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The Novel Anti-Cancer Agent, SpiD3, Is Cytotoxic in CLL Cells Resistant to Ibrutinib or Venetoclax
Alexandria P Eiken1, Elizabeth Schmitz1, Erin M Drengler1
1Eppley Institute for Research in Cancer and Allied Diseases, University of Nebraska Medical Center, Omaha, NE 68198, USA.
Background:
B-cell receptor (BCR) signaling is a central driver in chronic lymphocytic leukemia (CLL), along with the activation of pro-survival pathways (e.g., NF-κB) and aberrant anti-apoptotic mechanisms (e.g., BCL2) culminating to CLL cell survival and drug resistance. Front-line targeted therapies such as ibrutinib (BTK inhibitor) and venetoclax (BCL2 inhibitor) have radically improved CLL management. Yet, persisting CLL cells lead to relapse in ~20% of patients, signifying the unmet need of inhibitor-resistant refractory CLL. SpiD3 is a novel spirocyclic dimer of analog 19 that displays NF-κB inhibitory activity and preclinical anti-cancer properties. Recently, we have shown that SpiD3 inhibits CLL cell proliferation and induces cytotoxicity by promoting futile activation of the unfolded protein response (UPR) pathway and generation of reactive oxygen species (ROS), resulting in the inhibition of protein synthesis in CLL cells.
Methods:
We performed RNA-sequencing using CLL cells rendered resistant to ibrutinib and venetoclax to explore potential vulnerabilities in inhibitor-resistant and SpiD3-treated CLL cells.
Results:
The transcriptomic analysis of ibrutinib- or venetoclax-resistant CLL cell lines revealed ferroptosis, UPR signaling, and oxidative stress to be among the top pathways modulated by SpiD3 treatment. By examining SpiD3-induced protein aggregation, ROS production, and ferroptosis in inhibitor-resistant CLL cells, our findings demonstrate cytotoxicity following SpiD3 treatment in cell lines resistant to current front-line CLL therapeutics.
Conclusions:
Our results substantiate the development of SpiD3 as a novel therapeutic agent for relapsed/refractory CLL disease.
Insights
SpiD3 effectively targets inhibitor-resistant chronic lymphocytic leukemia (CLL) cells by inducing ferroptosis, UPR signaling, and oxidative stress. This novel agent shows promise for treating relapsed or refractory CLL, addressing a critical unmet need.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- B-cell receptor (BCR) signaling drives chronic lymphocytic leukemia (CLL) survival and drug resistance.
- Current therapies like ibrutinib and venetoclax improve management but do not eliminate all CLL cells, leading to relapse.
- A significant unmet need exists for treating inhibitor-resistant, refractory CLL.
Purpose of the Study:
- To investigate the efficacy of SpiD3, a novel NF-κB inhibitor, against CLL cells resistant to ibrutinib and venetoclax.
- To explore the molecular mechanisms underlying SpiD3's cytotoxicity in resistant CLL cells.
- To identify potential therapeutic vulnerabilities in inhibitor-resistant CLL.
Main Methods:
- RNA-sequencing was performed on CLL cells made resistant to ibrutinib and venetoclax.
- CLL cells were treated with SpiD3 to assess its effects.
- Analysis included transcriptomic profiling, protein aggregation assays, reactive oxygen species (ROS) production measurement, and ferroptosis assessment.
Main Results:
- SpiD3 treatment modulated ferroptosis, unfolded protein response (UPR) signaling, and oxidative stress pathways in resistant CLL cells.
- SpiD3 induced protein aggregation, increased ROS production, and promoted ferroptosis in inhibitor-resistant CLL cells.
- These findings demonstrate SpiD3's cytotoxicity against CLL cell lines resistant to current front-line therapies.
Conclusions:
- SpiD3 exhibits significant anti-cancer properties against refractory CLL.
- The study substantiates SpiD3's potential as a novel therapeutic agent for relapsed/refractory CLL.
- SpiD3 offers a promising new avenue for patients with limited treatment options.
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