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Biology subjects

Lee, A. D.

Publications and source records attributed to Lee, A. D..

2 recordsLinked to original sources

MLT-11 is necessary for C. elegans embryogenesis and conserved sequences play distinct roles in cuticle structure

Apical extracellular matrices (aECMs) are associated with many epithelia and many form a protective layer against biotic and abiotic threats in the environment. Despite their importance, we lack a deep understanding of their structure and dynamics in development and disease. C. elegans molting offers a powerful entry point to understanding developmentally programmed aECM remodeling. Here, we show that the poorly characterized putative protease inhibitor gene, mlt-11, is directly regulated by the NHR-23 transcription factor. We identify key cis-regulatory elements required for robust mlt-11 expression. An internal MLT-11::mNeonGreen translational fusion transiently localized to the aECM in the cuticle and embryo. MLT-11::mNeonGreen was also detected in lining openings to the exterior (vulva, rectum, mouth). mlt-11 is necessary to pattern all layers of the adult cuticle, and reduction of MLT-11 levels disrupted the barrier function of the cuticle. Deletion of conserved Kunitz protease inhibitor domains or intervening sequences produced a range of defects including either left or right rollers, and small separations of the cuticle along the length of the animal (microblisters). MLT-11 is processed into at least two fragments and internal and C-terminal mNeonGreen knock-ins display distinct localization patterns. Predicted mlt-11 null mutations caused fully penetrant embryonic lethality and elongation defects. Together, this work suggests that MLT-11 localizes similarly to pre-cuticle components and conserved sequences play distinct roles in promoting proper assembly of the aECM.

developmental biology↗

Expansion and revision of the genus Xanthobacter and proposal of Roseixanthobacter gen. nov.

The nitrogen-fixing, chemolithoautotrophic genus Xanthobacter is found worldwide across numerous diverse environments and is an important member of many ecosystems. These species serve as model systems for their metabolic properties in academic settings and have industrial applications in bioremediation and sustainable protein, food, and fertilizer production. Despite their abundance, interest, and importance, the majority of Xanthobacter strains are without a genome sequence, and only 8 validly published species are known to date. To expand our understanding of the diversity and evolutionary history of the genus, we sequenced the genomes of 37 repository strains and 26 novel environmental strains we isolated. After performing comparative phylogenomic analyses, we expand and revise the genus Xanthobacter and propose the novel genus Roseixanthobacter gen. nov. For the Xanthobacter, we describe 10 novel species, bringing the total to 18: Xanthobacter agilis, Xanthobacter albus sp. nov., Xanthobacter aminoxidans, Xanthobacter autotrophicus, Xanthobacter cornucopiae sp. nov., Xanthobacter dioxanivorans, Xanthobacter flavus, Xanthobacter lutulentifluminis sp. nov., Xanthobacter nonsaccharivorans sp. nov., Xanthobacter oligotrophicus, Xanthobacter pseudotagetidis sp. nov., Xanthobacter sediminis sp. nov., Xanthobacter tagetidis, Xanthobacter toluenivorans sp. nov., Xanthobacter variabilis sp. nov., Xanthobacter versatilis sp. nov., Xanthobacter viscosus, and Xanthobacter wiegelii sp. nov. For the Roseixanthobacter gen. nov., we describe 5 novel species formerly classified as Xanthobacter: Roseixanthobacter finlandensis sp. nov., Roseixanthobacter glucoisosaccharinivorans sp. nov., Roseixanthobacter liquoris sp. nov., Roseixanthobacter pseudopolyaromaticivorans sp. nov., and Roseixanthobacter psychrophilus sp. nov. We characterized the phenotypic properties of these type strains, including temperature, salinity and pH ranges, carbon substrate utilization, motility, antibiotic susceptibility, slime production, autotrophic growth, and enzymatic activities. We discovered a more diverse range of phenotypes across the genus Xanthobacter than previously known and elucidated the evolutionary history within the genus. These findings and genome sequences will help further the application of Xanthobacter biology in academic, industrial, and environmental settings and provide additional insight into the unique biological properties that make these species attractive for such applications.

microbiology↗