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N6-Adenosine Methylation of SARS-CoV-2 5-UTR Regulates Translation

The coronavirus disease 2019 (COVID19) led to devastating health outcomes and has continued to spread despite global vaccination efforts1. This, alongside the rapid emergence of vaccine resistant variants, creates a need for orthogonal therapeutic strategies targeting more conserved facets of severe acute respiratory syndrome coronavirus (SARS-CoV-2)2-7. The viral genome is a single positive RNA strand divided into a genomic and a subgenomic segment. All 16 non-structural viral proteins are translated from the genomic polycistronic ORFs 1a, and 1b using a single 5'-UTR leader8,9. To our surprise, the full length 5'-UTR efficiently initiates protein translation despite its predicted structural complexity. Through a combination of biochemical assays and bioinformatic analyses, we demonstrate that a single METTL3-dependent m6A methylation event in SARS-CoV-2 5'-UTR regulates the rate of translation initiation. We demonstrate that m6A likely exerts this effect by destabilizing the third stem loop (SL3) and increasing overall accessibility to protein complexes. Our discovery provides a foundational insight into the biology of SARS-CoV-2 by linking m6A modification to its translational regulation and, thus, opens a new avenue for potential novel therapeutic strategies.

molecular biology↗

Asymmetric dimethylation of Ribosomal S6 Kinase 2 regulates its cellular localisation and pro-survival function

Ribosomal S6 Kinases (S6Ks) are critical regulators of cell growth, homeostasis, and survival, with dysregulation of these kinases being associated with various malignancies. While S6K1 has been extensively studied, S6K2 has been neglected despite its reported involvement in cancer progression. Protein arginine methylation is a widespread post-translational modification regulating a plethora of biological responses in mammalian cells. Here we report that p54-S6K2 is asymmetrically dimethylated at Arg-475 and Arg-477, two conserved residues within the AT-hook motif of the S6K2 family and some AT-hook-containing proteins. We demonstrate that PRMT1, PRMT3, and PRMT6 bind to and methylate S6K2 in vitro and in vivo. This methylation localises S6K2 to the nucleus where it rescues cells from starvation-induced cell death. Taken together, our findings highlight a novel mechanism regulating the biological function of p54-S6K2 that may be relevant to cancer where Arg-methylation is often found elevated.

molecular biology↗

Stem-loop induced ribosome queuing in the uORF2/ATF4 overlap fine-tunes stress-induced human ATF4 translational control

ATF4 is a master transcriptional regulator of the integrated stress response leading cells towards adaptation or death. ATF4s induction under stress was thought to be mostly due to delayed translation reinitiation, where the reinitiation-permissive uORF1 plays a key role. Accumulating evidence challenging this mechanism as the sole source of ATF4 translation control prompted us to investigate additional regulatory routes. We identified a highly conserved stem-loop in the uORF2/ATF4 overlap, immediately preceded by a near-cognate CUG, which introduces another layer of regulation in the form of ribosome queuing. These elements explain how the inhibitory uORF2 can be translated under stress, confirming prior observations, but contradicting the original regulatory model. We also identified two highly conserved, potentially modified adenines performing antagonistic roles. Finally, we demonstrate that the canonical ATF4 translation start site is substantially leaky-scanned. Thus, ATF4s translational control is more complex than originally described underpinning its key role in diverse biological processes.

molecular biology↗

Differential laboratory passaging of SARS-CoV-2 viral stocks impacts the in vitro assessment of neutralizing antibodies

