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Fernandez-Fernandez, A.

Publications and source records attributed to Fernandez-Fernandez, A..

5 recordsLinked to original sources

Prevalent phenotypic mutation impairs binding of broadly neutralizing antibodies to influenza hemagglutinin

Mistakes during protein synthesis, such as transcription errors, occur often and lead to non-inheritable amino acid replacements generally known as phenotypic mutations. We recently used a consensus approach in high-throughput sequencing to determine the error landscape for influenza-hemagglutinin mRNA. We found single-site errors to occur with widely different frequencies. Here we show that the most prevalent transcription error encodes a phenotypic mutation that impairs binding of broadly neutralizing antibodies. The error occurs in 0.2-0.5% of mRNA molecules and, consequently, many virions will expose hemagglutinin variants bearing the encoded amino acid replacement. Our results point to a mechanism of antibody evasion, akin to programmed recoding, in which evading mutations are encoded by transcription errors promoted by inheritable RNA sequence/structure patterns.

microbiology↗

Influenza evolution/adaptation samples a highly non-random error landscape for hemagglutinin-encoding RNA

Natural selection acts on diversity generated by errors in the biosynthesis of the genetic material. Previous work has shown, however, that such errors are not necessarily fully random. We have used a model influenza strain and a unique-molecular-identifier-based high-throughput sequencing approach to assess the error landscape for hemagglutinin-encoding RNA. Single-site errors occur at highly variable frequencies, with differences that span several orders of magnitude, plausibly reflecting specific RNA sequence/structure patterns. Remarkably, influenza evolution/adaptation preferentially selects mutations encoded by the higher frequency errors, as shown by analyses of mutations fixed in natural strains over many decades and by analyses of antibody-escape mutations found in laboratory experiments on strains of the 2009 pandemics. Our results support that RNA error landscapes may provide information useful for predicting influenza evolution and point to high-frequency errors encoding antibody-evading mutations as potential contributors to the rapid evolution of influenza viruses.

microbiology↗

DNA from cetariae fish remains confirms sardine (Sardina pilchardus) use and local population continuity in Northwestern Iberia since Roman times

The Romans were among the first to extensively exploit fish resources, establishing large-scale salting and preservation plants. Small pelagic fish were fermented to produce sauces like garum. Here, we recover DNA from specimens collected at Adro Vello (O Grove), Galicia, dating to the 3rd century AD. Whole genome resequencing, confirmed these as European sardines (Sardina pilchardus) and assigns all samples to a population ranging from North Morocco to the Bay of Biscay. The low admixture levels in ancient samples suggest lower connectivity in Roman times. This overlooked archaeological material can enhance our understanding of past subsistence economy, culture, and diet.

evolutionary biology↗

Shedding light on plant proteolysis: genetically encoded fluorescent sensors as tools for profiling protease activities

Proteolysis, a ubiquitous process in living organisms, is driven by proteases that regulate numerous signaling pathways through the hydrolysis of peptide bonds in protein substrates. Understanding the temporal and spatial dynamics of proteolysis and the activation of proteases is crucial for elucidating their roles in biological pathways. Here, we introduce a suite of genetically encoded FRET reporters designed to detect various proteolytic activities in plants. These sensors effectively reported in planta the specific activity of both Tobacco Etch Virus protease and caspase-3. Furthermore, we developed sensors for detecting plant metacaspase activity, validated through both in vitro and in planta experiments. These experiments revealed the spatial dynamics of proteolysis triggered by metacaspase activation following wounding and programmed cell death in roots. The implementation of these tools in plant biology research opens new avenues for investigating proteolytic mechanisms, significantly enhancing the potential for in-depth studies. Our work demonstrates the feasibility of using these sensors to detect diverse protease activities in vivo with high spatiotemporal resolution. These plant proteolytic biosensors hence represent a valuable toolbox for understanding protease functions within their natural context, paving the way for future advancements in plant biology research.

plant biology↗

The nuclear sulfenome of Arabidopsis: spotlight on histone acetyltransferase GCN5 regulation through functional thiols

Partial reduction of oxygen during energy generating metabolic processes in aerobic life forms results in the production of reactive oxygen species (ROS). In plants, ROS production is heightened during periods of both abiotic and biotic stress, which imposes a significant overload on the antioxidant systems. Hydrogen peroxide (H2O2) holds a central position in cellular redox homeostasis and signalling, playing an important role by oxidising crucial cysteines to sulfenic acid (-SOH), considered as a biologically relevant post-translational modification (PTM). Until now, the role of the nucleus in the cellular redox homeostasis has been relatively underexplored. The regulation of histone-modifying enzymes by oxidative PTMs on redox-active cysteines or tyrosine residues is particularly intriguing as it allows the integration of redox signalling mechanisms with chromatin control of transcriptional activity. One of the most extensively studied histone acetyltransferases is the conserved GENERAL CONTROL NONDEPRESSIBLE 5 (GCN5) complex. This study investigated the nuclear sulfenome in Arabidopsis thaliana by expressing a nuclear variant of the Yeast Activation Protein-1 (YAP) probe, identifying 225 potential redox-active nuclear proteins subject to sulfenylation. Mass spectrometry analysis further confirmed the sulfenylation of GCN5 at specific cysteine residues, with their functional significance and impact on the protein-protein interaction network assessed through cysteine-to-serine mutagenesis. HighlightProtein cysteine thiols are post-translationally modified under oxidative stress. Through the in vivo capturing of nuclear proteins undergoing sulfenylation in Arabidopsis, we highlight the functionality of particular cysteines in the histone acetyltransferase GCN5.

plant biology↗