67 research outputs found

    Divided Fictions: Fanny Burney and Feminine Strategy

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    Today Fanny Burney’s venture into authorship would not be questionable. She was, after all, a daughter of a celebrated musician, and the Burney family was know to the circle of Samuel Johnson and Hester Thrale. Yet as Kristina Straub ably shows, the public recognition which followed the publication of her first novel placed Fanny Burney in a situation of disturbing ambiguity. Did she become famous or notorious? Was she a prodigy or a freak? In this study of Burney, Straub not only describes and analyzes the disturbing transition of a writer’s self-awareness as a woman and a literary artist from private to public terms, but also reveals in Burney’s works a hitherto unacknowledged complexity. Kristina Straub is an assistant professor of English at Miami University. A deft, sophisticated study. . . . Not only does it implicitly establish Burney’s importance, but it also lays new ground for viewing other eighteenth-century women writers. —Choice A genuinely significant contribution to our understanding of Burney’s fiction. —Studies in English Literaturehttps://uknowledge.uky.edu/upk_gender_and_sexuality_studies/1000/thumbnail.jp

    Ancestral Sequence Reconstruction: Methods and Applications

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    A major goal in the study of molecular evolution is to elucidate properties of ancestral proteins and to understand their adaption induced by changes in the environment. Due to the lack of macromolecular fossils, ancestral sequence reconstruction (ASR) is the only alternative to deduce sequences for evolutionary precursors of extant proteins. Within the last years, ancestral proteins were inferred spanning a time-period of more than 3 billion years. Ancestral proteins from eubacteria, archaea, yeast, and vertebrates could be reconstructed. Thus, ASR yielded insights into the early history of life and the evolution of proteins and of macromolecular complexes. Moreover, it turned out that ASR is an effiecient method of protein design, because the reconstructed sequences often possess favorable properties like an increased thermostability. The popularity and efficacy of ASR benefitted from improvements in DNA sequencing technology, the enormous rise of computer power and the refinements of algorithms for sequence and phylogenetic analyses to be seen during the last decades. Thus, elaborated ASR methods are at hand nowadays that can be applied to a variety of evolutionary problems. For an ASR application, the user has however to pick representatives from an overwhelming number of sequences, which is no trivial task. To advance ASR technology and to assist the user, the first part of this thesis focusses on the design of a standardized ASR protocol and the development of a novel filter aimed at facilitating sequence selection. In the second part, ASR is used as a method to elucidate properties of an ancestral enzyme complex and to identify protein-protein interaction hotspots

    Elizabeth Boyd's Disappearing Act: Performing Literary Legacy on the Georgian Stage

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    How do we trace the historical processes that grant some writers visibility and, hence, legacy, while shoving others into the historical closet? This essay offers the case study of Elizabeth Boyd (1727-1745), a novelist, poet, and playwright who has received some attention from scholars interested in women’s contributions to the legacy of William Shakespeare in the second quarter of the eighteenth century. In particular, her unperformed play, Don Sancho: Or, the Students Whim, a Ballad Opera of Two Acts, with Minerva’s Triumph, a Masque (1739) dramatizes a woman writer’s reflections on the politics of legacy at this formative moment in the history of authorship and the British theater. While the play was not performed, key scenes were later plagiarized in popular afterpieces by theater managers and playwrights Henry Giffard and David Garrick. Boyd, along with her inclusive vision of theatrical legacy as the domain of men and women of different classes, disappears in the male playwrights’ fantasies of exclusively masculine, British literary greatness. The story of Boyd’s erasure speaks to the gendered and classed exclusions and elisions in the social and economic processes by which legacy is formed, in this case, in the gendered power relations of eighteenth-century theater and its management

    Hexamerization and thermostability emerged very early during geranylgeranylglyceryl phosphate synthase evolution

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    A large number of archaea live in hyperthermophilic environments. In consequence, their proteins need to adopt to these harsh conditions, including the enzymes that catalyze the synthesis of their membrane ether lipids. The enzyme that catalyzes the formation of the first ether bond in these lipids, geranylgeranylglyceryl phosphate synthase (GGGPS), exists as a hexamer in many hyperthermophilic archaea, and a recent study suggested that hexamerization serves for a fine‐tuning of the flexibility – stability trade‐off under hyperthermophilic conditions. We have recently reconstructed the sequences of ancestral group II GGGPS enzymes and now present a detailed biochemical characterization of nine of these predecessors, which allowed us to trace back the evolution of hexameric GGGPS and to draw conclusions about the properties of extant GGGPS branches that were not accessible to experiments up to now. Almost all ancestral GGGPS proteins formed hexamers, which demonstrates that hexamerization is even more widespread among the GGGPS family than previously assumed. Furthermore, all experimentally studied ancestral proteins showed high thermostability. Our results indicate that the hexameric oligomerization state and thermostability were present very early during the evolution of group II GGGPS, while the fine tuning of the flexibility – stability trade‐off developed very late, independent of the emergence of hexamerization