Viral populations in natural infections can have a high degree of sequence diversity, which can directly impact immune escape. However, antibody potency is often tested in vitro with a relatively clonal viral populations, such as laboratory virus or pseudotyped virus stocks, which may not accurately represent the genetic diversity of circulating viral genotypes. This can affect the validity of viral phenotype assays, such as antibody neutralization assays. To address this issue, we tested whether recombinant virus carrying SARS-CoV-2 spike (VSV-SARS-CoV-2-S) stocks could be made more genetically diverse by passage, and if a stock passaged under selective pressure was more capable of escaping monoclonal antibody (mAb) neutralization than unpassaged stock or than viral stock passaged without selective pressures. We passaged VSV-SARS-CoV-2-S four times concurrently in three cell lines and then six times with or without polyclonal antiserum selection pressure. All three of the monoclonal antibodies tested neutralized the viral population present in the unpassaged stock. The viral inoculum derived from serial passage without antiserum selection pressure was neutralized by two of the three mAbs. However, the viral inoculum derived from serial passage under antiserum selection pressure escaped neutralization by all three mAbs. Deep sequencing revealed the rapid acquisition of multiple mutations associated with antibody escape in the VSV-SARS-CoV-2-S that had been passaged in the presence of antiserum, including key mutations present in currently circulating Omicron subvariants. These data indicate that viral stock that was generated under polyclonal antiserum selection pressure better reflects the natural environment of the circulating virus and may yield more biologically relevant outcomes in phenotypic assays.

molecular biology↗

Single-Stranded DNA with Internal Base Modifications Mediates Highly Efficient Gene Insertion in Primary Cells

Single-stranded DNA (ssDNA) templates along with Cas9 have been used for gene insertion but suffer from low efficiency. Here, we show that ssDNA with chemical modifications in 10-17% of internal bases (eDNA) is compatible with the homologous recombination machinery. Moreover, eDNA templates improve gene insertion by 2-3 fold compared to unmodified and end-modified ssDNA in airway basal stem cells (ABCs), hematopoietic stem and progenitor cells (HSPCs), T-cells and endothelial cells. Over 50% of alleles showed gene insertion in three clinically relevant loci (CFTR, HBB, and CCR5) in ABCs using eDNA and up to 70% of alleles showed gene insertion in the HBB locus in HSPCs. This level of correction is therapeutically relevant and is comparable to adeno-associated virus-based templates. Knocking out TREX1 nuclease improved gene insertion using unmodified ssDNA but not eDNA suggesting that chemical modifications inhibit TREX1. This approach can be used for therapeutic applications and biological modeling.

molecular biology↗

Annotation of piRNA source loci in the genome of non-model insects

The PIWI-interacting RNA (piRNA) pathway plays a crucial role in the defense of metazoan genomes against parasitic transposable elements. The major source of piRNAs in the model organism Drosophila melanogaster are defective transposon copies located in piRNA clusters - genomic regions with a high piRNA density that are thought to serve as an immunological memory of past invasion by those elements. Different approaches have been used to annotate piRNA clusters in model organisms like flies, mice and rats, and software such as proTRAC or piClust are available for piRNA cluster annotation. However, these software often make assumptions based on current knowledge of piRNA clusters from (mostly vertebrate) model organisms, which do not necessarily hold true for non-model insects in which the piRNA pathway is less understood. Here we describe a simple piRNA cluster annotation approach that utilizes very little assumptions on the biology of the piRNA pathway. The pipeline has been validated on mosquito genomes but can be easily used for other non-model insect species as well.

molecular biology↗

Viral metagenomics of 100-year-old museum specimens highlights the long-term stability of RNA

Recovery of virus sequences from old samples provides an opportunity to study virus evolution and reconstruct historic virus-host interactions. Studies of old virus sequences have mainly relied on DNA or on RNA from fixed or frozen samples. The millions of specimens in natural history museums represent a potential treasure trove of old virus sequences, but it is not clear how well RNA survives in old samples. We experimentally assessed the stability of RNA in insects stored dry at room temperature over 72 weeks. Although RNA molecules grew fragmented, RNA yields remained surprisingly constant. RT-qPCR of host and virus RNA showed minimal differences between dried and frozen specimens. To assess RNA survival in much older samples we acquired Drosophila specimens from North American entomological collections. We recovered sequences from known and novel viruses including several coding complete virus genomes from a fly collected in 1908. We found that the virome of D. melanogaster has changed little over the past century. Galbut virus, the most prevalent virus infection in contemporary D. melanogaster, was also the most common in historic samples. Finally, we investigated the genomic and physical features of surviving RNA. RNA that survived was fragmented, chemically damaged, and preferentially double stranded or contained in ribonucleoprotein complexes. This showed that RNA - especially certain types of RNA - can survive in biological specimens over extended periods in the absence of fixation or freezing and confirms the utility of dried specimens to provide a clearer understanding of virus evolution.

