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长期重金属暴露是否会促使环境机会致病菌携带抗生素抗性:使用sp. SRS - 8 - S - 2018进行的全面表型和基因组评估

Is Long-Term Heavy Metal Exposure Driving Carriage of Antibiotic Resistance in Environmental Opportunistic Pathogens: A Comprehensive Phenomic and Genomic Assessment Using sp. SRS-8-S-2018.

作者信息

Gendy Sherif, Chauhan Ashvini, Agarwal Meenakshi, Pathak Ashish, Rathore Rajesh Singh, Jaswal Rajneesh

机构信息

School of Allied Health Sciences, Florida A&M University, Tallahassee, FL, United States.

Environmental Biotechnology Laboratory, School of the Environment, FSH Science Research Center, Florida A&M University, Tallahassee, FL, United States.

出版信息

Front Microbiol. 2020 Aug 20;11:1923. doi: 10.3389/fmicb.2020.01923. eCollection 2020.

Abstract

The carriage of both, heavy metal and antibiotic resistance appears to be a common trait in bacterial communities native to long-term contaminated habitats, including the Savannah River Site (SRS). There is widespread soil contamination at the SRS; a United States Department of Energy (DOE) facility with long-term contamination from past industrial and nuclear weapons production activities. To further evaluate the genomic and metabolic traits that underpin metal and antibiotic resistance, a robust mercury (Hg) and uranium (U)-resistant strain- SRS-8-S-2018, was isolated. Minimum inhibitory concentration of this strain revealed resistance to Hg (10 μg/ml) and U (5 mM), the two main heavy metal contaminants at the SRS. Metabolic assessment of strain SRS-8-S-2018 using Biolog metabolic fingerprinting analysis revealed preference for carbohydrate utilization followed by polymers, amino acids, carboxy acids, and esters; this physiological activity diminished when Hg stress was provided at 1 and 3 μg/ml and completely ceased at 5 μg/ml Hg, indicating that continued release of Hg will have negative metabolic impacts to even those microorganisms that possess high resistance ability. Development of antibiotic resistance in strain SRS-8-S-2018 was evaluated at a functional level using phenomics, which confirmed broad resistance against 70.8% of the 48 antibiotics tested. Evolutionary and adaptive traits of strain SRS-8-S-2018 were further assessed using genomics, which revealed the strain to taxonomically affiliate with species, possessing a genome size of 5,323,630 bp, 5,261 proteins (CDS), 55 genes for transfer RNA (tRNA), and an average G + C content of 59.48. Comparative genomics with closest taxonomic relatives revealed 360 distinct genes in SRS-8-S-2018, with multiple functions related to both, antibiotic and heavy metal resistance, which likely facilitates the strain's survival in a metalliferous soil habitat. Comparisons drawn between the environmentally isolated SRS-8-S-2018 with 31 other strains revealed a closer functional association with medically relevant isolates suggesting that propensity of environmental isolates in acquiring virulence traits, as a function of long-term exposure to heavy metals, which is facilitating development, recruitment and proliferation of not only metal resistant genes (MRGs) but antibiotic resistant genes (ARGs), which can potentially trigger future bacterial pathogen outbreaks emanating from contaminated environmental habitats.

摘要

在包括萨凡纳河核设施场地(SRS)在内的长期受污染栖息地的原生细菌群落中,携带重金属和抗生素抗性似乎是一种常见特征。SRS存在广泛的土壤污染,它是美国能源部(DOE)的一个设施,因过去的工业和核武器生产活动而受到长期污染。为了进一步评估支撑金属和抗生素抗性的基因组和代谢特征,分离出了一种对汞(Hg)和铀(U)具有强抗性的菌株——SRS - 8 - S - 2018。该菌株的最低抑菌浓度显示其对SRS的两种主要重金属污染物汞(10μg/ml)和铀(5mM)具有抗性。使用Biolog代谢指纹分析对菌株SRS - 8 - S - 2018进行代谢评估,结果表明其偏好利用碳水化合物,其次是聚合物、氨基酸、羧酸和酯类;当汞胁迫浓度为1μg/ml和3μg/ml时,这种生理活性降低,而在汞浓度为5μg/ml时完全停止,这表明汞的持续释放甚至会对那些具有高抗性能力的微生物产生负面代谢影响。使用表型组学在功能水平上评估了菌株SRS - 8 - S - 2018中抗生素抗性的发展,结果证实其对所测试的48种抗生素中的70.8%具有广泛抗性。使用基因组学进一步评估了菌株SRS - 8 - S - 2018的进化和适应特征,结果显示该菌株在分类学上隶属于某一物种,其基因组大小为5,323,630bp,有5,261个蛋白质编码序列(CDS),55个转运RNA(tRNA)基因,平均G + C含量为59.48%。与最接近的分类学亲缘关系进行比较基因组学分析,发现SRS - 8 - S - 2018中有360个独特基因,具有与抗生素和重金属抗性相关的多种功能,这可能有助于该菌株在含金属土壤栖息地中生存。将环境分离的SRS - 8 - S - 2018与其他31个菌株进行比较,发现其与医学相关分离株的功能关联更紧密,这表明环境分离株由于长期暴露于重金属而获得毒力特征的倾向,不仅促进了金属抗性基因(MRGs)的发展、募集和增殖,还促进了抗生素抗性基因(ARGs)的发展,这可能会引发未来源自受污染环境栖息地的细菌病原体爆发。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9f29/7468404/f60f73c75c32/fmicb-11-01923-g001.jpg

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