首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 109 毫秒
1.
微生物油脂是未来燃料和食品用油的重要潜在资源。近年来,随着系统生物学技术的快速发展,从全局角度理解产油微生物生理代谢及脂质积累的特征成为研究热点。组学技术作为系统生物学研究的重要工具被广泛用于揭示产油微生物脂质高效生产的机制研究中,这为产油微生物理性遗传改造和发酵过程控制提供了基础。文中对组学技术在产油微生物中的应用概况进行了综述,介绍了产油微生物组学分析常用的样品前处理及数据分析方法,综述了包括基因组、转录组、蛋白(修饰)组及代谢(脂质)组等在内的多种组学技术,以及组学数据基础上的数学模型在揭示产油微生物脂质高效生产机制中的研究,并对未来发展和应用进行了展望。  相似文献   

2.
薛小莉  覃重军 《生命科学》2013,(10):978-982
大肠杆菌是基础研究最透彻、应用广泛的微生物,构建含减小甚至是最小基因组的大肠杆菌将为合成生物学的研究和应用提供理想的底盘生物。介绍了大肠杆菌最小基因组的生长与繁殖必需基因的生物信息学分析和实验鉴定,基因组敲除技术,以及删减基因组的大肠杆菌菌株的构建和应用等方面的研究进展。  相似文献   

3.
工业微生物及其产品广泛用于工业、农业、医药等诸多领域,相关产业在国民经济中具有举足轻重的地位。高效的菌株是提高生产效率的核心,而先进发酵技术和仪器平台对充分开发菌株代谢潜能也很重要。近年来,工业微生物领域的研究取得了快速进展,人工智能、高效基因组编辑技术和合成生物学技术逐渐广泛使用,相关产业应用也在不断扩展。为进一步促进工业微生物在生物制造等领域的应用,《生物工程学报》特组织出版专刊,从微生物菌株的多样性和生理代谢、菌株改造技术、发酵过程优化和放大,高通量微液滴培养装备开发以及工业微生物应用等方面,分别阐述目前的研究进展,并展望未来的发展趋势,为促进工业微生物及生物制造等产业的发展奠定基础。  相似文献   

4.
丝状真菌作为低等真核生物,有典型的真核生物的细胞结构和遗传织组;作为微生物,又具有微生物在操作上的快速、简便,因此一向是生物学基础研究的重要材料。丝状真菌又是重要的工业生产用菌株和多种农作物的致病菌,这就更刺激了生物学家对研究丝状真菌的兴趣。  相似文献   

5.
孙敏  陈天宇  冯红 《微生物学通报》2021,48(5):1648-1661
[背景]耐辐射微生物是一类重要的极端微生物资源,在研究其耐受机制以及环境保护等方面具有重大的意义.[目的]从基因组和转录组角度解析耐辐射藤黄微球菌(Micrococcus luteus) V017的抗性遗传背景以及对辐照的转录组响应.[方法]利用PacBio平台对菌株V017进行基因组测序,通过比较基因组分析菌株V01...  相似文献   

6.
肠道微生物菌株资源库的构建与应用开发   总被引:1,自引:1,他引:0  
肠道微生物组在组成和功能上都具有极高的复杂性,大量基于免培养的微生物组学研究表明肠道菌群失调与多种疾病都存在密切关联,肠道菌群的稳态与宿主健康密切相关已是共识。同时,越来越多的研究者认识到,可培养微生物菌株资源是肠道微生物组研究从关联分析向功能验证、机理解析和应用开发方向深入发展的基础和保障。本文主要对近年来完成的一些具有代表性的人肠道微生物大规模分离培养和菌株资源库构建工作,进行整理,总结回顾肠道微生物分离培养技术和方法的进展;并通过几个有代表性的基于可培养微生物菌株资源开展的肠道微生物数据挖掘、宿主–微生物互作机理研究和应用开发的成果,展示肠道微生物菌株资源库的应用价值和开发潜力。  相似文献   