    Experimental and computational analysis of the ancestry of an evolutionary young enzyme from histidine biosynthesis

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    The conservation of fold and chemistry of the enzymes associated with histidine biosynthesis suggests that this pathway evolved prior to the diversification of Bacteria, Archaea, and Eukaryotes. The only exception is the histidinol phosphate phosphatase (HolPase). So far, non-homologous HolPases that possess distinct folds and belong to three different protein superfamilies have been identified in various phylogenetic clades. However, their evolution has remained unknown to date. Here, we analyzed the evolutionary history of the HolPase from γ-Proteobacteria (HisB-N). It has been argued that HisB-N and its closest homologue d-glycero-d-manno-heptose-1,7-bisphosphate 7-phosphatase (GmhB) have emerged from the same promiscuous ancestral phosphatase. GmhB variants catalyze the hydrolysis of the anomeric d-glycero-d-manno-heptose-1,7-bisphosphate (αHBP or βHBP) with a strong preference for one anomer (αGmhB or βGmhB). We found that HisB-N from Escherichia coli shows promiscuous activity for βHBP but not αHBP, while βGmhB from Crassaminicella sp. shows promiscuous activity for HolP. Accordingly, a combined phylogenetic tree of αGmhBs, βGmhBs, and HisB-N sequences revealed that HisB-Ns form a compact subcluster derived from βGmhBs. Ancestral sequence reconstruction and in vitro analysis revealed a promiscuous HolPase activity in the resurrected enzymes prior to functional divergence of the successors. The following increase in catalytic efficiency of the HolP turnover is reflected in the shape and electrostatics of the active site predicted by AlphaFold. An analysis of the phylogenetic tree led to a revised evolutionary model that proposes the horizontal gene transfer of a promiscuous βGmhB from δ- to γ-Proteobacteria where it evolved to the modern HisB-N

    Light-Regulation of Tryptophan Synthase by Combining Protein Design and Enzymology

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    The spatiotemporal control of enzymes by light is of growing importance for industrial biocatalysis. Within this context, the photo-control of allosteric interactions in enzyme complexes, common to practically all metabolic pathways, is particularly relevant. A prominent example of a metabolic complex with a high application potential is tryptophan synthase from Salmonella typhimurium (TS), in which the constituting TrpA and TrpB subunits mutually stimulate each other via a sophisticated allosteric network. To control TS allostery with light, we incorporated the unnatural amino acid o-nitrobenzyl-O-tyrosine (ONBY) at seven strategic positions of TrpA and TrpB. Initial screening experiments showed that ONBY in position 58 of TrpA (aL58ONBY) inhibits TS activity most effectively. Upon UV irradiation, ONBY decages to tyrosine, largely restoring the capacity of TS. Biochemical characterization, extensive steady-state enzyme kinetics, and titration studies uncovered the impact of aL58ONBY on the activities of TrpA and TrpB and identified reaction conditions under which the influence of ONBY decaging on allostery reaches its full potential. By applying those optimal conditions, we succeeded to directly light-activate TS(aL58ONBY) by a factor of similar to 100. Our findings show that rational protein design with a photo-sensitive unnatural amino acid combined with extensive enzymology is a powerful tool to fine-tune allosteric light-activation of a central metabolic enzyme complex

    The human RNA polymerase I structure reveals an HMG-like docking domain specific to metazoans

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    Transcription of the ribosomal RNA precursor by RNA polymerase (Pol) I is a major determinant of cellular growth, and dysregulation is observed in many cancer types. Here, we present the purification of human Pol I from cells carrying a genomic GFP fusion on the largest subunit allowing the structural and functional analysis of the enzyme across species. In contrast to yeast, human Pol I carries a single-subunit stalk, and in vitro transcription indicates a reduced proofreading activity. Determination of the human Pol I cryo-EM reconstruction in a close-to-native state rationalizes the effects of disease-associated mutations and uncovers an additional domain that is built into the sequence of Pol I subunit RPA1. This “dock II” domain resembles a truncated HMG box incapable of DNA binding which may serve as a downstream transcription factor–binding platform in metazoans. Biochemical analysis, in situ modelling, and ChIP data indicate that Topoisomerase 2a can be recruited to Pol I via the domain and cooperates with the HMG box domain–containing factor UBF. These adaptations of the metazoan Pol I transcription system may allow efficient release of positive DNA supercoils accumulating downstream of the transcription bubble

