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Molecular sequelae of proteasome inhibition in human multiple myeloma cells
Nicholas Mitsiades1, Constantine S Mitsiades, Vassiliki Poulaki
1Jerome Lipper Multiple Myeloma Center, Department of Adult Oncology, Dana-Farber Cancer Institute, Harvard Medical School, Boston, MA 02115, USA.
Abstract:
The proteasome inhibitor PS-341 inhibits IkappaB degradation, prevents NF-kappaB activation, and induces apoptosis in several types of cancer cells, including chemoresistant multiple myeloma (MM) cells. PS-341 has marked clinical activity even in the setting of relapsed refractory MM. However, PS-341-induced apoptotic cascade(s) are not yet fully defined. By using gene expression profiling, we characterized the molecular sequelae of PS-341 treatment in MM cells and further focused on molecular pathways responsible for the anticancer actions of this promising agent. The transcriptional profile of PS-341-treated cells involved down-regulation of growth/survival signaling pathways, and up-regulation of molecules implicated in proapoptotic cascades (which are both consistent with the proapoptotic effect of proteasome inhibition), as well as up-regulation of heat-shock proteins and ubiquitin/proteasome pathway members (which can correspond to stress responses against proteasome inhibition). Further studies on these pathways showed that PS-341 decreases the levels of several antiapoptotic proteins and triggers a dual apoptotic pathway of mitochondrial cytochrome c release and caspase-9 activation, as well as activation of Jun kinase and a Fas/caspase-8-dependent apoptotic pathway [which is inhibited by a dominant negative (decoy) Fas construct]. Stimulation with IGF-1, as well as overexpression of Bcl-2 or constitutively active Akt in MM cells also modestly attenuates PS-341-induced cell death, whereas inhibitors of the BH3 domain of Bcl-2 family members or the heat-shock protein 90 enhance tumor cell sensitivity to proteasome inhibition. These data provide both insight into the molecular mechanisms of antitumor activity of PS-341 and the rationale for future clinical trials of PS-341, in combination with conventional and novel therapies, to improve patient outcome in MM.
Insights
The proteasome inhibitor PS-341 induces apoptosis in multiple myeloma (MM) cells by activating dual death pathways. This research clarifies PS-341
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- The proteasome inhibitor PS-341 (bortezomib) shows clinical activity in multiple myeloma (MM).
- The precise molecular mechanisms driving PS-341-induced apoptosis in MM remain incompletely understood.
- Understanding these pathways is crucial for optimizing therapeutic strategies.
Purpose of the Study:
- To elucidate the molecular sequelae of PS-341 treatment in MM cells using gene expression profiling.
- To identify key molecular pathways mediating the anticancer effects of PS-341.
- To explore potential combination therapies to enhance PS-341 efficacy.
Main Methods:
- Gene expression profiling of PS-341-treated MM cells.
- Analysis of apoptosis-related signaling pathways, including mitochondrial and death receptor pathways.
- Investigating the impact of modulating specific proteins (e.g., Bcl-2, Akt, HSP90) on PS-341 sensitivity.
Main Results:
- PS-341 treatment down-regulates growth/survival pathways and up-regulates proapoptotic molecules and stress response proteins (heat-shock proteins, ubiquitin/proteasome members).
- PS-341 decreases antiapoptotic proteins and activates a dual apoptotic cascade involving mitochondrial release of cytochrome c/caspase-9 and Fas/caspase-8 pathways.
- Inhibitors of BH3 domains and heat-shock protein 90 enhance MM cell sensitivity to PS-341, while IGF-1, Bcl-2, or Akt overexpression attenuate cell death.
Conclusions:
- PS-341 induces apoptosis in MM cells through distinct mitochondrial and death receptor-mediated pathways.
- The findings provide mechanistic insight into PS-341's antitumor activity.
- This study supports the rationale for combining PS-341 with other agents to improve outcomes in MM patients.