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Mignon, J.

Publications and source records attributed to Mignon, J..

3 recordsLinked to original sources

Exploration of the influence of environmental changes on the conformational and amyloidogenic landscapes of the zinc finger protein DPF3a by combining biophysical and molecular dynamics approaches

In the past few years, the double PHD fingers 3 (DPF3) protein isoforms (DPF3b and DPF3a) have been identified as new amyloidogenic intrinsically disordered proteins (IDPs). Although such discovery is coherent and promising in the light of their involvement in proteinopathies, their amyloidogenic pathway remains largely unexplored. As environmental variations in pH and ionic strength are relevant to DPF3 pathophysiological landscape, we therefore enquired the effect of these physicochemical parameters on the protein structural and prone-to-aggregation properties, by focusing on the more disordered DPF3a isoform. In the present study, we exploited in vitro and in silico strategies by combining spectroscopy, microscopy, and all-atom molecular dynamics methods. Very good consistency and complementary information were found between the experiments and the simulations. Acidification unequivocally abrogated DPF3a fibrillation upon maintaining the protein in highly hydrated and expanded conformers due to extensive repulsion between positively charged regions. In contrast, alkaline pH delayed the aggregation process due to loss in intramolecular contacts and chain decompaction, the extent of which was partly reduced thanks to the compensation of negative charge by arginine side chains. Through screening attractive electrostatic interactions, high ionic strength conditions (300 and 500 mM NaCl) shifted the conformational ensemble towards more swollen, heterogeneous, and less H-bonded structures, which were responsible for slowing down the conversion into {beta}-sheeted species and restricting the fibril elongation. For defining the self-assembly pathway of DPF3a, we unveiled that the protein amyloidogenicity intimately communicates with its conformational landscape, which is particularly sensitive to modification of its physicochemical environment. As such, understanding how to modulate DPF3a conformational ensemble will help designing novel protein-specific strategies for targeting neurodegeneration. HighlightsO_LIDPF3a is a polyampholyte IDP, structurally sensitive to environmental changes. C_LIO_LIDPF3a amyloid pathway and propensity can be modulated by pH and ionic strength. C_LIO_LIAcidic condition inhibits fibrillation and maintains DPF3a in an extended state. C_LIO_LIAlkaline pH and ionic strength delay fibrillation by reducing structure collapse. C_LIO_LIDPF3a fibrils exhibit condition-dependent optical-morphological properties. C_LI

biophysics↗

LolA and LolB are conserved in Bacteroidetes and are crucial for gliding motility and Type IX secretion.

In Gram-negative bacteria, lipoproteins are major components of the outer membrane (OM) where they play a variety of roles, from the involvement in membrane biogenesis to virulence. Bacteroidetes, a widespread phylum of Gram-negative bacteria, including free-living organisms, commensals and pathogens, encode an exceptionally high number of outer membrane lipoproteins. These proteins are crucial in this phylum mainly because they are key components of SUS-like nutrient acquisition systems as well as of the Type 9 secretion (T9SS) and gliding motility machineries. The transport of lipoproteins to the OM has mainly been studied in E. coli and relies on the Lol system, composed of the inner membrane extraction machinery LolCDE, the periplasmic carrier LolA and the OM lipoprotein LolB. While most Lol proteins are essential and conserved across Gram-negative bacteria, to date, no LolB homologs have been identified outside of {gamma}- and {beta}-proteobacteria. How lipoproteins reach and are inserted in the OM of Bacteroidetes is not known. Here we identified LolB homologs in Bacteroidetes and disclosed the co-existence of several LolA and LolB in several species. We provide evidence that one LolA (LolA1) and one LolB (LolB1) of F. johnsoniae are devoted to targeting gliding and T9SS lipoproteins to the OM. A proteomic analysis of the OM composition of the lolA1 and lolB1 mutants supports this evidence. Furthermore, we show that, while LolB1 and LolA1 have conserved functions in Bacteroidetes, they are functionally different from their E. coli counterparts. We also show that surface lipoprotein transport is LolA and LolB independent. Finally, the finding that, in the absence of LolA and LolB homologs, lipoproteins still localize to the OM, suggests the presence in Bacteroidetes of yet unidentified LolAB-alternative lipoprotein transport pathways. In conclusion, Bacteroidetes have evolved different and more complex lipoprotein transport pathways than other Gram-negative bacteria and further research is required to uncover their complexity. SignificanceIn Gram-negative bacteria, lipoproteins are key components of the outer membrane (OM), essential for functions like membrane biogenesis and virulence. Bacteroidetes, a widespread phylum, encode a high number of OM lipoproteins crucial for nutrient acquisition, Type IX secretion, and gliding motility. While lipoprotein transport in E. coli depends on the Lol system, LolB homologs were previously unidentified outside {gamma}- and {beta}-proteobacteria. Here we identify LolB homologs in Bacteroidetes, revealing the co-existence of multiple LolA and LolB proteins in various species. In F. johnsoniae, LolA1 and LolB1 specifically target gliding and Type 9 secretion system lipoproteins to the OM. Despite this, lipoproteins still localize to the OM without LolA and LolB, suggesting alternative transport pathways. These findings indicate that Bacteroidetes have evolved more complex lipoprotein transport mechanisms than other Gram-negative bacteria, requiring further research to fully understand them.

microbiology↗

Intrinsic Disorder and Salt-dependent Conformational Changes of the N-terminal TFIP11 Splicing Factor

Tuftelin Interacting Protein 11 (TFIP11) was recently identified as a critical human spliceosome assembly regulator, interacting with multiple spliceosome proteins and localises in several membrane-less organelles. However, there is a lack of structural information on TFIP11, limiting the rationalisation of its biological role. TFIP11 has been predicted as a highly disordered protein, and more specifically concerning its N-terminal (N-TER) region. Intrinsically disordered proteins (IDPs) lack a defined tertiary structure, existing as a dynamic conformational ensemble, favouring their role as hubs in protein-protein and protein-RNA interaction networks. Furthermore, IDPs are involved in liquid-liquid phase separation (LLPS), driving the formation of subnuclear compartments. Combining disorder prediction, molecular dynamics, and spectroscopy methods, this contribution shows the first evidence TFIP11 N-TER may be described as a polyampholytic IDP, exhibiting a structural duality with the coexistence of ordered and disordered assemblies, depending on the ionic strength of the protein environment. Increasing the salt concentration enhances the protein conformational flexibility, presenting a fuzzier conformational landscape, a more globule-like shape, and an unstructured arrangement that could favour LLPS segregation and protein-RNA interaction. The regions mostly composed of charged and hydrophilic residues are the most impacted, including the G-Patch domain which is of crucial importance to TFIP11 function.

bioinformatics↗