molecular biology↗

Developing terrestrial environmental DNA sampling methods for detecting arboreal invasive reptiles: a case study of the green anole in the Ogasawara Island, Japan

Early detection of invasive alien species is essential for preventing establishment and mitigating ecological impacts, particularly in island ecosystems harbouring evolutionarily isolated endemic species. Recently, despite increasing reptile introductions and their suggested widespread impacts, methods for monitoring arboreal invasive reptiles remain limited. This study addressed the need for practical detection tools by developing terrestrial environmental DNA (eDNA) sampling methods that collect DNA from leaf surfaces to detect the arboreal invasive green anole (Anolis carolinensis) in the Ogasawara Islands, Japan. Two methods, wiping leaf surfaces with gauze and rinsing with sprayed water, were tested. At an invaded site, green anoles were successfully detected in eight out of 10 samples in both methods. Although no significant difference in eDNA concentration was observed, the wiping method was selected for its greater simplicity. Subsequently, the relationship between green anole population density and eDNA concentrations detected using the wiping method was investigated, suggesting a significant positive relationship. This is the first report demonstrating that terrestrial eDNA concentrations can reflect arboreal reptile population density, suggesting potential applications in quantitative terrestrial biodiversity assessments. Furthermore, the successful detection of eDNA even in the extremely low-density habitat of the green anole demonstrates the usefulness of eDNA-based surveys for early detection of invasions. The method developed here may be broadly applicable to terrestrial biodiversity monitoring, especially in tree-dwelling taxa. Given accelerating biological invasions and biodiversity loss, this approach is expected to benefit managers, conservationists, and researchers concerned with terrestrial ecosystems.

molecular biology↗

Antigen B from Echinococcus granulosus enters mammalian cells by endocytic pathways

Cystic hydatid disease is a zoonosis caused by the larval stage (hydatid cyst) of Echinococcus granulosus (Cestoda, Taeniidae). The hydatid cyst develops in the viscera of intermediate host as a unilocular structure filled by the hydatid fluid, which contains parasitic excretory/secretory products. Antigen B (AgB) is the major component of E. granulosus metacestode hydatid fluid. Functionally, AgB has been implicated in immunomodulation and lipid transport. However, the mechanisms underlying AgB functions are not completely known. In this study, we investigated AgB interactions with different mammalian cell types and the pathways involved in its internalization. AgB uptake was observed in four different cell lines, NIH-3T3, A549, J774 and RH. Inhibition of raft-mediated endocytosis causes about 50 and 69% decrease in AgB internalization by RH and A549 cells, respectively. Interestingly, AgB colocalized with the raft endocytic marker, but also showed a partial colocalization with the clathrin endocytic marker. The results indicate that raft-mediated endocytosis is the main route to AgB internalization, and that a clathrin-mediated entry may also occur at a lower frequency. Cellular internalization could be a requirement for AgB functions as a lipid carrier and/or immunomodulatory molecule, contributing to create a more permissive microenvironment to metacestode development and survival.\n\nAuthor summaryAntigen B (AgB) is an oligomeric lipoprotein highly abundant in Echinococcus granulosus hydatid fluid. AgB has already been characterized as an immunomodulatory protein, capable of inducing a permissive immune response to parasite development. Also, an important role in lipid acquisition is attributed to AgB, because it has been found associated to different classes of host lipids. However, the mechanisms of interaction employed by AgB to perform its functions remain undetermined. In this study, we demonstrate that mammalian cells are able to internalize E. granulosus AgB in culture and found that specific mechanisms of endocytosis are involved. Our results extend the understanding of AgB biological role indicating cellular internalization as a mechanism of interaction, which in turn, may represent a target to intervention.

