Non-canonical NFκB mutations reinforce pro-survival TNF response in multiple myeloma through an autoregulatory

P Roy1, T Mukherjee1, B Chatterjee1

  • 1Systems Immunology Laboratory, National Institute of Immunology, New Delhi, India.

Oncogene
|September 20, 2016
PubMed

Insights

Non-canonical NFκB mutations in multiple myeloma enhance drug resistance by prolonging TNF-induced RelB:p50 activity, independent of RelA, leading to TRAIL-refractory states.

Area of Science:

  • Oncology
  • Molecular Biology
  • Immunology

Background:

  • Environmental drug resistance is a major challenge in multiple myeloma treatment.
  • Tumor necrosis factor (TNF) signaling activates nuclear factor-κB (NFκB) to promote myeloma cell survival and drug resistance.
  • The role of non-canonical NFκB signaling in multiple myeloma drug resistance was previously unclear.

Purpose of the Study:

  • To investigate the role of non-canonical NFκB pathway aberrations in multiple myeloma drug resistance.
  • To elucidate the specific NFκB complexes and mechanisms involved in TNF-induced pro-survival signaling in myeloma cells with non-canonical mutations.

Main Methods:

  • Analysis of NFκB signaling pathways in multiple myeloma cells with non-canonical mutations.
  • Investigation of TNF-induced degradation of IκBα and p100.
  • Assessment of RelB:p50 NFκB complex formation and activity.
  • Correlation of RelB mRNA expression with pro-survival factors and therapeutic resistance in myeloma patients.

Main Results:

  • Myeloma-associated non-canonical NFκB aberrations reinforce TNF signaling, causing a TRAIL-refractory state.
  • Mutations led to complete p100 degradation, repositioning RelB under IκBα control, enabling early RelB:p50 NFκB activity upon TNF stimulation.
  • Autoregulatory RelB synthesis prolonged TNF-induced RelB:p50 activity.
  • TNF-activated RelB:p50 dimers, not RelA, were essential for NFκB-dependent pro-survival gene expression and apoptosis suppression.
  • High RelB mRNA levels in patients correlated with increased pro-survival factors and therapeutic resistance.

Conclusions:

  • Cancer-associated non-canonical NFκB mutations perpetuate TNF-induced pro-survival signaling via autoregulatory RelB control in multiple myeloma.
  • This mechanism exacerbates environmental drug resistance by creating a protracted TRAIL-refractory state.
  • Targeting the RelB:p50 complex may offer a novel therapeutic strategy for overcoming drug resistance in multiple myeloma.

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