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Croft, L.

Publications and source records attributed to Croft, L..

6 recordsLinked to original sources

Skeletal muscle mitochondria contain nuclear-encoded RNA species prior to and following adaptation to exercise training in rats

Skeletal muscle mitochondria adaptation to exercise training is mediated by molecular factors that are not fully understood. Mitochondria import over 1000 proteins encoded by the nuclear genome, but the RNA population resident within the organelle is generally thought to be exclusively encoded by the mitochondrial genome. However, recent in vitro evidence suggests that specific nuclear-encoded miRNAs and other non-coding RNAs (ncRNAs) can reside within the mitochondrial matrix. Whether these are present in mitochondria of skeletal muscle tissue, and if this affected by endurance training - a potent metabolic stimulus for mitochondrial adaptation - remains unknown. Rats underwent four weeks of moderate intensity treadmill exercise training, then humanely killed and tissues collected for molecular profiling. Mitochondria from gastrocnemius skeletal muscle were isolated by immunoprecipitation, further purified, then the resident RNA was sequenced to assess the mitochondrial transcriptome. Exercise training elicited typical transcriptomic responses and functional adaptations in skeletal muscle, including increased mitochondrial respiratory capacity. We identified 24 nuclear-encoded, coding or non-coding RNAs in purified mitochondria, in addition to 50 nuclear-encoded miRNAs that met a specified abundance threshold. Although none were differentially expressed in the exercise vs control group at FDR<0.05, exploratory analyses suggested that the abundance of 3 miRNAs were altered (p<0.05) in mitochondria isolated from trained compared with sedentary skeletal muscle. We report the presence of a specific population of nuclear-encoded RNAs in the mitochondria isolated from rat skeletal muscle tissue, which could play a role in regulating exercise adaptations and mitochondrial biology. KEY POINTSO_LIMitochondria are a central metabolic and signalling hub, particularly in tissues with high energy demand such as skeletal muscle. Their ability to adapt to stimuli such as exercise training is directly related to improved metabolic health. Understanding the factors that regulate these adaptive processes is therefore essential. C_LIO_LIMitochondria contain RNA encoded by their own genome (mtDNA); typically are not thought to contain nuclear-encoded RNA. C_LIO_LIHere, we report that mitochondria from rat skeletal muscle do indeed contain a select population of nuclear-encoded protein coding and non-coding RNAs, including 3 microRNAs whose expression tended to be altered by exercise training. C_LIO_LIThese findings suggest that mitochondria-localised nuclear-encoded RNAs may play a role in mediating beneficial adaptive responses to exercise. C_LI

physiology↗

SARS-CoV-2 within-host population expansion, diversification and adaptation in zoo tigers, lions and hyenas

SARS-CoV-2 rapidly adapts to new hosts following cross-species transmission; this is highly relevant as novel within-host variants have emerged following infection of susceptible wild and domestic animal species. Furthermore, SARS-CoV-2 transmission from animals (e.g., white-tailed deer, mink, domestic cats, and others) back to humans has also been observed, documenting the potential of novel animal-derived variants to infect humans. We investigated SARS-CoV-2 evolution and host-specific adaptation during an outbreak in Amur tigers (Panthera tigris altaica), African lions (Panthera leo), and spotted hyenas (Crocuta crocuta) at Denver Zoo in late 2021. SARS-CoV-2 genomes from longitudinal samples collected from 16 individuals were evaluated for within-host variation and genomic signatures of selection. The outbreak was likely initiated by a single spillover of a rare Delta sublineage subsequently transmitted from tigers to lions to hyenas. Within-host virus populations rapidly expanded and diversified. We detected signatures of purifying and positive selection, including strong positive selection in hyenas and in the nucleocapsid (N) gene in all animals. Four candidate species-specific adaptive mutations were identified: N A254V in lions and hyenas, and ORF1a E1724D, spike T274I, and N P326L in hyenas. These results reveal accelerated SARS-CoV-2 adaptation following host shifts in three non-domestic species in daily contact with humans.

