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Malinowska, A.

Publications and source records attributed to Malinowska, A..

5 recordsLinked to original sources

An engineered biofactory for efficient production of diverse recombinant superoxide dismutase isozymes loaded with specific metal ions for biochemical characterisation

BackgroundBiochemical, biophysical and structural characterisation of isozymes from the ubiquitous family of iron- or manganese-dependent superoxide dismutases (SodFMs) requires the purification of high-quality preparations of recombinant enzymes. Determination of their key biochemical parameter, their catalytic metal-preference, requires the comparison of the catalytic turnover of samples loaded exclusively with iron versus samples loaded exclusively with manganese. Both of these aims are inhibited by the potential contamination of recombinant preparations of SodFMs, prepared by heterologous overexpression inside Escherichia coli cells, by even low levels of endogenous SodFMs from the host, both of which show very high turnover with either manganese (E. coli MnSOD) or iron (FeSOD). To overcome this problem, we created a strain of E. coli lacking the endogenous SodFMs. Here, we characterised this E. coli BL21 (DE3) {Delta}sodA{Delta}sodB strain, determining the physiological effects of SodFM deletion and demonstrating its utility for producing recombinant SodFMs for in vitro characterisation and use. ResultsGenomic analysis verified the targeted gene deletions, without off-target effects. Growth, expression, elemental analysis, and proteomic data confirmed a lack of physiological defects of the strain except for a known inability to grow on glucose, which is overcome by heterologous SodFM expression. We demonstrate the utility of the strain for the efficient production of diverse recombinant SodFMs, including highly divergent, understudied isozymes, including the ability to precisely control the metal-loading of the heterologously expressed protein. ConclusionsThe E. coli strain described herein is a useful microbial cell factory for production of recombinant SodFMs, which should find widespread utility as expression host of choice, enabling more efficient production of protein for studies of the biochemical, biophysical and structural properties of this remarkable family of metalloenzymes.

microbiology↗

Zika virus capsid protein C (ZIKV-C) interactors network mapped by proteomic analysis of human neural stem cells expressing FLAG-tagged C protein.

Zika virus is a teratogenic pathogen belonging to the Flaviviridae family. It possesses the ability to penetrate the placenta and affect the brain development of a fetus, resulting in microcephaly and functional impairments. Mechanisms of this neurotoxicity are still unclear, but capsid proteins of Zika and related viruses are known to exert apoptotic effect in different types of cells, including neurons. To explore the pathways affected by the presence of ZIKV-C, we have performed MS-based interactomic experiment in human neural stem cells and managed to identify 149 putative interactors. Our results indicate that the nucleus (especially the nucleolus) and the mitochondria are the main sites of interaction of protein C with host proteins. A number of the proteins we identified have significant links to diseases of the nervous system, including neurodevelopmental diseases. Furthermore, for the first time, we have identified MAM-domain containing glycosylphosphatidylinositol anchor protein 1, T-complex protein 1 subunit beta, lysine-tRNA ligase, calumenin as particularly abundant ZIKV protein C interactors. Data are available via ProteomeXchange with identifier PXD064412.

molecular biology↗

High field asymmetric waveform ion mobility spectrometry improves N-homocysteinylation mapping in mouse liver and brain proteins

N-Homocysteinylation has been shown to induce immunogenic, thrombogenic, and amyloidogenic properties of proteins. Although very important to gain insight into the mechanisms of homocysteine (Hcy) toxicity, proteome-wide studies of the effects of Hcy-thiolactone (HTL) protein modification remain challenging due to the low abundance of N-Hcy-proteins. High field asymmetric waveform ion mobility spectrometry (FAIMS) has been shown to improve the identification of other PTMs, we therefore expected it to facilitate the characterization of N-homocysteinylated proteins (N-Hcy-proteins) and help gain insight into their role in human disease. After extensive measurement optimization, we compared the yield of N-Hcy-protein/peptide identification across mouse liver and brain samples, either native or modified in vitro with HTL. Additionally, we examined the influence of different reduction and alkylation agents, namely DTT/IAA and TCEP/MMTS, on the number of identified N-Hcy-sites. FAIMS increased the number of N-Hcy-Lys-peptides and N-Hcy-proteins by 1.3-7-fold and 1.1-14-fold, respectively, regardless of alkylation method. We have identified 69 and 1,198 in vivo and in vitro N-Hcy-proteins, respectively. KEGG pathway term enrichment analysis showed that among in vitro N-Hcy-proteins, ten top KEGG pathways were Parkinson disease, prion disease, Huntington disease, oxidative phosphorylation, amyotrophic lateral sclerosis, pathways of neurodegeneration - multiple diseases, carbon metabolism, carcinogenesis - reactive oxygen species, Alzheimer disease, and diabetic cardiomyopathy. We conclude that FAIMS is a valuable addition to N-Hcy-proteome analysis workflow and facilitates the mapping of N-Hcy-sites. Data are available via ProteomeXchange with identifier PXD062860.

