Unraveling the Role of Contaminants Reshaping the Microflora in Zea mays Seeds from Heavy Metal-Contaminated and Pristine Environment.

IF 3.3 3区 生物学 Q2 ECOLOGY Microbial Ecology Pub Date : 2024-10-28 DOI:10.1007/s00248-024-02445-5
Muhammad Awais, Yingying Xiang, Naila Shah, Hazrat Bilal, Dezhi Yang, Haiyan Hu, Tao Li, Xiuling Ji, Haiyan Li
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Abstract

Heavy metal (HM) contaminants are the emerging driving force for reshaping the microflora of plants by eradicating the non-tolerance and non-resistant microbes via their lethal effects. Seeds served as a prime source of ancestral microbial diversity hereditary transfer from generation to generation. However, the problem arises when they got exposed to metal contamination, does metal pollutant disrupt the delicate balance of microbial communities within seeds and lead to shifts in their microflora across generations. In this study, the endophytic community within Zea mays seeds was compared across three distinct regions in Yunnan province, China: a HM-contaminated site Ayika (AK), less-contaminated site Sanduoduo (SD), and a non-contaminated Site Dali (DL). High-throughput sequencing techniques were employed to analyze the microbial communities. A total of 492,177 high-quality reads for bacterial communities and 1,001,229 optimized sequences for fungal communities were obtained. These sequences were assigned to 502 and 239 operational taxonomic units (OTUs) for bacteria and fungi, respectively. A higher diversity was recorded in AK samples than in SD and DL. Microbial community structure analysis showed higher diversity and significant fluctuation in specific taxa abundance in the metal-polluted samples exhibiting higher response of microbial flora to HM. In AK samples, bacterial genera such as Gordonia and Burkholderia-Caballeronia-Paraburkholderia were dominant, while in SD Pseudomonas and Streptomyces were dominant. Among the fungal taxa, Fusarium, Saccharomycopsis, and Lecanicillium were prevalent in HM-contaminated sites. Our finding revealed the influential effect of HM contaminants on reshaping the seed microbiome of the Zea mays, showing both the resilience of certain important microbial taxa as well the shifts in the diversity in the contaminated and pristine conditions. The knowledge will benefit to develop effective soil remediation, reclamation, and crop management techniques, and eventually assisting in the extenuation of metal pollution's adverse effects on plant health and agricultural productivity.

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揭示重金属污染和纯净环境中重塑玉米种子微生物区系的污染物作用
重金属(HM)污染物是重塑植物微生物区系的新兴驱动力,它们通过致命的影响消灭不耐受和不耐受的微生物。种子是祖先微生物多样性代代相传的主要来源。然而,当种子受到金属污染时,问题就出现了,金属污染物是否会破坏种子中微生物群落的微妙平衡,并导致种子中的微生物区系代代相传。本研究比较了中国云南省三个不同地区玉米种子中的内生菌群落:受 HM 污染的阿依卡(AK)、污染较轻的三多(SD)和未受污染的大理(DL)。采用高通量测序技术分析微生物群落。细菌群落共获得 492,177 个高质量读数,真菌群落共获得 1,001,229 个优化序列。这些序列分别归入细菌和真菌的 502 个和 239 个操作分类单元(OTU)。AK 样品的多样性高于 SD 和 DL 样品。微生物群落结构分析表明,受金属污染的样本中微生物群落的多样性更高,特定类群的丰度波动也更大,这表明微生物群落对 HM 的响应更高。在 AK 样品中,细菌类群如 Gordonia 和 Burkholderia-Caballeronia-Paraburkholderia 占主导地位,而在 SD 样品中,假单胞菌和链霉菌占主导地位。在真菌类群中,镰刀菌、酵母菌和球孢霉菌在 HM 污染场地很普遍。我们的发现揭示了 HM 污染物对玉米种子微生物组重塑的影响,显示了某些重要微生物类群的恢复能力以及受污染和原始条件下多样性的变化。这些知识将有助于开发有效的土壤修复、复垦和作物管理技术,最终帮助减轻金属污染对植物健康和农业生产力的不利影响。
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来源期刊
Microbial Ecology
Microbial Ecology 生物-海洋与淡水生物学
CiteScore
6.90
自引率
2.80%
发文量
212
审稿时长
3-8 weeks
期刊介绍: The journal Microbial Ecology was founded more than 50 years ago by Dr. Ralph Mitchell, Gordon McKay Professor of Applied Biology at Harvard University in Cambridge, MA. The journal has evolved to become a premier location for the presentation of manuscripts that represent advances in the field of microbial ecology. The journal has become a dedicated international forum for the presentation of high-quality scientific investigations of how microorganisms interact with their environment, with each other and with their hosts. Microbial Ecology offers articles of original research in full paper and note formats, as well as brief reviews and topical position papers.
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