evolutionary biology↗

SARS-CoV-2 outbreak in lions, tigers and hyenas at Denver Zoo

In late 2019, SARS-CoV-2 spilled-over from an animal host into humans, where it efficiently spread, resulting in the COVID-19 pandemic. Through both natural and experimental infections, we learned that many animal species are susceptible to SARS-CoV-2. Importantly, animals in close proximity to humans, including companion, farmed, and those at zoos and aquariums, became infected, and many studies demonstrated transmission to/from humans in these settings. In this study, we first review the literature of SARS-CoV-2 infections in tigers and lions, and compare species, sex, age, virus and antibody detection assay, and types, frequency and length of clinical signs, demonstrating broad heterogeneity amongst infections. We then describe a SARS-CoV-2 outbreak in lions, tigers and hyenas at Denver Zoo in late 2021. Animals were tested for viral RNA (vRNA) for four months. Lions had significantly more viral RNA in nasal swabs than both tigers and hyenas, and many individual lions experienced viral recrudescence after weeks of undetectable vRNA. Infectious virus was correlated with high levels of vRNA and was more likely to be detected earlier during infection. Four months post-infection, all tested animals generated robust neutralizing antibody titers. Animals were infected with Delta lineage AY.20 identical to a variant circulating at less than 1% in Colorado humans at that time, suggesting a single spillover event from an infected human spread within and between species housed at the zoo. Better understanding of epidemiology and susceptibility of SARS-CoV-2 infections in animals is critical to limit the current and future spread and protect animal and human health. ImportanceSurveillance and experimental testing have shown many animal species, including companion, wildlife, and conservatory, are susceptible to SARS-CoV-2. Early in the COVID-19 pandemic, big cats at zoological institutions were among the first documented cases of naturally infected animals; however, challenges in the ability to collect longitudinal samples in zoo animals have limited our understanding of SARS-CoV-2 kinetics and clearance in these settings. We measured SARS-CoV-2 infections over three months in lions, tigers and hyenas at Denver Zoo, and detected viral RNA, infectious virus, neutralizing antibodies, and recrudescence after initial clearance. We found lions had longer and higher levels of virus compared to the other species. All animals were infected by a rare viral lineage circulating in the human population, suggesting a single spillover followed by interspecies transmission. These data are important in better understanding natural SARS-CoV-2 spillover, spread and infection kinetics within multiple species of zoo animals.

microbiology↗

Mitochondria isolated from male skeletal muscle contain a distinct 1 population of miRNA that are differentially expressed following acute exercise

Initially thought to localise at the cytosol and nucleus only, emerging evidence indicates that miRNAs also localise within the mitochondria where they could regulate diverse pathological and physiological processes. Therefore, the aim of the current study was to use small RNA sequencing to profile and compare the entire population of miRNAs in human skeletal muscle of healthy males in whole-tissue and in isolated mitochondria at rest and in response to acute endurance exercise. Twelve healthy males (age 26 {+/-} 4 years, mean {+/-} SD) cycled for 60 min at 70% VO2peak and muscle biopsies were collected at rest, immediately after and 3 h after exercise. The mitochondria were isolated by immunoprecipitation, further purified, then the resident RNA was sequenced to assess the mitochondrial transcriptome. Small RNA sequencing revealed that mitochondria isolated from male skeletal muscle tissue contain a small and distinct population of miRNAs. Of the approximately 110 mature miRNAs detected in skeletal muscle mitochondria at each time-point, the canonical myo-miRs miR-1, miR-133 and miR-206 families constituted on average 45% of total mitochondria miRNA reads. However, none of these canonical myo-miRs were differentially expressed in mitochondria following endurance exercise. One miRNA, hsa-miR-146b-3p, was differentially expressed in both whole muscle tissue and mitochondria when adjusted for multiple testing (FDR <0.05). Future research is now required to investigate miRNA-mRNA interactions in the mitochondria of skeletal muscle tissue. KEY POINTS SUMMARYO_LIEmerging evidence suggests microRNA are localised in the mitochondria of skeletal muscle cells and may play a role in regulating mitochondrial function. C_LIO_LIWe recently optimised an approach to isolate RNA from mitochondria of human skeletal muscle that is free from contaminating cytosolic RNA and suitable for RNA sequencing. C_LIO_LIIn this study we examined the microRNA population from male skeletal muscle mitochondria before and in the hours following 60 minutes of moderate intensity cycling exercise. C_LIO_LIWe detected around 110 microRNAs in skeletal muscle mitochondria, with the muscle enriched myo-miR such as miR-1, miR-133 and miR-206 families constituting almost half of the reads. However, only one microRNA, hsa-miR-146b-3p, was differentially expressed whereby it increased [~] 10-fold following exercise. C_LIO_LIThe results provide new knowledge into how mitochondria might be regulated at the subcellular level and in response to physiological stressors such as exercise. C_LI