molecular biology↗

Association of oxidative stress, telomere length, and frailty in an elder population

BackgroundA global aging population requires focusing on the risk factors for unhealthy aging, preventive medicine, and chronic disease management. The identification of adverse health outcomes in older adults has been addressed by the characterization of frailty as a biological syndrome. On the other hand, oxidative stress and telomere length have been suggested as biomarkers of aging.\n\nObjectiveTo study the association of oxidative stress, telomere length, and frailty in an old age population.\n\nMethodsThis was a cross-sectional study based on 2015 data from 202 members from a cohort of older adults (n=202; gender F/M ratio: 133/69; mean age: 69.89 {+/-} 7.39 years). Reactive oxygen species (ROS) were measured by dichlorofluorescin diacetate, and lipid peroxidation by malondialdehyde. Telomere length was determined using qPCR with SYBR Green Master Mix.\n\nResultsStatistical analysis showed an association between telomere length and frailty but no association between oxidative stress on telomere length or frailty.\n\nConclusionsTelomere length could eventually be used as a marker to discriminate between healthy and unhealthy aging as expressed by frailty phenotype. However, oxidative stress seems as just a biological process of aging.

molecular biology↗

A smart polymer for sequence-selective binding, pulldown and release of DNA targets

Selective isolation of DNA is crucial for applications in biology, bionanotechnology, clinical diagnostics and forensics. We herein report a smart methanol-responsive polymer (MeRPy) that can be programmed to bind and separate single- as well as double-stranded DNA targets. Captured targets are quickly isolated and released back into solution by denaturation (sequence-agnostic) or toehold-mediated strand displacement (sequence-selective). The latter mode allows 99.8% efficient removal of unwanted sequences and 79% recovery of highly pure target sequences. We applied MeRPy for the depletion of insulin, glucagon, and transthyretin cDNA from clinical next-generation sequencing (NGS) libraries. This step improved data quality for low-abundance transcripts in expression profiles of pancreatic tissues. Its low cost, scalability, high stability and ease of use make MeRPy suitable for diverse applications in research and clinical laboratories, including enhancement of NGS libraries, extraction of DNA from biological samples, preparative-scale DNA isolations, and sorting of DNA-labeled non-nucleic acid targets.

molecular biology↗

Airspace miR-146a levels in ventilated patients decrease with age and correlate with mortality

The acute respiratory distress syndrome is a heterogenous syndrome characterized by the rapid development of respiratory failure. Nearly 40% of patients who develop ARDS will die, and there is growing interest in identification of biomarkers to identify patients at risk of death and/or inform treatment decisions. Most prior work on biomarkers in ARDS has focused on the plasma compartment, but there is concern that circulating biomarkers may not reflect alveolar pathobiology. The anti-inflammatory microRNA-146a has been shown to be upregulated in inflammatory cells in human bronchoalveolar lavage fluid, but it is not known if these levels correspond with outcomes. We measured miR-146a expression by digital droplet PCR in human biospecimens from four different cohorts of patients with respiratory failure requiring mechanical ventilation - two plasma cohorts, one bronchoalveolar lavage cohort, and one heat moisture exchange (HME) filter fluid cohort. We found that miR-146a was detectible in plasma, bronchoalveolar lavage fluid, and HME fluid. However, only when measured in the alveolar space, was miR-146a expression significantly lower in older adults and those who died. It did not correlate with outcomes when measured in plasma. To our knowledge, this is the first report that nucleotides can be measured in HME fluid and builds upon expanding literature that circulating biomarkers may not reflect complex biology of the alveolar microenvironment during ARDS.

molecular biology↗

Cardiomyocytes possess an intrinsic catecholaminergic machinery that regulates cellular homeostasis and electrophysiological stability