7.
高通量测序技术的发展提高了人们对微生物组的认识。宏基因组学技术因其全面和深入的分析功能被广泛应用于各种环境微生物组的研究中,尤其在阐明各种疾病与人体微生物组的关系中,宏基因组学技术具有重要作用。痤疮作为一种常见的皮肤疾病,严重影响人们皮肤美观度和心理健康。利用宏基因组学技术挖掘皮肤微生物与痤疮的关系,将有助于痤疮发病机理的研究和临床治疗方法的改进。通过介绍宏基因组学技术的发展背景、概述及其应用研究进展,探讨皮肤微生物与痤疮的关系,综述宏基因组学技术在痤疮研究中的应用现状,并总结目前宏基因组学技术在皮肤疾病研究中存在的问题,旨在为痤疮的宏基因组研究提供参考。  相似文献   

8.
叶际微生物组对植物的生长发育至关重要,但植物与其定殖微生物组相互作用机制尚不明确。目前植物与微生物互作研究多集中于根际微生物组,对叶际微生物组的研究较少,且这些研究未能从微生物互作的角度探究植物与微生物的相互作用机理。基于网络作图理论,将拟南芥基因组SNP (Single Nucleotide Polymorphisms)分子标记数据与微生物组网络特征值相关联,挖掘影响叶际微生物组网络结构的枢纽基因,以探究拟南芥塑造叶际微生物组网络结构的遗传机制。通过对188株拟南芥及其叶际微生物组数据的分析,识别出四种关系下的中心节点微生物,筛选到622个显著SNP位点。进一步构建了贝叶斯遗传网络,获得26个枢纽基因,这些基因可能参与了植物抗病、激素分泌和生长发育相关的分子途径。本研究从全基因组角度探究植物调控自身微生物组的遗传机制,揭示植物与微生物组如何互作促进植物健康,将为精准分子育种提供理论基础和遗传资源,并为合成菌群用于创制新型菌剂提供数据支持,具有重要的科学意义和应用价值。  相似文献   

9.
段云峰  朱宝利 《生物工程学报》2020,36(12):2511-2515
微生物是人体、动植物、土壤、沉积物、水体、空气等生境中最重要的生命体。对这些生境中微生物的分析已经成为一项基础的研究技术。微生物组测序与分析作为近年来快速发展的技术,已经在人类健康、环境污染治理、食品工业以及农牧业等领域得到了广泛应用。为了梳理和总结微生物组测序与分析技术的现状、发展状况和应用前景,本专题收录了16篇本领域的论文,分别从样本保存和处理、单菌基因组测序与分析、特殊生境中的微生物组特征分析、微生物组相关数据库和算法以及微生物组测序与分析专家共识等方面,详细介绍了微生物组测序与分析领域的发展态势,为推动我国微生物组测序与分析产业和科研的快速发展、促进微生物组相关产业的良性发展提供必要的参考。  相似文献   

10.
同种细菌间基因组差异及基因差异表达的鉴定与研究具有重要的分子生物学意义。某一菌株所特有的而另一菌株缺乏(或不相同)的基因可能决定着菌株重要的遗传特征,差减杂交技术是应研究真核生物基因差异表达之需要而发展起来的一种方法,本文就该方法的原理及其目前在原核细胞型微生物中的应用作一综述。  相似文献   

11.
中国白酒酒曲微生物组研究进展及趋势   总被引:3,自引:2,他引:1  
酒曲是中国白酒酿造过程的糖化发酵剂,对酿造酒体的品质与风味有重要影响,其质量与其中的微生物结构和酶系组成有重要关联.近年来基于现代生物学技术对白酒酒曲微生物组的研究表明,该体系具有丰富的科学内涵与广阔的应用价值.酒曲微生物组具有微生物物种丰度高、酶系功能复杂多样等特点,并与制备环境存在显著交互作用.基于酒曲微生物组特点...  相似文献   

