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Koch, L.

Publications and source records attributed to Koch, L..

8 recordsLinked to original sources

Accurate, comprehensive gene annotation and ortholog identification across thousands of vertebrate genomes with TOGA2

Inferring orthologs and annotating coding genes remain central challenges in genomics, evident by the growing gap between assembled and annotated genomes. TOGA (Tool to infer Orthologs from Genome Alignments) addresses this challenge by integrating gene annotation and orthology inference. Here, we present TOGA2, the next generation of TOGA, which substantially improves annotation completeness, accuracy, scalability, and orthology inference. TOGA2 leverages exon-level orthology and introduces an exon-wise annotation procedure that reduces memory usage 513-fold and runtime 6.1-fold. We show that human-trained deep learning models for splice site prediction generalize across vertebrates. Integrating these predictions enables robust handling of evolutionary changes in exon-intron structure, including splice site shifts, intron deletions, and exonization of introns. A new gene tree reconciliation step refines orthology inference, and UTR annotation improves gene model completeness. Across mammals, birds, turtles, and percomorph fishes, TOGA2 annotations generally achieve higher gene completeness than transcriptome-informed RefSeq annotations. TOGA2 identifies previously unannotated exons in mouse, assigns informative gene symbols, and annotates V(D)J segments of antigen receptors. TOGA2 scales to thousands of genomes, which we demonstrate by generating comprehensive comparative genomics resources for 2,162 vertebrate assemblies, including gene annotations, ortholog sets, gene losses and duplications, retrogene candidates, and outputs supporting downstream analyses. Together, TOGA2 provides a scalable and versatile framework for comparative genomics that bridges the genome annotation gap.

genomics↗

Inborn cardiorespiratory fitness and exercise training modulate brown adipose tissue function and plasticity in early life

This study aimed to determine the impact of inborn metabolic fitness and early life exercise training on whole body and brown adipose tissue (BAT) energetics. We carried out comprehensive metabolic phenotyping on 4-week old rats bred for high (high-capacity runner, HCR) and low (low-capacity runner, LCR) running capacity following randomization to voluntary wheel running (VWR) or control (CRTL) for 6-weeks. High-resolution respirometry and untargeted proteomics were then employed to determine the impact of inborn fitness and early life exercise on BAT function. When accounting for differences in body mass, early life exercise (VWR) resulted in greater basal and total energy expenditure, irrespective of strain (P < 0.0001 for both). Both leak and uncoupling protein 1 (UCP1) dependent respiratory capacities in isolated BAT mitochondria were greater in rats randomized to VWR compared to CTRL in both HCR (P < 0.01) and LCR (P < 0.05) strains. Similarly, mitochondrial sensitivity to the UCP1 inhibitor GDP was greater in both HCR (P < 0.01) and LCR (P < 0.05) rats randomized to VWR versus control. The BAT proteome differed in CTRL HCR and LCR rats, were there was enrichment in proteins related to branched chain oxidation and mitochondrial fatty acid oxidation in HCR rats. VWR remodeled the BAT proteome, where 151 proteins were differentially expressed in LCR BAT and 209 differentially expressed in LCR BAT following VWR. In both stains, there was an enrichment in proteins related to metabolism mitochondrial function in response to VWR. However, when comparing strains, 39 proteins were differentially expressed in BAT in HCR rats compared to LCR rats in response to VWR. These proteins were related to carboxylic acid and amino acid metabolism. Collectively, inborn fitness impacts body mass and composition, exercise behaviors, and the BAT proteome in early life. Early life exercise alters whole body and BAT energetics irrespective of inborn fitness, augmenting basal and total energy expenditure and BAT thermogenic capacity and function.

physiology↗

Cocaine- and amphetamine-regulated transcript in perciforms I. Phylogenetic, structural and spatial conservation

Cocaine- and amphetamine-regulated transcript (Cart) is a pleiotropic neuropeptide involved in the regulation of stress and anxiety, depression, reproduction and circadian functions, yet it is mainly known for its metabolic regulation of body weight and appetite. While mammals possess a single cart gene, the genomes of birds may contain up to two carts and fish may possess up to ten cart genes. Furthermore, in some fish species the number of cart paralogues exceeds the number expected according to whole-genome duplication events in actinopterygians, suggesting a species-specific diversification of the cart system. In the current study, we identified multiple cart genes in two fish species with global importance -Nile tilapia and gilthead seabream. Bioinformatics analysis revealed seven cart genes in the tilapia genome and six cart genes in the seabream genome, all of which show high homology with carts of other vertebrates. Additionally, the predicted mature cart peptide sequences contain all the cysteines known to stabilize the tertiary peptide structure in other vertebrates. Nevertheless, protein structure modeling suggested that some carts lost part or all of the cysteine-based disulfide bridges. Quantitative-PCR analyses of all cart genes cloned in this research demonstrated that while all carts are mainly expressed in the brain, some cart genes show wider tissue distribution with significant expression in peripheral tissues including the kidney and gonads. Taken together, these findings emphasize the complexity of the piscine cart system.

