Blin-Wakkach, Claudine; Nadel, Bertrand; Cluzeau, Thomas; Anderson, Kenneth; Fuzibet, Jean-Gabriel; Auberger, Patrick; Luciano, Frederic

    Multiple myeloma (MM) evolves from a premalignant condition known as monoclonal gammopathy of undetermined significance (MGUS). However, the factors underlying the malignant transformation of plasmocytes in MM are not fully characterized. We report here that Eµ-directed expression of the antiapoptotic Bcl-B protein in mice drives an MM phenotype that reproduces accurately the human disease. Indeed, with age, Eµ-bcl-b transgenic mice develop the characteristic features of human MM, including bone malignant plasma cell infiltration, a monoclonal immunoglobulin peak, immunoglobulin deposit in renal tubules, and highly characteristic bone lytic lesions. In addition, the tumors are serially transplantable in irradiated wild-type mice, underlying the tumoral origin of the disease. Eµ-bcl-b plasmocytes show increased expression of a panel of genes known to be dysregulated in human MM pathogenesis. Treatment of Eµ-bcl-b mice with drugs currently used to treat patients such as melphalan and VELCADE efficiently kills malignant plasmocytes in vivo. Finally, we find that Bcl-B is overexpressed in plasmocytes from MM patients but neither in MGUS patients nor in healthy individuals, suggesting that Bcl-B may drive MM. These findings suggest that Bcl-B could be an important factor in MM disease and pinpoint Eµ-bcl-b mice as a pertinent model to validate new therapies in MM.