DNA damage resistance is a major barrier to effective DNA-damaging therapy in multiple myeloma (MM). To discover mechanisms through which MM cells overcome DNA damage, we investigate how MM cells become resistant to antisense oligonucleotide (ASO) therapy targeting Interleukin enhancer binding factor 2 (ILF2), a DNA damage regulator that is overexpressed in 70% of MM patients whose disease has progressed after standard therapies have failed. Here, we show that MM cells undergo adaptive metabolic rewiring to restore energy balance and promote survival in response to DNA damage activation. Using a CRISPR/Cas9 screening strategy, we identify the mitochondrial DNA repair protein DNA2, whose loss of function suppresses MM cells' ability to overcome ILF2 ASO-induced DNA damage, as being essential to counteracting oxidative DNA damage. Our study reveals a mechanism of vulnerability of MM cells that have an increased demand for mitochondrial metabolism upon DNA damage activation.Multiple myeloma (MM) cancer cells can develop different resistance mechanisms to therapies inducing DNA-damage. Here, the authors show that the mitochondrial DNA repair protein DNA2 promotes MM cells survival after DNA damage-induced metabolic reprogramming.

Targeting DNA2 overcomes metabolic reprogramming in multiple myeloma / Thongon, Natthakan; Ma, Feiyang; Baran, Natalia; Lockyer, Pamela; Liu, Jintan; Jackson, Christopher; Rose, Ashley; Furudate, Ken; Wildeman, Bethany; Marchesini, Matteo; Marchica, Valentina; Storti, Paola; Todaro, Giannalisa; Ganan-Gomez, Irene; Adema, Vera; Rodriguez-Sevilla, Juan Jose; Qing, Yun; Ha, Min Jin; Fonseca, Rodrigo; Stein, Caleb; Class, Caleb; Tan, Lin; Attanasio, Sergio; Garcia-Manero, Guillermo; Giuliani, Nicola; Berrios Nolasco, David; Santoni, Andrea; Cerchione, Claudio; Bueso-Ramos, Carlos; Konopleva, Marina; Lorenzi, Philip; Takahashi, Koichi; Manasanch, Elisabet; Sammarelli, Gabriella; Kanagal-Shamanna, Rashmi; Viale, Andrea; Chesi, Marta; Colla, Simona. - In: NATURE COMMUNICATIONS. - ISSN 2041-1723. - 15:1(2024). [10.1038/s41467-024-45350-8]

Targeting DNA2 overcomes metabolic reprogramming in multiple myeloma

Marchesini, Matteo;Marchica, Valentina;Storti, Paola;Todaro, Giannalisa;Giuliani, Nicola;Santoni, Andrea;Sammarelli, Gabriella;Colla, Simona
2024-01-01

Abstract

DNA damage resistance is a major barrier to effective DNA-damaging therapy in multiple myeloma (MM). To discover mechanisms through which MM cells overcome DNA damage, we investigate how MM cells become resistant to antisense oligonucleotide (ASO) therapy targeting Interleukin enhancer binding factor 2 (ILF2), a DNA damage regulator that is overexpressed in 70% of MM patients whose disease has progressed after standard therapies have failed. Here, we show that MM cells undergo adaptive metabolic rewiring to restore energy balance and promote survival in response to DNA damage activation. Using a CRISPR/Cas9 screening strategy, we identify the mitochondrial DNA repair protein DNA2, whose loss of function suppresses MM cells' ability to overcome ILF2 ASO-induced DNA damage, as being essential to counteracting oxidative DNA damage. Our study reveals a mechanism of vulnerability of MM cells that have an increased demand for mitochondrial metabolism upon DNA damage activation.Multiple myeloma (MM) cancer cells can develop different resistance mechanisms to therapies inducing DNA-damage. Here, the authors show that the mitochondrial DNA repair protein DNA2 promotes MM cells survival after DNA damage-induced metabolic reprogramming.
2024
Targeting DNA2 overcomes metabolic reprogramming in multiple myeloma / Thongon, Natthakan; Ma, Feiyang; Baran, Natalia; Lockyer, Pamela; Liu, Jintan; Jackson, Christopher; Rose, Ashley; Furudate, Ken; Wildeman, Bethany; Marchesini, Matteo; Marchica, Valentina; Storti, Paola; Todaro, Giannalisa; Ganan-Gomez, Irene; Adema, Vera; Rodriguez-Sevilla, Juan Jose; Qing, Yun; Ha, Min Jin; Fonseca, Rodrigo; Stein, Caleb; Class, Caleb; Tan, Lin; Attanasio, Sergio; Garcia-Manero, Guillermo; Giuliani, Nicola; Berrios Nolasco, David; Santoni, Andrea; Cerchione, Claudio; Bueso-Ramos, Carlos; Konopleva, Marina; Lorenzi, Philip; Takahashi, Koichi; Manasanch, Elisabet; Sammarelli, Gabriella; Kanagal-Shamanna, Rashmi; Viale, Andrea; Chesi, Marta; Colla, Simona. - In: NATURE COMMUNICATIONS. - ISSN 2041-1723. - 15:1(2024). [10.1038/s41467-024-45350-8]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11381/2979613
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