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Zarechyntsava, M.

Publications and source records attributed to Zarechyntsava, M..

2 recordsLinked to original sources

Encapsidic production and isolation of degradation-prone polypeptides

Degradation during production and delivery is a significant bottleneck in developing biomolecular therapies. Here, we show that encapsulation in protein cages formed by engineered variants of a cage-forming lumazine synthase establishes an effective route for microbial production and isolation of otherwise difficult-to-express, degradation-prone polypeptides. In this system, genetic fusion to a cage component protomer ensures efficient guest packaging while being produced in host bacterial cells. Meanwhile, the controlled opening outside the cellular context allows facile isolation of cargo via sequence-specific protease cleavage. Furthermore, modular patchwork assembly avoids guest overloading, preventing unwanted incomplete cage assembly and the formation of insoluble aggregates. The general applicability of our "encapsidic" production approach was demonstrated by the efficient production of six intrinsically disordered polypeptides that have proven therapeutic potentials.

bioengineering↗

Nitrogen availability and TOR signalling are important for preventing catastrophic mitosis in fission yeast

Mitosis is a critical stage in the cell cycle, controlled by a vast network of regulators responding to multiple internal and external factors. The fission yeast Schizosaccharomyces pombe may demonstrate catastrophic mitotic phenotypes due to mutations or drug treatments. One of the factors provoking catastrophic mitosis is a disturbed lipid metabolism, resulting from e.g. mutations in acetyl-CoA/biotin carboxylase (cut6), in fatty acid synthase (fas2/lsd1), or in the transcriptional regulator of lipid metabolism (cbf11) genes, as well as treatment with inhibitors of fatty acid synthesis. It was previously shown that mitotic fidelity in lipid metabolism mutants can be partially rescued by ammonium chloride. In this study we demonstrate that mitotic fidelity can be improved by multiple good nitrogen sources. Moreover, this rescue is not limited to lipid metabolism disturbances but also applies to a number of unrelated mitotic mutants. Interestingly, the rescue is not achieved by restoring the lipid metabolism state, but rather indirectly. We found that the TOR regulatory network plays a major role in mediating such rescue, highlighting a novel role for TOR in mitotic fidelity.

cell biology↗