physiology↗

Cocaine- and amphetamine-regulated transcript in perciforms II. Responsiveness to energetic shortage

Cocaine and amphetamine-regulated transcript (Cart) is a neuropeptide with prominent roles in appetite regulation and maintenance of energy homeostasis. Although Cart has been widely studied in vertebrates, its multigenic nature in fish elicits questions regarding the various functions affected by specific cart peptides. This is further emphasized when considering the high variation of aquatic ecosystems fish occupy. Nile tilapia (Oreochromis niloticus) and gilthead seabream (Sparus aurata) are important aquaculture species with different natural habitats, food preferences and feeding behaviors. Herein, we utilize these two species to evaluate whether food-related cart functions are species-specific. To this end, we studied how short-term (SD) or long-term (LD) food deprivation affects the central expression of the multiple cart genes of both species. Quantitative PCR analysis of cart expression demonstrated that SD resulted in decreased midbrain expression of three tilapia carts and three seabream carts while LD decreased the midbrain expression of two tilapia carts and two seabream carts. In addition, SD increased the expression of tilapia oncart1c in the anterior brain and oncart1c and oncart1b in the posterior brain while reducing the expression of seabream sacart1c. Our analyses showed that there are cart genes in each species (cart1a and cart1b for tilapia, and cart1b for seabream) that responded to both SD and LD by reduced expression in the midbrain. In addition, both conditions reduced the expression of seabream sacart1c in the posterior brain. Taken together, our current findings suggest that the major appetite regulation in each species is mediated by species-specific carts.

physiology↗

Integrative multi-omics uncovers skeletal muscle enhancer programming of cardiorespiratory fitness

Cardiorespiratory fitness (CRF) is a heritable trait associated with improved metabolic health and longevity. To identify regulatory mechanisms underlying CRF, we integrated 546 transcriptomic and epigenomic profiles from skeletal muscle of 128 genetically heterogeneous rats selectively bred for high and low running capacity, a model that mirrors CRF-associated traits in humans. Selection drove genetic convergence in coordinated skeletal muscle enhancer networks linked to lipid metabolism and angiogenesis genes. We validated thousands of these genetic effects through integration of 426 genotype, gene expression, and chromatin accessibility profiles in an independent HCRxLCR F2 population (n=147). These 972 multi-omics profiles show that CRF-associated genetic variation reshapes the chromatin landscape to support energy metabolism and oxygen delivery, offering a molecular framework for identifying targets to reduce cardiometabolic disease risk. Glossary of TermsO_LIModality/modalities: essentially a dataset. A modality can refer to one or multiple of ATAC-Seq, H3K27ac & additional histone modifications, chromatin states such as Strong Enhancer, and/or RNA-Seq C_LIO_LIPeaks: only refers to ATAC-Seq and CUT&Tag data C_LIO_LIFeatures: can collectively refer to genomic regions of one or more modality classes (genes, peaks, and/or chromatin state regions) C_LIO_LIVariant(s): SNP(s) C_LI O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/679855v2_ufig1.gif" ALT="Figure 1"> View larger version (56K): org.highwire.dtl.DTLVardef@1ee52eorg.highwire.dtl.DTLVardef@5848b7org.highwire.dtl.DTLVardef@debaforg.highwire.dtl.DTLVardef@1ec43ba_HPS_FORMAT_FIGEXP M_FIG C_FIG

genomics↗

Invasive species drive polymicrobial resistance to amoxicillin in oral biofilms through beta-lactamase release

