Rapid discovery of thousands of intact biosynthetic gene pathways for bioactive natural product compounds from un-sequenced filamentous fungi using a novel FAC-NGS tool
使用新型 FAC-NGS 工具从未测序的丝状真菌中快速发现数千个完整的生物活性天然产物化合物的生物合成基因途径
基本信息
- 批准号:10053396
- 负责人:
- 金额:$ 100万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:2019
- 资助国家:美国
- 起止时间:2019-01-15 至 2023-01-31
- 项目状态:已结题
- 来源:
- 关键词:AddressAgricultureAnabolismAnti-Infective AgentsAntibiotic ResistanceAntibioticsAreaArtificial ChromosomesBacteriaBacterial Artificial ChromosomesBar CodesBiological AssayBiologyBiomedical ResearchCenters for Disease Control and Prevention (U.S.)ChemicalsClinicalCollaborationsCollectionCommunicable DiseasesDataDevelopmentEngineeringGene ClusterGenesGenomeGenomicsGoalsHealthHigh Pressure Liquid ChromatographyHigh-Throughput Nucleotide SequencingIndividualIndustryInflammationLaboratoriesLeadLibrariesLichen - organismLinkMass Spectrum AnalysisMedicineMetagenomicsMethodsMicrobeMicrobial Drug ResistanceMiningMoldsNatural ProductsPathway interactionsPharmacologic SubstancePhasePloidiesProcessPublic HealthResearch Project GrantsSourceStructureTechnologyTestingTherapeuticanti-cancerantimicrobialantimicrobial drugbioactive natural productschronic infectiondrug discoverydrug resistant microorganismfungusimprovedindexinginnovationnext generation sequencingnovelnovel therapeuticspandemic preparednesssmall moleculesymbionttherapeutic lead compoundtoolvirtual
项目摘要
Project Summary/Abstract
The goal of this project is to develop a highly rigorous technology platform utilizing lichen and un-
sequenced fungi to revive the discovery pipeline for fungal-derived therapeutics capable of
treating chronic infections and health conditions. The emergence of drug resistant microbes, the
diminishing supply of novel classes of antibiotics, and the dramatic reduction in discovery and
development of natural products (NPs, also termed secondary metabolites, SMs) and other small
molecule compounds from bacteria and fungi for anti-infective, anti-proliferation and anti-
inflammation agents since 1960s have amplified a serious public health concern championed by
the CDC and WHO. We posit that the revival of large-scale drug discovery pipelines using under-
exploited microbes including lichen fungal symbionts and un-sequenced fungi will provide a new
cadre of novel drug leads and solutions towards the antibiotic-resistance crisis. Fungal SMs are
also important sources of anticancer compounds among other widespread clinical uses. However,
only 1% or less of filamentous fungi have been sequenced and high throughput sequencing has
shown that only about 10% of fungal SM-biosynthetic gene clusters (BGCs) are expressed under
laboratory conditions. Therefore, revolutionary technologies and tools are urgently needed to
discover and more effectively dissect the biosynthesis of fungal SMs in order to more efficiently
access novel fungal metabolites as potential pharmaceutical agents. Recently, we developed a
novel fungal artificial chromosome/mass spectrometry (FAC-MS) method that allows the direct
capture, heterologous expression and chemical analysis of an entire set of large intact SM-BGCs
from sequenced fungi as shown in Clevenger et al., Nat. Chem. Biol, 2017. We have also shown
that shuttle bacterial artificial chromosome (BAC) technology combined with BAC pooling,
indexing, and next-gen sequencing (NGS) can achieve 100kb-linked sequencing and assembly.
Therefore, in this project, we will develop an innovative fungal technology platform by
integrating FAC-MS with BAC/NGS sequencing and bioactivity profiling to prove the concept that
novel bioactive SMs can be captured from hard to grow (e.g. lichen fungal symbionts, Phase I)
and un-sequenced fungi (Phase II). This technology should improve fungal SM discovery
100~1000 fold and result in the discovery of at least 5 novel antimicrobial drug leads from lichen
and un-sequenced fungi.
