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Hinkle, J. E.

Publications and source records attributed to Hinkle, J. E..

2 recordsLinked to original sources

The DNA event horizon in the Guaymas Basin subsurface biosphere: technical advances and re-defined limits in bulk extractions of nucleic acids from deep marine sediments

We compiled DNA and RNA isolation protocols for sediment bulk extraction and their yields from Guaymas Basin subsurface sediments, and evaluated their sensitivity for metagenomic and amplicon analyses of subsurface microbial communities. Guaymas Basin sediments present a challenge for DNA and RNA recovery due to high concentrations of hydrocarbons, steep thermal gradients and rapidly declining cell numbers downcore. Metagenomic library construction and sequencing was possible from as little as 0.2 to 0.5 ng DNA/cm3 sediment; PCR amplification of 16S rRNA genes required in most cases approx. 1-2 ng DNA/cm3 sediment. At in-situ temperatures of 50 to 60{degrees}C, decreasing DNA recovery leads to increasingly uncertain "hit or miss" outcomes and to failures for metagenomic and amplicon analyses. DNA concentration profiles show that, even before these hot temperatures are reached, relatively moderate temperatures have a major effect on microbial abundance and DNA yield. Comparison with cell count profiles shows that hydrothermal influence is reducing downcore cell densities by multiple orders of magnitude faster compared to non-hydrothermal sediments; this effect is also visible at relatively moderate temperatures. To an even greater degree than DNA, RNA recovery is highly sensitive to downcore increasing temperatures and decreasing cell numbers, and worked best for microbial communities in cool, relatively shallow subsurface sediments.

microbiology↗

Complex bacterial diversity of Guaymas Basin hydrothermal sediments revealed by synthetic long-read sequencing (LoopSeq)

Hydrothermal sediments host phylogenetically diverse and physiologically complex microbial communities. Previous studies of microbial community structure in hydrothermal sediments have typically used short-read sequencing approaches. To improve on these approaches, we use LoopSeq, a high-throughput synthetic long-read sequencing method that has yielded promising results in analyses of microbial ecosystems, such as the human gut microbiome. In this study, LoopSeq is used to obtain near-full length (approximately 1400 - 1500 nucleotides) bacterial 16S rRNA gene sequences from hydrothermal sediments in Guaymas Basin. Based on these sequences, high-quality alignments and phylogenetic analyses provided new insights into previously unrecognized taxonomic diversity of sulfur-cycling microorganisms and their distribution along a lateral hydrothermal gradient. Detailed phylogenies for free-living and syntrophic sulfur-cycling bacterial lineages identified well-supported monophyletic clusters that have implications for the taxonomic classification of these groups. Particularly, we identify clusters within Candidatus Desulfofervidus that represent unexplored physiological and genomic diversity. In general, LoopSeq-derived 16S rRNA gene sequences aligned consistently with reference sequences in GenBank; however, chimeras were prevalent in sequences as affiliated with the thermophilic Candidatus Desulfofervidus and Thermodesulfobacterium, and in smaller numbers within the sulfur-oxidizing family Beggiatoaceae. Our analysis of sediments along a well-documented thermal and geochemical gradient show how sulfur-cycling bacteria of different taxonomic groups persist as active catalysts of the sulfur cycle throughout surficial hydrothermal sediments in the Guaymas Basin.

microbiology↗