: Mitochondrial dynamics is a key regulator of cellular homeostasis, orchestrating metabolic reprogramming that fuels tumor progression and treatment resistance. In multiple myeloma (MM), however, the functional relevance of mitochondrial remodeling has not been fully defined. Using ultrastructural analyses, we reveal that MM cells display a highly fragmented mitochondrial network, a phenotype further exacerbated in both cell lines and primary MM cells resistant to proteasome inhibitors. Transcriptomic profiling across multiple patient-derived datasets consistently demonstrated upregulation of DNM1L gene, which encodes the mitochondrial fission GTPase DRP1, particularly in relapsed and refractory MM, and revealed a significant association with inferior overall survival. Disrupting mitochondrial fission, either through genetic targeting of DNM1L or pharmacologic inhibition of DRP1 with the selective small molecule inhibitor Drpitor1a, resulted in pronounced mitochondrial dysfunction, impaired oxidative phosphorylation, and potent anti-myeloma activity in vitro, culminating in a hybrid cell death program with a predominant apoptotic component accompanied by ferroptotic features. These effects were recapitulated in vivo in a bortezomib-resistant xenograft model, where either DNM1L depletion or DRP1 inhibition produced similar outcomes. Mechanistically, the transcription factor c-MYC upregulated DNM1L expression, and DRP1-dependent mitochondrial fragmentation sustained MYC-driven oxidative metabolism and lipid synthesis. Altogether, these findings establish aberrant mitochondrial fission as a pathogenic hallmark of MM and highlight DRP1 inhibition as a promising therapeutic approach, especially for relapsed or refractory disease.

DRP1-mediated mitochondrial fragmentation is a druggable vulnerability in multiple myeloma

Torcasio, Roberta;Valentino, Ilenia;Gallo, Alessia;De Francesco, Ernestina Marianna;Martino, Enrica Antonia;Gentile, Massimo;Amodio, Nicola
2026-01-01

Abstract

: Mitochondrial dynamics is a key regulator of cellular homeostasis, orchestrating metabolic reprogramming that fuels tumor progression and treatment resistance. In multiple myeloma (MM), however, the functional relevance of mitochondrial remodeling has not been fully defined. Using ultrastructural analyses, we reveal that MM cells display a highly fragmented mitochondrial network, a phenotype further exacerbated in both cell lines and primary MM cells resistant to proteasome inhibitors. Transcriptomic profiling across multiple patient-derived datasets consistently demonstrated upregulation of DNM1L gene, which encodes the mitochondrial fission GTPase DRP1, particularly in relapsed and refractory MM, and revealed a significant association with inferior overall survival. Disrupting mitochondrial fission, either through genetic targeting of DNM1L or pharmacologic inhibition of DRP1 with the selective small molecule inhibitor Drpitor1a, resulted in pronounced mitochondrial dysfunction, impaired oxidative phosphorylation, and potent anti-myeloma activity in vitro, culminating in a hybrid cell death program with a predominant apoptotic component accompanied by ferroptotic features. These effects were recapitulated in vivo in a bortezomib-resistant xenograft model, where either DNM1L depletion or DRP1 inhibition produced similar outcomes. Mechanistically, the transcription factor c-MYC upregulated DNM1L expression, and DRP1-dependent mitochondrial fragmentation sustained MYC-driven oxidative metabolism and lipid synthesis. Altogether, these findings establish aberrant mitochondrial fission as a pathogenic hallmark of MM and highlight DRP1 inhibition as a promising therapeutic approach, especially for relapsed or refractory disease.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.11770/412137
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