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Inhibition mechanism of testis-expressed gene 14 (TEX14) in cytokinetic abscission: Well-tempered metadynamics
Yunju Cho1, Youhyun Nam2, Hyung Ho Lee3
1LT Materials, Gyeonggi-Do 11319, Republic of Korea.
Abstract:
Cytokinesis requires a apoptosis-linked gene 2 interacting protein X (ALIX) and a 55 kDa midbody centrosomal protein (CEP55) to activate the cell abscission in somatic cells. However, in germ cells, CEP55 forms intercellular bridges with testis-expressed gene 14 (TEX14), which blocks the cell abscission. These intercellular bridges play important roles in the synchronization of the germ cells and facilitate the coordinated passage of organelles and molecules between germ cells. If TEX14 is intentionally removed, intercellular bridges are disrupted, leading to sterility. Hence, a deeper understanding regarding the roles of TEX14 can provide significant insights into the inactivation of abscission and the inhibition of proliferation in cancer cells. Previous experimental studies have shown that the high affinity and low dissociation rate of TEX14 for CEP55 prevent ALIX from binding CEP55 and inactivate the germ cell abscission. However, detailed information about how TEX14 interacts with CEP55 to prevent the cell abscission is still lacking. To gain more specific insights into the interactions between CEP55 and TEX14 and the difference in reactivity between TEX14 and ALIX, we performed well-tempered metadynamics simulations of these protein complexes using atomistic models of CEP55, TEX14, and ALIX. We identified the major binding residues of TEX14 and ALIX with CEP55 by using 2D Gibbs free energy evaluations, the results of which are consistent with previous experimental studies. Our results may help design synthetic TEX14 mimicking peptides, which can bind CEP55 and facilitate the inactivation of abscission in abnormal cells, including cancer cells.
Insights
Testis-expressed gene 14 (TEX14) interacts with CEP55 to block cell abscission in germ cells, unlike somatic cells. Understanding this interaction offers insights for cancer therapy by inhibiting abnormal cell proliferation.
Area of Science:
- Cell biology
- Molecular biology
- Biophysics
Background:
- Cytokinesis involves apoptosis-linked gene 2 interacting protein X (ALIX) and 55 kDa midbody centrosomal protein (CEP55) for cell abscission in somatic cells.
- In germ cells, CEP55 forms intercellular bridges with testis-expressed gene 14 (TEX14), blocking abscission and synchronizing germ cell development.
- Disruption of TEX14-mediated intercellular bridges leads to sterility, highlighting TEX14's critical role.
Purpose of the Study:
- To elucidate the detailed molecular interactions between TEX14 and CEP55 that prevent germ cell abscission.
- To compare the binding reactivity of TEX14 and ALIX with CEP55.
- To provide insights for designing therapeutic strategies targeting cell abscission in cancer.
Main Methods:
- Well-tempered metadynamics simulations were employed using atomistic models of CEP55, TEX14, and ALIX.
- Simulations focused on understanding the protein complexes and their interactions.
- Two-dimensional Gibbs free energy evaluations were used to identify key binding residues.
Main Results:
- The study identified major binding residues for TEX14 and ALIX with CEP55.
- The findings are consistent with previous experimental observations.
- The high affinity and low dissociation rate of TEX14 for CEP55 were confirmed to prevent ALIX binding and inactivate germ cell abscission.
Conclusions:
- Molecular insights into TEX14-CEP55 interactions provide a basis for understanding germ cell abscission regulation.
- The findings suggest potential for developing synthetic TEX14-mimicking peptides to inhibit cell abscission.
- This approach could be valuable for targeting abnormal cell proliferation, such as in cancer therapy.
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