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Elucidation of the bacterial sphingolipid biosynthetic pathway in Sphingomonas wittichii.

Elucidation of the bacterial sphingolipid biosynthetic pathway in Sphingomonas wittichii.
阐明维氏鞘氨醇细菌鞘脂生物合成途径。
批准号:
BB/I013687/1
负责人:
Dominic Campopiano
金额:
$41.19万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2011
资助国家:
英国
项目状态:
已结题
起止时间:
2011 至 --

项目摘要

项目成果

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中文摘要
翻译
细胞是由膜构成的,膜由被称为“脂类”的化学物质组成--脂类含有疏水(憎水)和亲水(亲水)部分。膜必须坚固,以保持细胞内容物在里面,但也能让分子进入(营养、金属、盐)--以及阻止有毒物质进入和排出废物。他们还必须阻止水涌入细胞,并通过增加渗透压使细胞破裂。细胞进化出不同的膜,具有不同的化学成分。哺乳动物有复杂的细胞膜,它们会产生数百种不同的脂类。同样,酵母、植物和病毒也有特定物种的脂类。细菌也有独特和不同寻常的脂质--它们在免疫反应和炎症中也发挥着重要作用。哺乳动物已经进化出将自己的脂类识别为“自我”,但可以熟练地从致病细菌、真菌和病毒中检测出外来的脂类。一旦被检测到,哺乳动物细胞就能产生有效的免疫反应来杀死入侵者。这就引出了一个问题,如果一种细菌已经进化成具有与人类相似的脂类--我们如何区分它们?更仔细地观察脂类本身,我们的项目将专注于一种有趣的脂类的特殊分支,称为神经鞘脂脂。100年前,约翰·图迪奇姆在人脑中发现了它们,他知道它们在大脑化学中扮演着重要角色。直到20世纪30年代,赫伯特·卡特才研究出鞘脂的化学成分--一种极性的、可溶于水的头部和一种非极性的脂肪酸尾巴。它们被发现是由常见的氨基酸L-丝氨酸和一个长碳(>C16)链组成的。长期以来,科学家们一直想知道神经鞘脂是如何在细胞内用普通的积木制造出来的,然后被输送到外部--当细胞快速生长和分裂时,这必须非常迅速地发生。此外,鞘脂是危险的--在一个细胞中太多或太少都可能是致命的,所以数量受到微妙的控制,但我们仍然不完全了解。为了揭示化学细节并探索相关的酶,我们和其他科学家正在研究人类、植物、酵母和细菌中神经鞘脂脂的生物合成。我们选择了一种有趣的细菌Sphingomonas wittichii,因为它对人类无害--事实上,它可以将毒素降解成无害的分子。这些鞘氨醇单胞菌非常不寻常,因为它们产生的鞘脂在某种程度上与我们自己的相似。我们将探索鞘氨醇单胞菌是如何通过复杂的第二步和第三步以及更复杂的第二步和第三步,通过编码执行丝氨酸和脂肪酸初始转换的酶的基因来制造鞘磷脂的。我们得到了帮助,因为美国能源部已经对维氏鞘氨醇单胞菌的基因组进行了测序,并预测它有5000个基因。然而,我们不知道哪些基因参与了鞘脂的生物合成。我们将使用化学、生化、遗传学和分子生物学的方法来帮助我们理解每一步。我们已经开始并发现了一种不同寻常的小蛋白质(约80个氨基酸长),我们认为它与鞘脂和脂肪酸的生物合成有关。大部分工作将在爱丁堡进行,但我们也将与圣安德鲁斯的吉姆·奈史密斯合作,他可以确定蛋白质的3D结构,以及美国的遗传学专家特蕾莎·邓恩。我们的团队合作将使我们领先于竞争对手。到拨款结束时,我们将确定细菌鞘脂生物合成的基本路线图,并能够开始将其与在人类、植物和酵母中的图谱进行比较。我们将深入了解这些物种是如何进化成相同的鞘脂的,并开始了解每个物种是如何控制每个细胞中的数量的。在开展这项工作的同时,我们将确保向专家和公众举办研讨会,告诉他们我们的发现,并将在有利于英国科学的高评级国际期刊上发表文章。
英文摘要
Cells are made of membranes which are composed of chemicals called 'lipids' - these contain hydrophobic (water hating) and hydrophilic (water loving) parts. Membranes have to be strong to keep cell contents in but also be able to let molecules in (nutrients, metals, salts) - as well as keeping toxic materials out and expelling waste. They must also stop water flooding in and bursting the cell by increased osmotic pressure. Cells have evolved different membranes with different chemical composition. Mammals have complicated membranes and they generate 100s of different lipids. Similarly, yeast, plants and viruses have species-specific lipids. Bacteria too have unique and unusual lipids - they also play important roles in the immune response and inflammation. Mammals have evolved to recognise their own lipids as 'self' but can expertly detect foreign lipids from pathogenic bacteria, fungi and viruses. Once detected, the mammalian cell can mount an effective immune response to kill the invader. This then begs the question, if a bacterium has evolved to have lipids similar to a human's - how do we tell them apart? Looking more closely at the lipids themselves our project will focus on a special branch of interesting lipids called 'sphingolipids'. They were discovered >100 years ago in human brains by John Thudichum who knew that they played an important role in brain chemistry. It took until the 1930s for Herbert Carter to work out the chemistry of the sphingolipids - a polar, water soluble head and a fatty acid non-polar tail. They were found to be made from the common amino acid L-serine and a long carbon (>C16) chain. Scientists have long wondered about how sphingolipids are made inside the cell from common building blocks and then transported to the outside - this must happen very quickly when the cells are rapidly growing and dividing. Also, sphingolipids are