Person: Puissant, Alexandre
Email Address
AA Acceptance Date
Birth Date
Research Projects
Organizational Units
Job Title
Last Name
First Name
Name
Search Results
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, FredericVelcade 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, FredericMultiple 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.