Since bacterial biofilms often cause refractory infections, antimicrobial susceptibility testing (AST) is highly desirable even for oral peri-implant biofilms. However, characterization of polymicrobial drug resistance is challenging due to high diversity and complexity of these biofilms. In this work, we developed laser-assisted AST and detected polymicrobial amoxicillin resistance in peri-implantitis. TEM-1 {beta}-lactamase production enabled an Enterobacter sp. strain SPS_532 to protect its otherwise susceptible biofilm cohabitants. To understand the {beta}-lactamase driven cross-protection in the human microbiome we aggregated genomic (n = 200,000) and patient microbial data (n = 27,000), developed a cross-protection assay, studied a representative strain collection (n = 118) and established a complex biofilm in vitro model (with an average of 133 species from 164 found in dental plaque). Multiple oral allochthonous species, e.g., Enterobacter, Klebsiella, Escherichia, Staphylococcus, and only a single typical oral microorganism, Haemophilus, were able to cross-protect. Diverse bla genes conferred activity, via a high expression of chromosomal gene, e.g., blaAmpC gene or by the presence of plasmidic gene, e.g., blaTEM-1 gene. Invaders not only cross-protected the biofilm from the antibiotic, but also supported expansion of opportunistic pathogens like Fusobacterium species. Cross-protection in complex biofilms depended on the diffusion rate and population size of the invader, which could be bio-controlled with a phage. Deciphering polymicrobial resistance might support the development of diagnostic and therapeutic approaches to combat implant-associated biofilm infections in the human mouth.

microbiology↗

Shared and distinct adaptations to early-life exercise training based on inborn fitness

BackgroundLow cardiorespiratory fitness due to genetics increases the risk for cardiometabolic disease. Endurance exercise training promotes cardiorespiratory fitness and improves cardiometabolic risk factors, but with great heterogeneity. Here, we tested the hypothesis that the metabolic phenotype imparted by low parental (inborn) cardiorespiratory fitness would be overcome by early-life exercise training, and that exercise adaptations would be influenced in part by inborn fitness. MethodsAt 26 days of age, male and female rat low-capacity runners (LCR, n=20) and high-capacity runners (HCR, n=20) generated by artificial selection were assigned to either sedentary control (CTRL, n=10) or voluntary wheel running (VWR, n=10) for 6 weeks. Post-intervention, whole-body metabolic phenotyping was performed, and the respiratory function of isolated skeletal muscle and liver mitochondria assayed. Transcriptomics and proteomics were performed on skeletal muscle and liver tissue using RNA-sequencing and mass spectrometry, respectively. ResultsDaily VWR volume was 1.8-fold higher in HCR-VWR compared to LCR-VWR. In LCR, VWR reduced adiposity and enhanced glucose tolerance, coincident with elevated total energy expenditure. While intrinsic skeletal muscle mitochondrial respiratory function was unaffected by VWR, estimated skeletal muscle oxidative capacity increased in VWR groups owing to greater mitochondrial content. In the liver, both maximal oxidative capacity and ATP-linked respiration were higher in HCR-VWR than HCR-CTRL. Transcriptomic and proteomic profiling revealed extensive remodeling of skeletal muscle and liver tissue by VWR, elements of which were both shared and distinct based on inborn fitness. SummaryEarly-life exercise training partially overcomes the metabolic phenotype imparted by low inborn cardiorespiratory fitness. However, molecular adaptations to VWR are partly influenced by inborn fitness, which may have implications for personalized exercise medicine.

physiology↗

Single-cell profiling uncovers a Muc4-expressing metaplastic gastric cell type sustained by Helicobacter pylori-specific inflammation

AbstractMechanisms for Helicobacter pylori (Hp)-driven stomach cancer are not fully understood. In a transgenic mouse model of gastric preneoplasia, concomitant Hp infection and induction of constitutively active KRAS (Hp+KRAS+) alters metaplasia phenotypes and elicits greater inflammation than either perturbation alone. Gastric single-cell RNA-seq showed that Hp+KRAS+ mice had a large population of metaplastic pit cells that expressed the intestinal mucin Muc4 and the growth factor amphiregulin. Metaplastic pit cells were associated with macrophage and T cell inflammation and prevented by gastric immunosuppression. Lineage tracing showed that Muc4 was not dependent on cell-intrinsic KRAS activity, and lineage-derived cells had a limited propensity for growth as organoids, demonstrating that metaplastic pit cells are largely not self- renewing. Finally, MUC4 expression was significantly associated with proliferation in human gastric cancer samples. These studies identify an Hp-associated metaplastic pit cell lineage, also found in human gastric cancer tissues, whose expansion is driven by Hp-dependent inflammation. Statement of SignificanceUsing a mouse model, we have delineated metaplastic pit cells as a pre-cancerous cell type whose expansion requires H. pylori-driven inflammation. In humans, metaplastic pit cells show enhanced proliferation as well as enrichment in precancer and early cancer tissues, highlighting an early step in the gastric metaplasia to cancer cascade.

microbiology↗