2025 Update of Cellular Immunotherapy for Plasma Cell Disorders

Ece Vural1, Merak Beksaç2

  • 1Yüksek İhtisas University, Ankara Liv Hospital, Department of Hematology, Ankara, Türkiye

Insights

Chimeric antigen receptor T-cell (CAR-T) therapies show promise for multiple myeloma (MM) and other blood cancers. Despite challenges, ongoing research and new targets like BCMA and GPRC5D are expanding CAR-T treatment options.

Area of Science:

  • Hematology
  • Immunotherapy
  • Oncology

Background:

  • Despite advancements in multiple myeloma (MM) treatment, novel therapies are needed for high-risk patients.
  • Chimeric antigen receptor T-cell (CAR-T) therapy has emerged as a significant advancement in MM treatment.

Purpose of the Study:

  • To review current CAR-T targets and emerging therapies for multiple myeloma and related conditions.
  • To discuss the challenges and future directions of CAR-T cell therapy.

Main Methods:

  • Review of existing literature on CAR-T cell therapies targeting BCMA, GPRC5D, and other molecules.
  • Analysis of clinical trial data and real-world evidence for approved and investigational CAR-T products.
  • Exploration of novel CAR-T designs, including dual-targeting and academic CAR-T initiatives.

Main Results:

  • FDA-approved anti-BCMA CAR-T therapies (Ide-cel, Cilta-cel) show efficacy in relapsed/refractory MM (RRMM).
  • Emerging CAR-T targets (GPRC5D, FcRH5, SLAMF7, TACI) and novel constructs (Fast-CAR, in-vivo proliferation) are under investigation.
  • Academic CAR-T therapies demonstrate comparable efficacy and safety to commercial products, offering cost-effectiveness.
  • CAR-T research is expanding to smoldering MM (SMM) and AL amyloidosis, with promising results for high-risk SMM and AL amyloidosis.

Conclusions:

  • CAR-T therapy is an evolving and effective treatment modality for MM and other hematologic malignancies.
  • Overcoming challenges through combination therapies and novel strategies will further enhance CAR-T efficacy.
  • Future CAR-T applications are anticipated in earlier disease phases, with gene editing technologies like CRISPR playing a key role.

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