项目摘要/摘要
该项目的目的是利用地衣和不合格开发一个高度严格的技术平台
测序真菌恢复了真菌衍生的治疗剂的发现管道
治疗慢性感染和健康状况。耐药微生物的出现,
新颖类抗生素的供应减少,发现和发现的急剧减少
天然产物的开发(NP,也称为二级代谢产物,SMS)和其他小型
来自细菌和真菌的分子化合物,用于抗感染,抗增殖和抗 -
自1960年代以来的炎症药物已经扩大了一个严重的公共卫生问题。
疾病预防控制中心和谁。我们认为,使用不足的大规模药物发现管道复兴
被剥削的微生物在内
新型药物的铅和解决方案的干部用于抗生素抗性危机。真菌短信是
抗癌化合物的重要来源以及其他广泛的临床用途。然而,
仅测序了1%或更少的丝状真菌,并且高通量测序具有
表明只有大约10%的真菌Sm-Biosynthetic Gene簇(BGC)在
实验室条件。因此,迫切需要革命性的技术和工具
发现并更有效地剖析真菌SMS的生物合成,以便更有效
获取新型真菌代谢物作为潜在的药物。最近,我们开发了一个
新型真菌人造染色体/质谱法(FAC-MS)方法,该方法允许直接
捕获,异源表达和化学分析整个完整的SM-BGC
如Clevenger等人所示的测序真菌。化学Biol,2017年。我们也显示了
那种穿梭细菌人造染色体(BAC)技术与BAC合并相结合,
索引和下一代测序(NGS)可以实现100KB连接的测序和组装。
因此,在这个项目中,我们将开发一个创新的真菌技术平台
将FAC-MS与BAC/NGS测序和生物活性分析相结合,以证明以下概念
新型的生物活性SMS可以从难以生长中捕获(例如地衣真菌共生体,I期)
和未序列的真菌(第二阶段)。该技术应该改善真菌SM发现
100〜1000倍,导致发现至少5种新颖的抗菌药物。
和未序列的真菌。
项目成果
期刊论文数量(0)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
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Jin Woo Bok其他文献
Jin Woo Bok的其他文献
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{{ truncateString('Jin Woo Bok', 18)}}的其他基金
Rapid discovery of thousands of intact biosynthetic gene pathways for bioactive natural product compounds from un-sequenced filamentous fungi using a novel FAC-NGS tool
使用新型 FAC-NGS 工具从未测序的丝状真菌中快速发现数千个完整的生物活性天然产物化合物的生物合成基因途径
- 批准号:
10348139 - 财政年份:2019
- 资助金额:
$ 100万 - 项目类别:
Rapid discovery of thousands of intact biosynthetic gene pathways for bioactive natural product compounds from un-sequenced filamentous fungi using a novel FAC-NGS tool
使用新型 FAC-NGS 工具从未测序的丝状真菌中快速发现数千个完整的生物活性天然产物化合物的生物合成基因途径
- 批准号:
10092087 - 财政年份:2019
- 资助金额:
$ 100万 - 项目类别:
Expanding small molecule functional metagenomics through shuttle BAC expression i
通过穿梭 BAC 表达扩展小分子功能宏基因组
- 批准号:
8781067 - 财政年份:2014
- 资助金额:
$ 100万 - 项目类别:
Expanding small molecule functional metagenomics through shuttle BAC expression i
通过穿梭 BAC 表达扩展小分子功能宏基因组
- 批准号:
8846537 - 财政年份:2014
- 资助金额:
$ 100万 - 项目类别:
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Rapid discovery of thousands of intact biosynthetic gene pathways for bioactive natural product compounds from un-sequenced filamentous fungi using a novel FAC-NGS tool
使用新型 FAC-NGS 工具从未测序的丝状真菌中快速发现数千个完整的生物活性天然产物化合物的生物合成基因途径
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10348139 - 财政年份:2019
- 资助金额:
$ 100万 - 项目类别:
Rapid discovery of thousands of intact biosynthetic gene pathways for bioactive natural product compounds from un-sequenced filamentous fungi using a novel FAC-NGS tool
使用新型 FAC-NGS 工具从未测序的丝状真菌中快速发现数千个完整的生物活性天然产物化合物的生物合成基因途径
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