TY - JOUR
T1 - Loss of NOL10 leads to impaired disease progression of NUP98::DDX10 leukemia
AU - Shima, Yutaka
AU - Yamagata, Kazutsune
AU - Kuroki, Yoko
AU - Sasaki, Kazuki
AU - Aikawa, Yukiko
AU - Kitabayashi, Issay
N1 - Publisher Copyright:
© The Author(s), under exclusive licence to Springer Nature Limited 2025.
PY - 2025/6
Y1 - 2025/6
N2 - NUP98 rearrangements associated with acute myeloid leukemia and myelodysplastic syndromes generate NUP98-fusion proteins. One such fusion protein, NUP98::DDX10, contains the putative RNA helicase DDX10. The molecular mechanism by which NUP98::DDX10 induces leukemia is not well understood. Here, we show that 24 amino acids within the DDX10 moiety of NUP98::DDX10 are crucial for cell immortalization and leukemogenesis. NOL10, nucleolar protein 10, interacts with the 24 amino acids, and NOL10 is a critical dependency of NUP98::DDX10 leukemia development. Studies in a mouse model of NUP98::DDX10 leukemia showed that loss of Nol10 impaired disease progression and improved survival. We also identified a novel function of NOL10 in that it acts cooperatively with NUP98::DDX10 to regulate serine biosynthesis pathways and stabilize ATF4 mRNA. Collectively, these findings suggest that NOL10 is a critical regulator of NUP98::DDX10 leukemia and that targeting NOL10 (or the serine synthesis pathway regulated by NOL10) may be an effective therapeutic approach.
AB - NUP98 rearrangements associated with acute myeloid leukemia and myelodysplastic syndromes generate NUP98-fusion proteins. One such fusion protein, NUP98::DDX10, contains the putative RNA helicase DDX10. The molecular mechanism by which NUP98::DDX10 induces leukemia is not well understood. Here, we show that 24 amino acids within the DDX10 moiety of NUP98::DDX10 are crucial for cell immortalization and leukemogenesis. NOL10, nucleolar protein 10, interacts with the 24 amino acids, and NOL10 is a critical dependency of NUP98::DDX10 leukemia development. Studies in a mouse model of NUP98::DDX10 leukemia showed that loss of Nol10 impaired disease progression and improved survival. We also identified a novel function of NOL10 in that it acts cooperatively with NUP98::DDX10 to regulate serine biosynthesis pathways and stabilize ATF4 mRNA. Collectively, these findings suggest that NOL10 is a critical regulator of NUP98::DDX10 leukemia and that targeting NOL10 (or the serine synthesis pathway regulated by NOL10) may be an effective therapeutic approach.
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U2 - 10.1038/s41375-025-02607-5
DO - 10.1038/s41375-025-02607-5
M3 - Article
AN - SCOPUS:105003182643
SN - 0887-6924
VL - 39
SP - 1368
EP - 1379
JO - Leukemia
JF - Leukemia
IS - 6
ER -