Evolutionary dynamics and population genomics of cyanobacterial blooms
Evolutionary dynamics and population genomics of cyanobacterial blooms
批准号:
436108-2013
负责人:
Shapiro, BenjaminJesse
金额:
$2.99万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2017
资助国家:
加拿大
项目状态:
已结题
起止时间:
2017-01-01 至 2018-12-31
中文摘要
蓝藻繁殖发生在世界各地的湖泊,几乎每年在魁北克的许多湖泊。藻华微生物群落的主要成员通常是铜绿微囊藻蓝藻,其中一些菌株会产生对人类和牲畜有害的毒素。因此,藻华会对公众健康构成威胁,很多研究都是为了了解藻华动态和毒素产生的生物学。我们知道,在富含氮和磷的肥料污染的湖泊中,藻华更为严重,但我们仍然缺乏控制藻华或预测它们是否有毒的能力。像许多微生物一样,微囊藻迅速生长(至少在夏季繁殖期),形成大量的种群,产生基因多样化的种群,这些种群可以对自然选择做出快速反应——这意味着它们可以每年或在夏季繁殖期实时进化。该项目的目标是通过测序魁北克湖泊自然种群的基因组来“观察”微囊藻在数月和数年内的进化。这将帮助我们回答一些基本问题:微囊藻种群是否会重复遵循相同的进化轨迹,在每次夏季开花时都是相同的菌株(或具有共同基因的菌株)“获胜”?如果是这样的话,这就意味着原则上花朵是可以预测的。这项研究还将确定为微囊藻提供选择优势的突变。如果有特别有利的突变或基因促进开花的形成,这些基因的存在或不存在可以提供有价值的“生物标志物”的开花风险。这些基因的细胞功能可能有潜在的针对性,以帮助防止开花。除了这些对加拿大公共和环境健康的实际成果外,该研究项目还将提供对实时进化的罕见一瞥,增加我们对微生物如何适应自然环境的理解。在这项研究的过程中,14名高素质的人员将在多学科背景下接受培训,包括与加拿大和国际合作者进行计算和实验室工作。
英文摘要
Cyanobacterial blooms occur in lakes worldwide, and almost yearly in many Quebec lakes. The dominant member of the bloom's microbial community is typically the cyanobacterium Microcystis aeruginosa, some strains of which produce toxins harmful to humans and livestock. Blooms can therefore pose a public health threat, and much research has gone into understanding the biology of bloom dynamics and toxin production. We know that blooms are more severe in lakes polluted with nitrogen- and phosphorus-rich fertilizers, but we still lack the ability to control blooms or predict whether they will be toxic. Like many microbes, Microcystis grow rapidly (at least during summer blooms) to large population sizes, generating genetically diverse populations that can respond rapidly to natural selection - meaning that they can evolve in real time, from year to year, or over the course of a summer bloom. The goal of this project is to 'watch' Microcystis evolve over months and years by sequencing genomes from natural populations in Quebec lakes. This will help us answer fundamental questions: Do Microcystis populations follow the same evolutionary trajectory repeatedly, with the same strains (or those with a common set of genes) 'winning' during every summer bloom? If so, this means that blooms are predictable in principle. This research will also identify mutations that provide a selective advantage to Microcystis. If there are particular advantageous mutations or genes that promote bloom formation, the presence or absence of such genes could provide valuable 'biomarkers' of bloom risk. The cellular functions of these genes could potentially be targeted to help prevent blooms. In addition to these practical outcomes for public and environmental health in Canada, this research project will provide a rare glimpse into evolution in real time, adding to our understanding of how microbes adapt to their natural environments. Over the course of this research, 14 highly-qualified personnel will be trained in a multidisciplinary setting, involving computational and laboratory work with collaborators in Canada and internationally.
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