dangerous - too many or too little in one cell can be lethal so the amounts are delicately controlled in a way we still don't fully understand. To uncover the chemical details and explore the enzymes involved we and other scientists are studying sphingolipid biosynthesis in humans, plants, yeast and bacteria. We have chosen an interesting bacterium Sphingomonas wittichii because it is not harmful to man - in fact it can degrade toxins to harmless molecules. These Sphingomonas are highly unusual because they make sphingolipids that resemble our own to some extent. We will explore how Sphingomonas makes sphingolipids by carefully characterising the genes that encode the enzymes that carry out the initial conversion of serine and the fatty acid, through the complex 2nd and 3rd steps, and beyond. We are helped because the Department of Energy (USA) have already sequenced the Sphingomonas wittichii genome and predict it to have >5000 genes. However, we do not know which ones are involved in sphingolipid biosynthesis. We will use chemical, biochemical, genetic and molecular biology methods to help us understand each step. We have already made a start and found an unusual small protein (~80 amino acids long) that we think links sphingolipid and fatty acid biosynthesis. Most of the work will be carried out in Edinburgh but we will also work with Jim Naismith in St.Andrews who can determine the 3D structure of a protein, as well as a genetics expert in the USA, Teresa Dunn. Our teamwork will put us ahead of our competitors. By the end of the grant we will have determined the basic roadmap of bacterial sphingolipid biosynthesis and be able to begin to compare it with the map in humans, plants and yeast. We'll obtain insight into how these species evolved to make the same sphingolipid and begin to understand how each controls the amount in each cell. Whilst we carry out the work we will make sure we give seminars to experts and the general public telling them what we've found out and will also publish in highly-rated international journals that will benefit UK science.
期刊论文(8)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1155/2013/194371
发表时间: 2013
期刊: BioMed research international
影响因子: --
作者: [Beattie AE, Gupta SD, Frankova L, Kazlauskaite A, Harmon JM, Dunn TM, Campopiano DJ]
通讯作者: Campopiano DJ
DOI: 10.1371/journal.pone.0112726
发表时间: 2014
期刊: PloS one
影响因子: 3.7
作者: [Wallock-Richards D, Doherty CJ, Doherty L, Clarke DJ, Place M, Govan JR, Campopiano DJ]
通讯作者: Campopiano DJ
Discovery of a cryptic sphingolipid pathway in E.coli - structural and functional analysis.
  • 批准号:
    BB/Y002210/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $72.11万
  • 财政年份:
    2024
  • 负责人:
    Dominic Campopiano
  • 依托单位:
Sphingolipids; key communicators from the microbial world.
  • 批准号:
    BB/X018490/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $6.03万
  • 财政年份:
    2023
  • 负责人:
    Dominic Campopiano
  • 依托单位:
Bacterial sphingolipids - revealing hidden biosynthetic pathways of key players in host-microbe interactions.
  • 批准号:
    BB/V001620/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $51.08万
  • 财政年份:
    2021
  • 负责人:
    Dominic Campopiano
  • 依托单位:
2019BBSRC-NSF/BIO. SynBioSphinx: building designer lipid membranes for adaptive resilience to environmental challenges.
  • 批准号:
    BB/T016841/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $49.08万
  • 财政年份:
    2020
  • 负责人:
    Dominic Campopiano
  • 依托单位:
国内基金
海外基金
中国棉铃虫核多角体病毒基因组库和分子进化
  • 批准号:
    30540076
  • 项目类别:
    专项基金项目
  • 资助金额:
    8.0万元
  • 批准年份:
    2005
  • 负责人:
    王汉中
  • 依托单位:
细菌脂蛋白(BLP)诱导LPS交叉耐受的分子机理研究