Molecular Mechanisms and Therapeutic Targeting of Ribosome Assembly

dc.contributor.authorSjövall, Daniel
dc.date.accessioned2025-08-28T13:34:25Z
dc.date.available2025-08-28T13:34:25Z
dc.date.issued2025-08-28
dc.description.abstractProtein synthesis is a tightly regulated cellular process regulated by major intracellular signaling pathways. In cancer, including acute myeloid leukemia (AML), these pathways are frequently dysregulated. Despite this, the role of protein synthesis control in AML remains incompletely understood. Ribosome assembly, where ribosomal subunits form a functional ribosome, is essential for protein synthesis. Disruption of this process causes Shwachman-Diamond Syndrome (SDS), a developmental disorder affecting multiple organs, underscoring the critical need for precise protein synthesis regulation. Here we show that immature fractions of leukemia cells have increased protein synthesis and ribosome biogenesis. Disrupting ribosome assembly in AML cells using a transgenic mouse model sharply reduced leukemia burden and prolonged survival. Single-cell RNA sequencing (scRNA-seq) revealed that leukemia cells adapt by upregulating ribosome biogenesis and downregulating myeloid transcription factors. Building on this, we set out to assess the effect of the clinically relevant protein synthesis inhibitor homoharringtonine. Transplantation assays showed improved survival without affecting normal hematopoietic stem cells counts. scRNA-seq revealed increased ribosome biogenesis, cell cycle activity, and upregulation of Myc and its targets in treatment-resistant leukemia cells. We examined ribosome assembly in the context of SDS using RNA and polysome-sequencing as well as subcellular fractionation, revealing a novel layer of spatial regulation. Dysregulation of key ribosome assembly players SBDS and eIF6 leads to a relative increase in translation of endoplasmic reticulum-targeted mRNAs. This shift is accompanied by a transcriptional adaptation characterized by increased ribosome biogenesis and downregulation of NMNAT2. This work validates protein synthesis and ribosome assembly as relevant therapeutic targets in AML. Additionally, by exploring the role of ribosome assembly in an SDS-like context, we add to the understanding of the cell’s response to insults to the translational machinery. Together, these findings highlight strategies to manipulate ribosomal machinery, either by correcting defects or exploiting them.sv
dc.gup.defencedate2025-09-19
dc.gup.defenceplaceFredagen den 19 september 2025, kl. 13.00, Hörsal W Sjölander, Medicinaregatan 7, Göteborgsv
dc.gup.departmentInstitute of Biomedicine. Department of Medical Microbiology and Immunologysv
dc.gup.dissdb-fakultetSA
dc.gup.maildaniel.sjovall@gu.sesv
dc.gup.originUniversity of Gothenburg. Sahlgrenska Academysv
dc.identifier.isbn978-91-8009-366-8 (PRINT)
dc.identifier.isbn978-91-8009-367-5 (PDF)
dc.identifier.urihttps://hdl.handle.net/2077/87253
dc.language.isoengsv
dc.relation.haspartI. Daniel Sjövall, Sudip Ghosh, Narcis Fernandez-Fuentes, Talia Velasco-Hernandez, Anna Hogmalm, Pablo Menendez, Jenny Hansson, Carolina Guibentif, Pekka Jaako. Defective ribosome assembly impairs leukemia progression in a murine model of acute myeloid leukemia. Cell Reports, 2024. https://doi.org/10.1016/j.celrep.2024.114864sv
dc.relation.haspartII. Daniel Sjövall, Pavan Kumar Mysuru Shivalingappa, Mohaddeseh Jameh, Anna Hogmalm, Maxin Ivanov, Nicola Guzzi, Carolina Guibentif, Pekka Jaako. Deregulation of eIF6 impairs spatial coordination of ribosome assembly. Manuscript.sv
dc.relation.haspartIII. Daniel Sjövall, Anna Hogmalm, Carolina Guibentif, Pekka Jaako. Homoharringtonine eradicates leukemia cells in mouse model of acute myeloid leukemia while preserving normal hematopoietic stem cells. Manuscript.sv
dc.subjectRibosomesv
dc.subjectRibosome assemblysv
dc.subjectProtein synthesissv
dc.subjectAcute myeloid leukemiasv
dc.subjectShwachman-Diamond syndromesv
dc.subjectSBDSsv
dc.subjecteIF6sv
dc.subjectHematopoiesissv
dc.subjectHomoharringtoninesv
dc.titleMolecular Mechanisms and Therapeutic Targeting of Ribosome Assemblysv
dc.typetexteng
dc.type.degreeDoctor of Philosophy (Medicine)sv
dc.type.svepDoctoral thesiseng

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