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The Function of NM23-H1/NME1 and Its Homologs in Major Processes Linked to Metastasis
Barbara Mátyási1, Zsolt Farkas1, László Kopper2
1Department of Biological Anthropology, Eötvös Loránd University, Pázmány Péter stny. 1/C, H-1117, Budapest, Hungary.
Abstract:
Metastasis suppressor genes (MSGs) inhibit different biological processes during metastatic progression without globally influencing development of the primary tumor. The first MSG, NM23 (non-metastatic clone 23, isoform H1) or now called NME1 (stands for non-metastatic) was identified some decades ago. Since then, ten human NM23 paralogs forming two groups have been discovered. Group I NM23 genes encode enzymes with evolutionarily highly conserved nucleoside diphosphate kinase (NDPK) activity. In this review we summarize how results from NDPKs in model organisms converged on human NM23 studies. Next, we examine the role of NM23-H1 and its homologs within the metastatic cascade, e.g. cell migration and invasion, proliferation and apoptosis. NM23-H1 homologs are well known inhibitors of cell migration. Drosophila studies revealed that AWD, the fly counterpart of NM23-H1 is a negative regulator of cell motility by modulating endocytosis of chemotactic receptors on the surface of migrating cells in cooperation with Shibire/Dynamin; this mechanism has been recently confirmed by human studies. NM23-H1 inhibits proliferation of tumor cells by phosphorylating the MAPK scaffold, kinase suppressor of Ras (KSR), resulting in suppression of MAPK signalling. This mechanism was also observed with the C. elegans homolog, NDK-1, albeit with an inverse effect on MAPK activation. Both NM23-H1 and NDK-1 promote apoptotic cell death. In addition, NDK-1, NM23-H1 and their mouse counterpart NM23-M1 were shown to promote phagocytosis in an evolutionarily conserved manner. In summary, inhibition of cell migration and proliferation, alongside actions in apoptosis and phagocytosis are all mechanisms through which NM23-H1 acts against metastatic progression.
Insights
Metastasis suppressor genes like NM23-H1 inhibit cancer spread by blocking cell migration and proliferation. These genes also play roles in apoptosis and phagocytosis, crucial for controlling tumor progression.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Metastasis suppressor genes (MSGs) are critical in preventing cancer spread.
- NM23 (non-metastatic clone 23), now NME1, was the first identified MSG.
- Ten human NM23 paralogs exist, grouped into two, with Group I encoding nucleoside diphosphate kinase (NDPK) activity.
Purpose of the Study:
- To review the conserved roles of NM23-H1 and its homologs in the metastatic cascade.
- To explore mechanisms by which NM23-H1 inhibits tumor cell migration, proliferation, and promotes apoptosis and phagocytosis.
Main Methods:
- Comparative analysis of NM23/NDPK functions across model organisms (Drosophila, C. elegans) and humans.
- Examination of NM23-H1's role in cell migration, invasion, proliferation, and apoptosis.
- Investigation of conserved mechanisms involving endocytosis, MAPK signaling, and phagocytosis.
Main Results:
- NM23-H1 homologs inhibit cell migration by modulating chemotactic receptor endocytosis.
- NM23-H1 suppresses tumor cell proliferation via MAPK signaling pathway.
- NM23-H1 and homologs promote apoptosis and phagocytosis in an evolutionarily conserved manner.
Conclusions:
- NM23-H1 and its homologs act as metastasis suppressors through multiple conserved mechanisms.
- Inhibition of cell migration and proliferation, alongside promotion of apoptosis and phagocytosis, are key functions.
- Understanding these mechanisms offers potential therapeutic strategies against cancer metastasis.
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