Inactivation of ribosomal protein L22 promotes transformation by induction of the stemness factor, Lin28B
Inactivation of ribosomal protein L22 promotes transformation by induction of the stemness factor, Lin28B
Abstract Ribosomal protein (RP) mutations in diseases such as 5q− syndrome both disrupt hematopoiesis and increase the risk of developing hematologic malignancy. However, the mechanism by which RP mutations increase cancer risk has remained an important unanswered question. We show here that monoallelic, germline inactivation of the ribosomal protein L22 (Rpl22) predisposes T-lineage progenitors to transformation. Indeed, RPL22 was found to be inactivated in ∼ 10% of human T-acute lymphoblastic leukemias. Moreover, monoallelic loss of Rpl22 accelerates development of thymic lymphoma in both a mouse model of T-cell malignancy and in acute transformation assays in vitro. We show that Rpl22 inactivation enhances transformation potential through induction of the stemness factor, Lin28B. Our finding that Rpl22 inactivation promotes transformation by inducing expression of Lin28B provides the first insight into the mechanistic basis by which mutations in Rpl22, and perhaps some other RP genes, increases cancer risk.
- Boston Children's Hospital United States
- Dana-Farber Cancer Institute United States
- Fox Chase Cancer Center United States
- Temple University Health System United States
- Lexicon Pharmaceuticals United States
Ribosomal Proteins, T-Lymphocytes, Immunoblotting, RNA-Binding Proteins, Electrophoretic Mobility Shift Assay, Mice, Transgenic, Flow Cytometry, Real-Time Polymerase Chain Reaction, DNA-Binding Proteins, Mice, Cell Transformation, Neoplastic, Hematologic Neoplasms, Animals, Humans, Gene Silencing, Oligonucleotide Array Sequence Analysis
Ribosomal Proteins, T-Lymphocytes, Immunoblotting, RNA-Binding Proteins, Electrophoretic Mobility Shift Assay, Mice, Transgenic, Flow Cytometry, Real-Time Polymerase Chain Reaction, DNA-Binding Proteins, Mice, Cell Transformation, Neoplastic, Hematologic Neoplasms, Animals, Humans, Gene Silencing, Oligonucleotide Array Sequence Analysis
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