    A Solve-RD ClinVar-based reanalysis of 1522 index cases from ERN-ITHACA reveals common pitfalls and misinterpretations in exome sequencing

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    Purpose Within the Solve-RD project (https://solve-rd.eu/), the European Reference Network for Intellectual disability, TeleHealth, Autism and Congenital Anomalies aimed to investigate whether a reanalysis of exomes from unsolved cases based on ClinVar annotations could establish additional diagnoses. We present the results of the “ClinVar low-hanging fruit” reanalysis, reasons for the failure of previous analyses, and lessons learned. Methods Data from the first 3576 exomes (1522 probands and 2054 relatives) collected from European Reference Network for Intellectual disability, TeleHealth, Autism and Congenital Anomalies was reanalyzed by the Solve-RD consortium by evaluating for the presence of single-nucleotide variant, and small insertions and deletions already reported as (likely) pathogenic in ClinVar. Variants were filtered according to frequency, genotype, and mode of inheritance and reinterpreted. Results We identified causal variants in 59 cases (3.9%), 50 of them also raised by other approaches and 9 leading to new diagnoses, highlighting interpretation challenges: variants in genes not known to be involved in human disease at the time of the first analysis, misleading genotypes, or variants undetected by local pipelines (variants in off-target regions, low quality filters, low allelic balance, or high frequency). Conclusion The “ClinVar low-hanging fruit” analysis represents an effective, fast, and easy approach to recover causal variants from exome sequencing data, herewith contributing to the reduction of the diagnostic deadlock

    31st Annual Meeting and Associated Programs of the Society for Immunotherapy of Cancer (SITC 2016) : part two

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    Background The immunological escape of tumors represents one of the main ob- stacles to the treatment of malignancies. The blockade of PD-1 or CTLA-4 receptors represented a milestone in the history of immunotherapy. However, immune checkpoint inhibitors seem to be effective in specific cohorts of patients. It has been proposed that their efficacy relies on the presence of an immunological response. Thus, we hypothesized that disruption of the PD-L1/PD-1 axis would synergize with our oncolytic vaccine platform PeptiCRAd. Methods We used murine B16OVA in vivo tumor models and flow cytometry analysis to investigate the immunological background. Results First, we found that high-burden B16OVA tumors were refractory to combination immunotherapy. However, with a more aggressive schedule, tumors with a lower burden were more susceptible to the combination of PeptiCRAd and PD-L1 blockade. The therapy signifi- cantly increased the median survival of mice (Fig. 7). Interestingly, the reduced growth of contralaterally injected B16F10 cells sug- gested the presence of a long lasting immunological memory also against non-targeted antigens. Concerning the functional state of tumor infiltrating lymphocytes (TILs), we found that all the immune therapies would enhance the percentage of activated (PD-1pos TIM- 3neg) T lymphocytes and reduce the amount of exhausted (PD-1pos TIM-3pos) cells compared to placebo. As expected, we found that PeptiCRAd monotherapy could increase the number of antigen spe- cific CD8+ T cells compared to other treatments. However, only the combination with PD-L1 blockade could significantly increase the ra- tio between activated and exhausted pentamer positive cells (p= 0.0058), suggesting that by disrupting the PD-1/PD-L1 axis we could decrease the amount of dysfunctional antigen specific T cells. We ob- served that the anatomical location deeply influenced the state of CD4+ and CD8+ T lymphocytes. In fact, TIM-3 expression was in- creased by 2 fold on TILs compared to splenic and lymphoid T cells. In the CD8+ compartment, the expression of PD-1 on the surface seemed to be restricted to the tumor micro-environment, while CD4 + T cells had a high expression of PD-1 also in lymphoid organs. Interestingly, we found that the levels of PD-1 were significantly higher on CD8+ T cells than on CD4+ T cells into the tumor micro- environment (p < 0.0001). Conclusions In conclusion, we demonstrated that the efficacy of immune check- point inhibitors might be strongly enhanced by their combination with cancer vaccines. PeptiCRAd was able to increase the number of antigen-specific T cells and PD-L1 blockade prevented their exhaus- tion, resulting in long-lasting immunological memory and increased median survival
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