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Svobodova, M.

Publications and source records attributed to Svobodova, M..

3 recordsLinked to original sources

Subcellular proteomics of Paradiplonema papillatum reveals digestive capacity of the cell membrane and the plasticity of peroxisomes across euglenozoans

Diplonemids are among the most diverse and abundant protists in the deep ocean, have extremely complex and ancient cellular systems, and exhibit unique metabolic capacities. Despite this, we know very little about this major group of eukaryotes. To establish a model organism for comprehensive investigation, we performed subcellular proteomics on Paradiplonema papillatum and localized 4,870 proteins to 22 cellular compartments. We additionally confirmed the predicted location of several proteins by epitope tagging and fluorescence microscopy. To probe the metabolic capacities of P. papillatum, we explored the proteins predicted to the cell membrane compartment in our subcellular proteomics dataset. Our data revealed an accumulation of many carbohydrate active enzymes (CAZymes). Our predictions suggest that these CAZymes are exposed to extracellular space, supporting proposals that diplonemids may specialize in breaking down carbohydrates in plant and algal cell walls. Further exploration of carbohydrate metabolism revealed an evolutionary divergence in the function of glycosomes (modified peroxisomes) in diplonemids versus kinetoplastids. Our subcellular proteome provides a resource for future investigations into the unique cell biology of diplonemids.

cell biology↗

Characterization of novel and essential kinetoplast-associated proteins in Trypanosoma brucei

The kinetoplast is one of the defining features of kinetoplastid protists and represents a unique concentration of mitochondrial DNA. This subcellular structure is a highly complex assembly of thousands of mutually catenated, circular DNA molecules as well as up to one hundred dedicated proteins. These components work in tandem to replicate and segregate the mitochondrial genome during cellular division, additionally coordinating with the basal body and flagellum through the tripartite attachment complex (TAC) superstructure. Here, we screened the MitoTag localization repository and identified a number of previously undescribed hypothetical proteins exhibiting putative signals within the kinetoplast of Trypanosoma brucei. Through endogenous tagging we verify their association with the kinetoplast or TAC. The essentiality for several of these kinetoplast proteins (KP) was assessed by RNAi knock-downs, revealing that the newly characterized KP56, KP84 and KP86 are indispensable for growth of the procyclic stage. Additionally, KP37, KP56, and KP84 displayed alterations in the abundance of maxicircles or minicircles, while the depletion of KP84 and KP86 resulted in cell cycle alternations. Pulldown assays using the endogenously V5-tagged cell lines identified novel interactors, which were additionally subjected to endogenous tagging for subcellular localization, revealing two additional proteins (KP45 and KP66) with dual localization to the kinetoplast and throughout the mitochondrial lumen. This work represents the most extensive identification of novel KPs to date and provides a methodological pipeline for the characterization of remaining KPs to further understand this intricate molecular structure.

cell biology↗

A novel nabelschnur protein regulates segregation of the kinetoplast DNA in Trypanosoma brucei

The kinetoplast DNA (kDNA), a distinctive arrangement of mitochondrial DNA found in trypanosomatid protists, comprises a concatenated network of minicircles and maxicircles that undergo division and segregation once during each cell cycle. Despite the identification and characterization of numerous proteins involved in kDNA maintenance and replication, its segregation and the formation of the nabelschnur remain poorly understood on a molecular level. This enigmatic filamentous structure, transiently appearing in Trypanosoma brucei, connects the daughter kDNA networks prior to their complete segregation. Here, we characterize TbNAB70, a high mobility group box-like protein localized exclusively to the nabelschnur and the kDNA disc. Our findings demonstrate that TbNAB70 is critical for the segregation, but not replication, of kDNA, a so far unprecedented phenotype. Furthermore, structural predictions suggest that this protein holds the capacity to bind to kDNA illuminating the exact molecular mechanisms of segregation involved. Thus, we propose that TbNAB70 plays a pivotal role in the faithful and efficient segregation of the daughter kDNA networks.

molecular biology↗