12.
微生物组学的技术和方法及其应用   总被引:1,自引:0,他引:1       下载免费PDF全文
微生物组是指一个特定环境或生态系统中全部微生物及其遗传信息的集合, 其蕴藏着极为丰富的微生物资源。全面系统地解析微生物组的结构和功能, 将为解决人类面临的能源、生态环境、工农业生产和人体健康等重大问题带来新思路。然而, 微生物组学研究在很大程度上取决于其技术与方法的发展。在高通量测序技术出现以前, 微生物研究主要基于分离培养和指纹图谱等技术, 然而, 由于这些技术存在的缺陷, 人们对于微生物的认识十分有限。自21世纪初以来, 尽管高通量测序和质谱技术的革命性突破极大地促进了人们对于微生物的认识, 微生物组学技术在微生物组研究中的应用仍面临着诸多挑战。此外, 目前微生物组的结构和多样性等描述性研究已臻成熟, 微生物组学研究正处于从数量到质量、从结构到功能的关键转变时期。因此, 该文首先介绍了微生物组学的基本概念及其发展简史, 其次简述了微生物组学研究的相关技术和方法及其发展历程, 并进一步阐述了微生物组学的技术和方法在生态学研究中的应用及存在的主要问题, 最后从技术、理论和应用层面阐述了未来微生物组学技术和方法发展的前沿方向, 并提出了今后微生物组学研究的优先发展领域。  相似文献   

13.
动物胃肠道微生物对生产性能提高具有重要的作用,因此营养、微生物组与生产表型的互作研究已经成为国际研究热点。综述了2016年动物胃肠道微生物组学研究取得的十项重要成果,这些成果通过组学方法,研究了瘤胃纤维分解菌和尿素分解菌的功能基因多样性,揭示了微生物群落与日粮营养素、宿主基因型、环境的互作关系,阐明了反刍动物生产表型相关的瘤胃微生物种类和功能;首次构建猪肠道微生物组参考基因集,解析猪全肠道黏膜微生物组成,阐明了猪增重相关肠道微生物种类。这十大亮点成果将为国内动物营养学家开展动物胃肠道微生物组学研究提供参考。  相似文献   

14.
The vertical transmission of microbes from mother to offspring is critical to the survival, development, and health of animals. Invertebrate systems offer unique opportunities to conduct studies on microbiome‐development‐reproduction dynamics since reproductive modes ranging from oviparity to multiple types of viviparity are found in these animals. One such invertebrate is the live‐bearing cockroach, Diploptera punctata. Females carry embryos in their brood sac, which acts as the functional equivalent of the uterus and placenta. In our study, 16S rRNA sequencing was used to characterize maternal and embryonic microbiomes as well as the development of the whole‐body microbiome across nymphal development. We identified 50 phyla and 121 classes overall and found that mothers and their developing embryos had significantly different microbial communities. Of particular interest is the notable lack of diversity in the embryonic microbiome, which is comprised exclusively of Blattabacteria, indicating microbial transmission of only this symbiont during gestation. Our analysis of postnatal development reveals that significant amounts of non‐Blattabacteria species are not able to colonize newborn D. punctata until melanization, after which the microbial community rapidly and dynamically diversifies. While the role of these microbes during development has not been characterized, Blattabacteria must serve a critical role providing specific micronutrients lacking in milk secretions to the embryos during gestation. This research provides insight into the microbiome development, specifically with relation to viviparity, provisioning of milk‐like secretions, and mother–offspring interactions during pregnancy.  相似文献   

15.
The root microbiome refers to the community of microbes living in association with a plant's roots, and includes mutualists, pathogens, and commensals. Here we focus on recent advances in the study of root commensal community which is the major research object of microbiome-related researches. With the rapid development of new technologies, plant–commensal interactions can be explored with unprecedented breadth and depth. Both the soil environment and the host plant drive commensal community assembly. The bulk soil is the seed bank of potential commensals, and plants use root exudates and immune responses to build healthy microbial communities from the available microbes. The plant microbiome extends the functional system of plants by participating in a variety of processes, including nutrient absorption, growth promotion, and resistance to biotic and abiotic stresses. Plants and their microbiomes have evolved adaptation strategies over time. However, there is still a huge gap in our understanding of the regulatory mechanisms of plant–commensal interactions. In this review, we summarize recent research on the assembly of root microbial communities and the effects of these communities on plant growth and development, and look at the prospects for promoting sustainable agricultural development through the study of the root microbiome.  相似文献   

