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Mincer, T.

Publications and source records attributed to Mincer, T..

2 recordsLinked to original sources

State-Threatened Gopher Tortoise (Gopherus polyphemus) Gut Microbiome Analysis Reveals Health Insights into Southeastern Florida Population

The gopher tortoise (Gopherus polyphemus), endemic to the southeastern part of the United States, is a keystone species that provides ecological support to over 350 species. Deforestation, urbanization, road mortality, and disease, over the past 100 years, have caused population decline by over 80%, causing Florida to declare the gopher tortoise a threatened species. Little is known about the gopher tortoise gut microbiome, which could play a major role in tortoise health. This study aimed to better understand the health and biology of this threatened keystone species through the characterization and analysis of their gut microbiomes in the Abacoa Greenway of Southeastern Florida using next-generation sequencing to survey the gut microbiome. Major findings include: high levels of alpha diversity; lack of significant difference of male and female alpha diversity and taxonomic composition profiles and, counterintuitively, male beta diversity was less disparate than female beta diversity; phyla associated with fiber fermentation short-chain fatty acid metabolism, Firmicutes and Bacteroidetes, predominated all samples. Notable probiotic taxa present included: Lachnospiraceae and Clostridium butyricum. Potentially pathogenic taxa included: Helicobacter sp. and Mollicutes sp. Pathogenetic taxa undetected: gopher tortoise Helicobacter, and Mycoplasma spp. These results add to the understudied reptiles and tortoise gut microbiome.

microbiology↗

Microbial metabolic specificity controls pelagic lipid export efficiency

Lipids comprise more than 20% of sinking organic matter in the ocean and play a crucial role in the carbon cycle. Despite this, our understanding of the processes that control lipid degradation is limited. Here we combined nano-lipidomics and imaging to study the bacterial degradation of diverse algal lipid droplets. Bacteria isolated from natural marine particles exhibited distinct dietary preferences, ranging from selective to promiscuous degraders. Dietary preference was associated with a distinct set of lipid degradation genes rather than with taxonomic origin. The top degrader, Pseudomonas zhaodongensis, rapidly consumed triacylglycerols (TAGs) from lipid extracts while promoting colonization of kin by chemotaxis toward glycerol, the TAG degradation product. Using synthetic communities composed of isolates with distinct dietary preferences, we demonstrated that lipid degradation is modulated by microbial interactions. A particle export model incorporating these dynamics suggests that metabolic specialization and community dynamics influences lipid transport efficiency in the oceans mesopelagic zone.

ecology↗