| Literature DB >> 34316334 |
Anjan Thakurta1, William E Pierceall1, Michael D Amatangelo1, Erin Flynt1, Amit Agarwal2.
Abstract
Multiple Myeloma (MM) is an incurable malignancy with current treatment choices primarily comprising combination regimens implemented with a risk-adapted approach. Cereblon (CRBN)-targeting immunomodulatory agents (IMiDs®) lenalidomide (LEN) and pomalidomide (POM) play a central role in combination regimens due to their pleiotropic antitumor/immunomodulatory mechanisms that synergize with many anti-myeloma approved or developmental agents. Currently, more potent next generation cereblon E3 ligase modulators (CELMoDs®) - iberdomide (IBER) and CC-92480 are in clinical development. With an expanding number of active agents/therapeutic modalities and a myriad of combinatorial possibilities, physicians and drug developers share an opportunity and challenge to combine and sequence therapies to maximize long-term patient benefit. Understanding drug mechanisms and their application in combination settings as well as the unique disease biology considerations from newly diagnosed (NDMM), relapsed/refractory (RRMM), and maintenance settings will be vital to guide the development of future MM therapies centered on a backbone of IMiD or CELMoD agents. Key aspects of drug activity are critical to consider while evaluating potential combinations: direct antitumor effects, indirect antitumor cytotoxicity, immune surveillance, and adverse side effects. In addition, the treatment journey from NDMM to early and late MM relapses are connected to genomic and immune changes associated with disease progression and acquisition of resistance mechanisms. Based on the types of combinations used and the goals of therapy, insights into mechanisms of drug activity and resistance may inform treatment decisions for patients with MM. Here we focus on the evolving understanding of the molecular mechanisms of CRBN-binding drugs and how they can be differentiated and suggest a strategic framework to optimize efficacy and safety of combinations using these agents. Copyright:Entities:
Keywords: apoptosis; combinations; immunomodulatory agents; multiple myeloma; protein degradation
Year: 2021 PMID: 34316334 PMCID: PMC8310669 DOI: 10.18632/oncotarget.27973
Source DB: PubMed Journal: Oncotarget ISSN: 1949-2553
Figure 1Differentiation of IMiDs and CELMoDs.
Shown are structures of IMiDs and CELMoDs in myeloma clinical development. Mechanism of action differentiation is primarily derived from the physical interactions with the CRBN/DDB1 complex that may exert regulation of unique and overlapping substrate preference and degradation kinetics and modulation of distinct cell types.
Figure 2Hallmarks of CELMoDs desirable traits and rational combinations in MM settings.
(A) CELMoDs may display distinct MoA by differential modulation of distinct cell types. (B) The ability to differentially act on distinct cell types may provide rational combinations based on enhanced potencies and mitigated safety signals. (C) The properties may be best utilized for ideal positioning and sequencing in specific lines of therapy of the patient journey.