BackgroundCatecholamines play a central role in cardiac performance, coordinating myocardial contractility, conduction, metabolism, and electrophysiological stability. In the heart, their actions have been attributed primarily to sympathetic nerve terminals and circulating adrenal catecholamines. The discovery of an intrinsic non-neuronal cholinergic system within cardiomyocytes challenges this neurocentric paradigm and raises the possibility that cardiomyocytes also possess an intrinsic catecholaminergic programme. Here, we investigated whether cardiomyocytes possess an intrinsic catecholaminergic programme and its contribution to cardiomyocyte homeostasis and stress responses. MethodsWe investigated catecholamine biosynthesis and handling in human induced pluripotent stem cell-derived cardiomyocytes, adult mouse cardiomyocytes, H9C2 cells, rat ventricular tissue, and Langendorff-perfused mouse hearts. Protein expression of catecholamine biosynthetic enzymes and vesicular monoamine transporters was assessed by immunoblotting and immunohistochemistry, while vesicular monoamine uptake was evaluated using fluorescent false neurotransmitters. Functional consequences of catecholamine biosynthesis inhibition were examined using pharmacological approaches, assessing cell viability, apoptosis, organelle homeostasis, metabolic signalling, and cardiac electrophysiology. ResultsTyrosine hydroxylase, aromatic L-amino acid decarboxylase, dopamine {beta}-hydroxylase, and vesicular monoamine transporters were detected in cardiomyocytes across models. Expression of catecholamine biosynthetic enzymes increased following ischaemia-reperfusion injury in rat heart tissue (TH p=0.008, AADC p=0.031, DBH p=0.008). Pharmacological inhibition of catecholamine biosynthesis caused dose-dependent reductions in cardiomyocyte viability (p<0.0001), increased apoptosis, organelle stress, and mitochondrial dysfunction, with greater effects under oxidative stress. Mechanistically, catecholamine depletion suppressed mTORC1 signalling and activated LKB1-AMPK-ULK1 pathways. In Langendorff-perfused hearts, tyrosine hydroxylase inhibition induced ventricular arrhythmias in 5 of 6 hearts, including sustained ventricular tachycardia, polymorphic ventricular tachycardia, and ventricular fibrillation. ConclusionsThese findings identify cardiomyocytes as previously unrecognised catecholamine-competent cells expressing intrinsic machinery for catecholamine biosynthesis and vesicular handling. Disruption of this pathway compromises metabolic and organelle homeostasis, activates energy-stress and autophagy-related signalling, and promotes malignant ventricular arrhythmias. Intrinsic cardiomyocyte catecholamine biology therefore represents a non-neuronal regulatory axis essential for myocardial resilience and electrical stability, with potential relevance to ischaemic injury and stress-induced dysfunction.

molecular biology↗

BoltzDesign1: Inverting All-Atom Structure Prediction Model for Generalized Biomolecular Binder Design

Deep learning in structure prediction has revolutionized protein research, enabling large-scale screening, novel hypothesis generation, and accelerated experimental design across biological domains. Recent advances, including RoseTTAFold-AA and AlphaFold3, have extended structure prediction models to work with small molecules, nucleic acids, ions, and covalent modifications. We present BoltzDesign1, which inverts the Boltz-1 model, an open source reproduction of AlphaFold3, to enable the design of protein binders for diverse molecular targets without requiring model finetuning. By utilizing only the Pairformer and Confidence modules, our method significantly reduces computational costs while achieving outstanding in silico success rates and diversity in binder generation. Optimizing directly on the distogram allows us to shape the probability distribution of atomic distances, rather than adjusting a single structure, steering the design toward sequences that yield robust structures with well-defined energy minima. By leveraging a fully atomic model trained on a wide variety of macromolecules, we can generate diverse heterocomplexes with flexible ligand conformations--a capability not currently matched by existing methods. This approach enables the design of novel protein interactions with potential applications in biosensors, enzyme engineering, therapeutic development, and biotechnological innovations.

