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Exploiting the passenger ACO1-deficiency arising from 9p21 deletions to kill T-cell lymphoblastic neoplasia cells
Laura Gonzalez-Sanchez1,2,3, Maria A Cobos-Fernandez1,2, Pilar Lopez-Nieva1,2,3
1Department of Genome Dynamics and Function, Centro de Biología Molecular Severo Ochoa (CBMSO), Madrid, Spain.
Abstract:
Precursor T-cell lymphoblastic neoplasms are aggressive malignancies in need for more effective and specific therapeutic treatments. A significant fraction of these neoplasms harbor deletions on the locus 9p21, targeting the tumor suppressor CDKN2A but also deleting the aconitase 1 (ACO1) gene, a neighboring housekeeping gene involved in cytoplasm and mitochondrial metabolism. Here we show that reducing the aconitase activity with fluorocitrate decreases the viability of T-cell lymphoblastic neoplasia cells in correlation to the differential aconitase expression. The consequences of the treatment were evidenced in vitro using T-cell lymphoblastic neoplasia cell lines exhibiting 9p21 deletions and variable levels of ACO1 expression or activity. Similar results were observed in melanoma cell lines, suggesting a true potential for fluorocitrate in different cancer types. Notably, ectopic expression of ACO1 alleviated the susceptibility of cell lines to fluorocitrate and, conversely, knockdown experiments increased susceptibility of resistant cell lines. These findings were confirmed in vivo on athymic nude mice by using tumor xenografts derived from two T-cell lines with different levels of ACO1. Taken together, our results indicate that the non-targeted ACO1 deficiency induced by common deletions exerts a collateral cellular lethality that can be used as a novel therapeutic strategy in the treatment of several types of cancer.
Insights
Reducing aconitase activity with fluorocitrate shows promise for treating T-cell lymphoblastic neoplasms and melanoma. This approach targets collateral lethality from aconitase 1 (ACO1) gene loss in cancer cells.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Precursor T-cell lymphoblastic neoplasms are aggressive cancers.
- Many of these neoplasms have 9p21 deletions, affecting tumor suppressor CDKN2A and aconitase 1 (ACO1).
- ACO1 is crucial for cellular metabolism.
Purpose of the Study:
- To investigate fluorocitrate as a therapeutic agent targeting ACO1 activity.
- To explore the potential of exploiting ACO1 deficiency in cancer treatment.
Main Methods:
- In vitro studies using T-cell lymphoblastic neoplasia and melanoma cell lines with varying ACO1 levels.
- In vivo studies using tumor xenografts in athymic nude mice.
- Experiments involving ectopic ACO1 expression and ACO1 knockdown.
Main Results:
- Fluorocitrate treatment reduced the viability of cancer cells, correlating with ACO1 expression levels.
- Ectopic ACO1 expression conferred resistance, while ACO1 knockdown increased susceptibility to fluorocitrate.
- Therapeutic effects were confirmed in vivo.
Conclusions:
- Collateral lethality due to non-targeted ACO1 deficiency can be therapeutically exploited.
- Fluorocitrate represents a potential novel therapeutic strategy for T-cell lymphoblastic neoplasms and other cancers.
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