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SUMOylation and NEDDylation in Primary and Metastatic Cancers to Bone
Marta Gomarasca1, Giovanni Lombardi1,2, Paola Maroni1
1Laboratory of Experimental Biochemistry and Molecular Biology, IRCCS Istituto Ortopedico Galeazzi, Milano, Italy.
Abstract:
Post-translational modifications comprise series of enzymatically-driven chemical modifications, virtually involving the entire cell proteome, that affect the fate of a target protein and, in turn, cell activity. Different classes of modifications can be established ranging from phosphorylation, glycosylation, ubiquitination, acetylation, methylation, lipidation and their inverse reactions. Among these, SUMOylation and NEDDylation are ubiquitin-like multi-enzymatic processes that determine the bound of SUMOs and NEDD8 labels, respectively, on defined amino acidic residues of a specific protein and regulate protein function. As fate-determinants of several effectors and mediators, SUMOylation and NEDDylation play relevant roles in many aspects of tumor cell biology. Bone represents a preferential site of metastasis for solid tumors (e.g., breast and prostate cancers) and the primary site of primitive tumors (e.g., osteosarcoma, chondrosarcoma). Deregulation of SUMOylation and NEDDylation affects different aspects of neoplastic transformation and evolution such as epithelial-mesenchymal transition, adaptation to hypoxia, expression and action of tumor suppressors and oncogenic mediators, and drug resistance. Thereby, they represent potential therapeutic targets. This narrative review aims at describing the involvement and regulation of SUMOylation and NEDDylation in tumor biology, with a specific focus on primary and secondary bone tumors, and to summarize and highlight their potentiality in diagnostics and therapeutic strategies.
Insights
SUMOylation and NEDDylation are crucial post-translational modifications impacting tumor cell biology, particularly in bone cancers. Targeting these processes offers potential for novel diagnostic and therapeutic strategies in oncology.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Post-translational modifications (PTMs) regulate protein function and cell activity.
- SUMOylation and NEDDylation are ubiquitin-like PTMs critical for cellular processes.
- These modifications play significant roles in tumor cell biology and cancer progression.
Purpose of the Study:
- To review the involvement and regulation of SUMOylation and NEDDylation in tumor biology.
- To focus on the specific roles of these modifications in primary and secondary bone tumors.
- To highlight their potential as diagnostic and therapeutic targets in cancer.
Main Methods:
- This is a narrative review.
- Literature search on SUMOylation, NEDDylation, and bone tumors.
- Synthesis of current knowledge on their roles in cancer.
Main Results:
- SUMOylation and NEDDylation deregulation impacts neoplastic transformation, epithelial-mesenchymal transition, hypoxia adaptation, and drug resistance.
- Bone is a common site for metastasis and primary bone tumors.
- These modifications influence key oncogenic and tumor suppressor pathways.
Conclusions:
- SUMOylation and NEDDylation are implicated in the pathogenesis of various tumors, especially bone cancers.
- Dysregulation of these pathways contributes to tumor evolution and treatment resistance.
- Targeting SUMOylation and NEDDylation pathways presents promising avenues for cancer diagnostics and therapeutics.
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