Development and Validation of Broad-Range Qualitative and Clade-Specific Quantitative Molecular Probes for Assessing Mercury Methylation in the Environment

厚壁菌 生物 变形菌纲 克莱德 甲基汞 基因组 古细菌 桑格测序 底漆(化妆品) 甲基化 基因组 Mercury(编程语言) 遗传学 基因 16S核糖体RNA DNA测序 系统发育学 化学 生态学 γ蛋白杆菌 生物累积 计算机科学 程序设计语言 有机化学
作者
Geoff A. Christensen,Ann M. Wymore,Andrew J. King,Mircea Podar,Richard A. Hurt,Eugenio U. Santillan,Ally Soren,Craig C. Brandt,Steven D. Brown,Anthony V. Palumbo,Judy D. Wall,Cynthia C. Gilmour,Dwayne A. Elias
出处
期刊:Applied and Environmental Microbiology [American Society for Microbiology]
卷期号:82 (19): 6068-6078 被引量:90
标识
DOI:10.1128/aem.01271-16
摘要

ABSTRACT Two genes, hgcA and hgcB , are essential for microbial mercury (Hg) methylation. Detection and estimation of their abundance, in conjunction with Hg concentration, bioavailability, and biogeochemistry, are critical in determining potential hot spots of methylmercury (MeHg) generation in at-risk environments. We developed broad-range degenerate PCR primers spanning known hgcAB genes to determine the presence of both genes in diverse environments. These primers were tested against an extensive set of pure cultures with published genomes, including 13 Deltaproteobacteria , nine Firmicutes , and nine methanogenic Archaea genomes. A distinct PCR product at the expected size was confirmed for all hgcAB + strains tested via Sanger sequencing. Additionally, we developed clade-specific degenerate quantitative PCR (qPCR) primers that targeted hgcA for each of the three dominant Hg-methylating clades. The clade-specific qPCR primers amplified hgcA from 64%, 88%, and 86% of tested pure cultures of Deltaproteobacteria , Firmicutes , and Archaea , respectively, and were highly specific for each clade. Amplification efficiencies and detection limits were quantified for each organism. Primer sensitivity varied among species based on sequence conservation. Finally, to begin to evaluate the utility of our primer sets in nature, we tested hgcA and hgcAB recovery from pure cultures spiked into sand and soil. These novel quantitative molecular tools designed in this study will allow for more accurate identification and quantification of the individual Hg-methylating groups of microorganisms in the environment. The resulting data will be essential in developing accurate and robust predictive models of Hg methylation potential, ideally integrating the geochemistry of Hg methylation to the microbiology and genetics of hgcAB . IMPORTANCE The neurotoxin methylmercury (MeHg) poses a serious risk to human health. MeHg production in nature is associated with anaerobic microorganisms. The recent discovery of the Hg-methylating gene pair, hgcA and hgcB , has allowed us to design and optimize molecular probes against these genes within the genomic DNA for microorganisms known to methylate Hg. The protocols designed in this study allow for both qualitative and quantitative assessments of pure-culture or environmental samples. With these protocols in hand, we can begin to study the distribution of Hg-methylating organisms in nature via a cultivation-independent strategy.

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