16.
The field of palaeomicrobiology is dramatically expanding thanks to recent advances in high-throughput biomolecular sequencing, which allows unprecedented access to the evolutionary history and ecology of human-associated and environmental microbes. Recently, human dental calculus has been shown to be an abundant, nearly ubiquitous, and long-term reservoir of the ancient oral microbiome, preserving not only microbial and host biomolecules but also dietary and environmental debris. Modern investigations of native human microbiota have demonstrated that the human microbiome plays a central role in health and chronic disease, raising questions about changes in microbial ecology, diversity and function through time. This paper explores the current state of ancient oral microbiome research and discusses successful applications, methodological challenges and future possibilities in elucidating the intimate evolutionary relationship between humans and their microbes.  相似文献   

17.
Recruitment of microorganisms to the rhizosphere varies among plant genotypes, yet an understanding of whether the microbiome can be altered by selection on the host is relatively unknown. Here, we performed a common garden study to characterize recruitment of rhizosphere microbiome, functional groups, for 20 expired Plant Variety Protection Act maize lines spanning a chronosequence of development from 1949 to 1986. This time frame brackets a series of agronomic innovations, namely improvements in breeding and the application of synthetic nitrogenous fertilizers, technologies that define modern industrial agriculture. We assessed the impact of chronological agronomic improvements on recruitment of the rhizosphere microbiome in maize, with emphasis on nitrogen cycling functional groups. In addition, we quantified the microbial genes involved in nitrogen cycling and predicted functional pathways present in the microbiome of each genotype. Both genetic relatednesses of host plant and decade of germplasm development were significant factors in the recruitment of the rhizosphere microbiome. More recently developed germplasm recruited fewer microbial taxa with the genetic capability for sustainable nitrogen provisioning and larger populations of microorganisms that contribute to N losses. This study indicates that the development of high-yielding varieties and agronomic management approaches of industrial agriculture inadvertently modified interactions between maize and its microbiome.Subject terms: Microbial ecology, Plant sciences, Agricultural genetics  相似文献   

18.
Although networks of microbial species have been widely used in the analysis of 16S rRNA sequencing data of a microbiome, the construction and analysis of a complete microbial gene network are in general problematic because of the large number of microbial genes in metagenomics studies. To overcome this limitation, we propose to map microbial genes to functional units, includ-ing KEGG orthologous groups and the evolutionary genealogy of genes:Non-supervised Ortholo-gous Groups (eggNOG) orthologous groups, to enable the construction and analysis of a microbial functional network. We devised two statistical methods to infer pairwise relationships between microbial functional units based on a deep sequencing dataset of gut microbiome from type 2 dia-betes (T2D) patients as well as healthy controls. Networks containing such functional units and their significant interactions were constructed subsequently. We conducted a variety of analyses of global properties, local properties, and functional modules in the resulting functional networks. Our data indicate that besides the observations consistent with the current knowledge, this study provides novel biological insights into the gut microbiome associated with T2D.  相似文献   

19.
《Trends in parasitology》2023,39(2):101-112
In recent years, with the development of microbial research technologies, microbiota research has received widespread attention. The parasitoid wasp genus Nasonia is a good model organism for studying insect behavior, development, evolutionary genetics, speciation, and symbiosis. This review describes key advances and progress in the field of the Nasonia–microbiome interactions. We provide an overview of the advantages of Nasonia as a model organism for microbiome studies, list research methods to study the Nasonia microbiome, and discuss recent discoveries in Nasonia microbiome research. This summary of the complexities of Nasonia–microbiome relationships will help to contribute to a better understanding of the interactions between animals and their microbiomes and establish a clear research direction for Nasonia–microbiome interactions in the future.  相似文献   

20.
种子是种子植物的繁殖器官,也是多种有益微生物和病原菌的传递载体。种子微生物与植物的生长发育、健康程度、品质及产量等密切相关。随着微生物生态学和微生物组学技术的发展,国内外有关植物微生物组的研究突飞猛进,尤其植物微生态相关的根际微生物组和叶际微生物组的研究已经成为焦点和热点。相比之下,对植物种子内生微生物组的研究还尚未引起足够的重视。细菌是种子内生微生物的主要类群,本文将重点从种子内生细菌的类群组成、生物学功能、传播途径和核心微生物组四个方面对近年来的研究进展进行概括总结,剖析当前种子内生微生物组研究领域亟待解决的问题以及未来的研究方向与思路。  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号