molecular biology↗

Programmable RNA Sensing for Cell Monitoring and Manipulation

RNAs are the central and universal mediator of genetic information underlying the diversity of cell types and cell states, which together shape tissue organization and organismal function across species and life spans. Despite advances in RNA sequencing and massive accumulation of transcriptome datasets across life sciences, the dearth of technologies that leverage RNAs to observe and manipulate cell types remains a prohibitive bottleneck in biology and medicine. Here, we describe CellREADR (Cell access through RNA sensing by Endogenous ADAR), a programmable RNA sensing technology that leverages RNA editing mediated by ADAR (adenosine deaminase acting on RNA) for coupling the detection of cell-defining RNAs with translation of effector proteins. Viral delivery of CellREADR conferred specific cell type access in mouse and rat brains and in ex vivo human brain tissues. Furthermore, CellREADR enabled recording and control of neuron types in behaving mice. CellREADR thus highlights the potential for RNA-based monitoring and editing of animal cells in ways that are specific, versatile, easy, and generalizable across organ systems and species, with broad applications in biology, biotechnology, and programmable RNA medicine.

molecular biology↗

Unique and shared proteome responses of rice plants (Oryza sativa) to individual abiotic stresses

Food safety of staple crops such as rice is of global concern and is at the top of the policy agenda worldwide. Abiotic stresses are one of the main limitations to optimizing yields for sustainability, food security and food safety. We analyzed proteome changes in Oryza sativa ssp. Nipponbare in response to three adverse abiotic treatments, including three levels of drought (mild, moderate, and severe), soil salinization, and non-optimal temperatures. All treatments had modest, negative effects on plant growth, enabling us to identify proteins that were common to all stresses, or unique to one. More than 75% of the total of differentially abundant proteins in response to abiotic stresses were specific to individual stresses, while fewer than 5% of stress-induced proteins were shared across all abiotic constraints. Stress-specific and non-specific stress-responsive proteins identified were categorized in terms of core biological processes, molecular functions, and cellular localization. Data AccessAll data have also been submitted to the PRIDE data repository, and will be available with project identifier PXD037280.

plant biology↗

METTL3 maintains epithelial homeostasis through m6A-dependent regulation of chromatin modifiers

The balance between epithelial stemness and differentiation requires the precise regulation of gene expression programs. Epitranscriptomic RNA modifications have been implicated in both epithelial development as well as cancers. However, the underlying mechanisms are poorly understood. Here, we show that deletion of the m6A methyltransferase, METTL3, impairs the m6A-mediated degradation of numerous mRNA transcripts encoding critical chromatin modifying enzymes, resulting in widespread gene expression abnormalities as well as both aberrant cutaneous and oral epithelial phenotypes in vivo. Collectively, these results offer new insights into a new layer of gene regulation within epithelial surface tissues and will inform future epitranscriptomic studies within epithelial cancer and developmental biology.

molecular biology↗

Super-resolution fluorescence imaging of cryosamples does not limit achievable resolution in cryoEM

Correlated super-resolution cryo-fluorescence and cryo-electron microscopy (cryoEM) has been gaining popularity as a method to investigate biological samples with high resolution and specificity. A concern in this combined method (called SR-cryoCLEM), however, is whether and how fluorescence imaging prior to cryoEM acquisition is detrimental to sample integrity. In this report, we investigated the effect of high-dose laser light irradiation on apoferritin samples prepared for cryoEM with excitation wavelengths commonly used in fluorescence microscopy, and comparing these samples to controls that were kept in the dark. We found that laser illumination, of equal duration and intensity as used in super-resolution cryomicroscopy and in the presence of high concentrations of fluorescent protein, did not affect the achievable resolution in cryoEM, with final reconstructions reaching resolutions of ~1.8 [A] regardless of the illumination conditions. The finding that super-resolution fluorescence imaging of cryosamples prior to cryoEM data acquisition does not limit the achievable resolution suggests that super-resolution cryo-fluorescence microscopy and in situ structural biology using cryoEM are entirely compatible. Graphical abstract O_FIG_DISPLAY_L [Figure 1] M_FIG_DISPLAY C_FIG_DISPLAY

molecular biology↗