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Boudova, M.

Publications and source records attributed to Boudova, M..

3 recordsLinked to original sources

Trypanosomal MICOS is assembled on non-respiring mitochondrial crista precursors and associates with two integral microproteins

The mitochondrial contact site and cristae organizing system (MICOS) is a multiprotein complex that shapes crista junctions and maintains inner and outer membrane contacts. MICOS coordinates the assembly of electron transport chain complexes, a prerequisite for cellular respiration. Indeed, MICOS is lost in eukaryotes that dispensed with cellular respiration, suggesting that its assembly depends on the presence of an active respiratory chain. Trypanosoma brucei provides a unique system to test this hypothesis as its mitochondrion undergoes developmentally regulated remodeling. In the insect stage, the mitochondrion contains cristae with an active electron transport chain, whereas the mammalian bloodstream form possesses precursor cristae with stub-like morphology that lack respiratory activity. MICOS has been characterized in the insect stage but remains unexamined in the bloodstream form. Here, we demonstrate that all MICOS subunits assemble onto precursor cristae, retaining conserved interactions with both outer and inner membrane protein machineries. This is somewhat unexpected given the co-occurrence of MICOS with active cellular respiration in nature. Furthermore, we identify novel MICOS-associated proteins that are dispensable for its stability, suggesting auxiliary rather than core roles in MICOS function. Together, our findings establish that MICOS assembly precedes cellular respiratory competence and expand its interaction landscape in trypanosomatids.

cell biology↗

Discovery of two structurally distinct classes of inhibitors targeting the nuclease MUS81 and enhancing efficacy of chemotherapy in cancer cells

Nucleases are emerging as promising pharmacological targets due to their essential role in maintaining genomic stability, which is crucial for cellular viability and can be exploited in the prevention and treatment of various diseases, including cancer. The conserved structure-specific endonuclease MUS81 is required for resolving branched DNA intermediates during replication, repair, and recombination. Aberrant activity of MUS81 leads to DNA damage, chromosomal abnormalities and genome instability, and contributes to oncogenesis. Pharmacological targeting of MUS81 thus represents an attractive underexplored therapeutic approach. Here we describe the discovery of two chemically distinct classes of small-molecule inhibitors of MUS81, exemplified by the compounds MU262 and MU876. Both compounds can effectively inhibit MUS81 in vitro and in the cell-based context and sensitize cancer cells to DNA-damaging agents through impairing their ability to repair DNA lesions. These compounds can be also used as chemical biology tools for further exploration of MUS81 function, and as leads in the process of drug discovery focused on development of new therapies that exploit DNA repair vulnerabilities in the treatment of cancer.

molecular biology↗

Codon biased translation mediated by Queuosine tRNA modification is essential for the virulence of Leishmania mexicana

The complex life cycle of the human parasite Leishmania mexicana requires rapid translational adaptation for survival in two distinct environments: the insect vector and the mammalian host. These protists lack conventional transcriptional control due to their unusual genome organization. Consequently, tRNA modifications may represent an additional mechanism for post-transcriptional regulation of gene expression. One such modification is queuosine (Q), which is incorporated at the anticodon wobble position 34 of specific tRNAs. Here, we demonstrate that Q-tRNA levels increase substantially during Leishmania differentiation from the insect stage to the mammalian-infective stage, implying an important role for virulence. Hence, we generated mutant cells lacking the enzyme responsible for Q incorporation, tRNA-guanine transglycosylase (TGT), which exhibited substantial changes in the proteome during differentiation in vitro. Specifically, downregulated proteins were enriched in NAU codons, whereas upregulated proteins predominantly contained NAC codons. Although LmxTGT knockout parasites exhibited normal growth and differentiation in vitro, they demonstrated impaired survival within macrophages and reduced pathogenicity in mice, highlighting the role of the Q-tRNAs under stress conditions. To our knowledge, we present here the first direct evidence that queuosine tRNA modification controls the infectivity of Leishmania via codon-biased translation. To date, gene expression regulation in Leishmania and other trypanosomatids, has been attributed mostly to RNA stability and processing, however, our findings demonstrate that tRNA modifications also play a key regulatory role. Specifically, the Q-tRNA modification provides a novel layer of gene expression regulation, maintaining translational balance and supporting the parasites ability to adapt to changing environments, and contributing to Leishmania virulence.

molecular biology↗