biochemistry↗

Profiling of yeast Saccharomyces cerevisiae mitochondrial AMPylome reveals a regulation of ATP synthase coupling trough subunit delta

The adenylation (AMPylation) of proteins as a posttranslational modification is used by bacteria during infection of host cells. These new virulence factors - AMPylases mainly belonging to the FIC domain containing proteins and constitute a potential drug target. Human FIC protein (HYPE) controls the activity of BiP chaperone under endoplasmic reticulum stress. No FIC family proteins have yet been identified in yeast Saccharomyces cerevisiae. The second family of AMPylases are SelO proteins which control the redox homeostasis in mitochondria and chloroplasts. We describe here the first global screening of AMPylated proteins in yeast S. cerevisiae mitochondrial proteome from wild type and SelO (Fmp40) lacking cells. Through quantitative mass-spectrometry-based proteomics, we identified a total of 169 AMPylated proteins in mitochondria while AMPylated peptides of 115 proteins were identified in fmp40{Delta} mitochondria, indicating on the presence of another, besides Fmp40, not yet identified AMPylase in yeast. We confirmed AMPylation of Atp1, Atp2, Atp3 and Atp16 subunits of mitochondrial ATP synthase by western blotting. Interestingly, we found AMPylation and phosphorylation of many residues, what indicates on the complex regulation of the ATP synthase activity. We confirmed the importance of one of such residues in Atp16, showing that its post-translational modification serves to regulate ATP synthase and OXPHOS coupling in both fermentative and respiratory growth conditions. This regulation serves to maintain the proper potential of the inner mitochondrial membrane, particularly under conditions of fermentative growth. This dataset represents the first library of AMPylated mitochondrial yeast proteins reported to date and supplements the AMPylome of human chronic lymphocytic leukemia cell line from human HYPE containing and HYPE lacking cells. The data represents a foundation for substrate specific investigations that can ultimately decipher the biological role of the AMPylation in the mitochondria.

molecular biology↗

In vitro methylation of the U7 snRNP subunits Lsm11 and SmE by the PRMT5/MEP50/pICln methylosome

U7 snRNP is a multi-subunit endonuclease required for 3 end processing of metazoan replication-dependent histone pre-mRNAs. In contrast to the spliceosomal snRNPs, U7 snRNP lacks the Sm subunits D1 and D2 and instead contains two related proteins, Lsm10 and Lsm11. The remaining five subunits of the U7 heptameric Sm ring, SmE, F, G, B and D3, are shared with the spliceosomal snRNPs. The pathway that assembles the unique ring of U7 snRNP is unknown. Here, we show that a heterodimer of Lsm10 and Lsm11 tightly interacts with the methylosome, a complex of the arginine methyltransferase PRMT5, MEP50 and pICln known to methylate arginines in the C-terminal regions of the Sm proteins B, D1 and D3 during the spliceosomal Sm ring assembly. Both biochemical and Cryo-EM structural studies demonstrate that the interaction is mediated by PRMT5, which binds and methylates two arginine residues in the N-terminal region of Lsm11. Surprisingly, PRMT5 also methylates an N-terminal arginine in SmE, a subunit that does not undergo this type of modification during the biogenesis of the spliceosomal snRNPs. An intriguing possibility is that the unique methylation pattern of Lsm11 and SmE plays a vital role in the assembly of the U7 snRNP.

biochemistry↗