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2.
GigaByte ; 2023: gigabyte94, 2023.
Article in English | MEDLINE | ID: mdl-37829656

ABSTRACT

Irises are perennial plants, representing a large genus with hundreds of species. While cultivated extensively for their ornamental value, commercial interest in irises lies in the secondary metabolites present in their rhizomes. The Dalmatian Iris (Iris pallida Lam.) is an ornamental plant that also produces secondary metabolites with potential value to the fragrance and pharmaceutical industries. In addition to providing base notes for the fragrance industry, iris tissues and extracts possess antioxidant, anti-inflammatory and immunomodulatory effects. However, study of these secondary metabolites has been hampered by a lack of genomic information, requiring difficult extraction and analysis techniques. Here, we report the genome sequence of Iris pallida Lam., generated with Pacific Bioscience long-read sequencing, resulting in a 10.04-Gbp assembly with a scaffold N50 of 14.34 Mbp and 91.8% complete BUSCOs. This reference genome will allow researchers to study the biosynthesis of these secondary metabolites in much greater detail, opening new avenues of investigation for drug discovery and fragrance formulations.

3.
Nat Commun ; 14(1): 4930, 2023 08 15.
Article in English | MEDLINE | ID: mdl-37582753

ABSTRACT

Diversity-oriented synthesis (DOS) is a powerful strategy to prepare molecules with underrepresented features in commercial screening collections, resulting in the elucidation of novel biological mechanisms. In parallel to the development of DOS, DNA-encoded libraries (DELs) have emerged as an effective, efficient screening strategy to identify protein binders. Despite recent advancements in this field, most DEL syntheses are limited by the presence of sensitive DNA-based constructs. Here, we describe the design, synthesis, and validation experiments performed for a 3.7 million-member DEL, generated using diverse skeleton architectures with varying exit vectors and derived from DOS, to achieve structural diversity beyond what is possible by varying appendages alone. We also show screening results for three diverse protein targets. We will make this DEL available to the academic scientific community to increase access to novel structural features and accelerate early-phase drug discovery.


Subject(s)
Drug Discovery , Small Molecule Libraries , Small Molecule Libraries/chemistry , Drug Discovery/methods , Gene Library , DNA/genetics , DNA/chemistry
4.
Nature ; 505(7482): 239-43, 2014 Jan 09.
Article in English | MEDLINE | ID: mdl-24291791

ABSTRACT

The increasing demands placed on natural resources for fuel and food production require that we explore the use of efficient, sustainable feedstocks such as brown macroalgae. The full potential of brown macroalgae as feedstocks for commercial-scale fuel ethanol production, however, requires extensive re-engineering of the alginate and mannitol catabolic pathways in the standard industrial microbe Saccharomyces cerevisiae. Here we present the discovery of an alginate monomer (4-deoxy-L-erythro-5-hexoseulose uronate, or DEHU) transporter from the alginolytic eukaryote Asteromyces cruciatus. The genomic integration and overexpression of the gene encoding this transporter, together with the necessary bacterial alginate and deregulated native mannitol catabolism genes, conferred the ability of an S. cerevisiae strain to efficiently metabolize DEHU and mannitol. When this platform was further adapted to grow on mannitol and DEHU under anaerobic conditions, it was capable of ethanol fermentation from mannitol and DEHU, achieving titres of 4.6% (v/v) (36.2 g l(-1)) and yields up to 83% of the maximum theoretical yield from consumed sugars. These results show that all major sugars in brown macroalgae can be used as feedstocks for biofuels and value-added renewable chemicals in a manner that is comparable to traditional arable-land-based feedstocks.


Subject(s)
Biofuels/supply & distribution , Carbohydrate Metabolism , Ethanol/metabolism , Genetic Engineering , Phaeophyceae/metabolism , Saccharomyces cerevisiae/metabolism , Alginates/metabolism , Anaerobiosis , Ascomycota/genetics , Ascomycota/metabolism , Biotechnology , Carrier Proteins/genetics , Carrier Proteins/metabolism , Evolution, Molecular , Fermentation , Genetic Complementation Test , Glucuronic Acid/metabolism , Hexuronic Acids/metabolism , Mannitol/metabolism , Phaeophyceae/genetics , Quinic Acid/metabolism , Reproducibility of Results , Saccharomyces cerevisiae/genetics , Seaweed/genetics , Seaweed/metabolism , Uronic Acids/metabolism
5.
PLoS One ; 8(9): e73194, 2013.
Article in English | MEDLINE | ID: mdl-24039885

ABSTRACT

In Saccharomyces cerevisiae mitosis, the protein Slk19 plays an important role in the initial release of Cdc14 phosphatase from the nucleolus to the nucleus in early anaphase, an event that is critical for proper anaphase progression. A role for Slk19 in later mitotic stages of Cdc14 regulation, however, has not been demonstrated. While investigating the role of Slk19 post-translational modification on Cdc14 regulation, we found that a triple point mutant of SLK19, slk19(3R) (three lysine-to-arginine mutations), strongly affects Cdc14 localization during late anaphase and mitotic exit. Using fluorescence live-cell microscopy, we found that, similar to slk19Δ cells, slk19(3R) cells exhibit no defect in spindle stability and only a mild defect in spindle elongation dynamics. Unlike slk19Δcells, however, slk19(3R) cells exhibit no defect in Cdc14 release from the nucleolus to the nucleus. Instead, slk19(3R) cells are defective in the timing of Cdc14 movement from the nucleus to the cytoplasm at the end of anaphase. This mutant has a novel phenotype: slk19(3R) causes premature Cdc14 movement to the cytoplasm prior to, rather than concomitant with, spindle disassembly. One consequence of this premature Cdc14 movement is the inappropriate activation of the mitotic exit network, made evident by the fact that slk19(3R) partially rescues a mutant of the mitotic exit network kinase Cdc15. In conclusion, in addition to its role in regulating Cdc14 release from the nucleolus to the nucleus, we found that Slk19 is also important for regulating Cdc14 movement from the nucleus to the cytoplasm at the end of anaphase.


Subject(s)
Cell Cycle Proteins/metabolism , Cell Nucleolus/metabolism , Microtubule-Associated Proteins/metabolism , Mitosis/physiology , Protein Tyrosine Phosphatases/metabolism , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/physiology , Anaphase , Gene Expression , Microtubule-Associated Proteins/genetics , Models, Biological , Mutation , Phenotype , Protein Transport , Saccharomyces cerevisiae Proteins/genetics , Spindle Apparatus/metabolism
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