cell biology↗

Genome dynamics across the evolutionary transition to endosymbiosis

Endosymbiosis - where a microbe lives and replicates within a host - is an important contributor to organismal function that has accelerated evolutionary innovations and catalysed the evolution of complex life. The evolutionary processes associated with transitions to endosymbiosis, however, are poorly understood. Here, we use comparative genomics of the genus Arsenophonus to reveal the complex processes that occur on evolution of an endosymbiotic lifestyle. We compared the genomes of 38 strains spanning diverse lifestyles from environmentally acquired infections to obligate inter-dependent endosymbionts. We observed recent endosymbionts had larger genome sizes than closely related environmentally acquired strains, consistent with evolutionary innovation and rapid gain of new function. Increased genome size was a consequence of prophage and plasmid acquisition including a cargo of type III effectors, and concomitant loss of CRISPR-Cas genome defence systems enabling mobile genetic element expansion. Persistent endosymbiosis was also associated with loss of type VI secretion, likely reflecting reduced microbe-microbe competition. Thereafter, the transition to stable endosymbiosis and vertical inheritance was associated with the expected relaxation of purifying selection, pseudogenisation of genes and reduction of metabolism, leading to genome reduction. However, reduced %GC that is typically considered a progressive linear process was observed only in obligate interdependent endosymbionts. We argue that a combination of the need for rapid horizontal gene transfer-mediated evolutionary innovation together with reduced phage predation in endosymbiotic niches drives loss of genome defence systems and rapid genome expansion upon adoption of endosymbiosis. These remodelling processes precede the reductive evolution traditionally associated with adaptation to endosymbiosis.

genomics↗

Purification of mitochondria from skeletal muscle tissue for transcriptomic analyses reveals localisation of nuclear-encoded non-coding RNAs

Mitochondria are central to cellular function, particularly in metabolically active tissues such as skeletal muscle. Nuclear-encoded RNAs typically localise within the nucleus and cytosol but a small population may also translocate to subcellular compartments such as mitochondria. We aimed to investigate the nuclear-encoded RNAs that localise within the mitochondria of skeletal muscle cells and tissue. Intact mitochondria were isolated via immunoprecipitation (IP) followed by enzymatic treatments (RNase-A and proteinase-K) optimised to remove transcripts located exterior to mitochondria, making it amenable for high-throughput transcriptomic sequencing. Small-RNA sequencing libraries were successfully constructed from as little as 1.8 ng mitochondrial RNA input. Small-RNA sequencing of mitochondria from rat myoblasts revealed the enrichment of over 200 miRNAs. Whole-transcriptome RNA sequencing of enzymatically-purified mitochondria isolated by IP from skeletal muscle tissue showed a striking similarity in the degree of purity compared to mitoplast preparations which lack an outer mitochondrial membrane. In summary, we describe a novel, powerful sequencing approach applicable to animal and human tissues and cells that can facilitate the discovery of nuclear-encoded RNA transcripts localised within skeletal muscle mitochondria.

cell biology↗