课题基金 / 基金详情

NSF Postdoctoral Fellowship in Biology FY 2020: Elucidating Root Knot Nematode Genetic Resistance through de novo Genome Assembly of Cultivated and Wild Chili Peppers

NSF Postdoctoral Fellowship in Biology FY 2020: Elucidating Root Knot Nematode Genetic Resistance through de novo Genome Assembly of Cultivated and Wild Chili Peppers
2020 财年 NSF 生物学博士后奖学金:通过栽培辣椒和野生辣椒的从头基因组组装阐明根结线虫遗传抗性
批准号:
2010930
负责人:
Emily Delorean
金额:
$21.6万
依托单位:
依托单位国家:
美国
项目类别:
Fellowship Award
财政年份:
2020
资助国家:
美国
项目状态:
已结题
起止时间:
2020-08-01 至 2024-07-31

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中文摘要
翻译
该行动资助了2020财年NSF国家植物基因组计划生物学博士后研究奖学金。该研究金支持研究员在东道实验室的研究和培训计划,研究员还提出了扩大生物学参与的计划。艾米丽德洛瑞恩的研究和培训计划的标题是“通过栽培和野生辣椒的从头基因组组装阐明根结线虫的遗传抗性”。(USDA-ARS)和北卡罗来纳州州立大学以及赞助科学家是阿曼达赫尔斯-坎普和威廉鲁特博士。辣椒是受根结线虫(RKN)危害最严重的蔬菜作物之一,在美国,每年约有8.986亿结雅的辣椒损失,损失率约为12.2%。然而,辣椒抗根结线虫育种受到基因组和遗传技术的限制。该项目将利用最先进的基因组工具和资源来解决这一限制,以确定新的抗性基因,以在辣椒基因组中的已知抗性基因“热点”中的新兴和高毒力RKN物种。一旦确定,产生的抗性基因将作为育种者用于开发抗性辣椒品种的重要新遗传资源。培训目标包括基因组组装、种质开发和植物病理学方面的技术培训,以及通过“准备教授”认证计划进行的正式教学培训。更广泛的影响包括与同行学者计划合作向本科生教授生物信息学,并与现有的外展计划合作,招募代表性不足的群体的年轻人进入STEM领域。该项目旨在利用遗传和基因组技术来识别和引入新的遗传多样性RKN抗性到栽培辣椒。具体而言,杂交植物将通过杂交栽培辣椒(对根结线虫物种南方根结线虫、爪哇根结线虫和花生根结线虫具有抗性)和祖先辣椒(对新的高毒力根结线虫物种肠洛比根结线虫具有抗性)来产生。将使用“trio-binning”(一种利用长和短读段测序的组合的技术)对所得杂交体进行测序,以生成所有四个亲本基因组的基因组组装体。长读段测序将允许解析高度重复的抗性基因“热点”,改进当前的辣椒参考基因组组装,并提供已知具有多个单倍型用于作图的该区域的泛基因组表示。祖先辣椒(抗M。enterolobii)和栽培辣椒(抗M. incognita,M. javanica和M. arenaria)将用于“堆叠”所有四个物种的抗性基因,并创建一个抗性基因的作图群体。肠叶蜂。最后,基于序列的基因分型标记,与精密育种方法,如标记辅助育种和基因组选择兼容,将开发使用基因组组装产生的序列数据。本研究中产生的数据和植物材料将通过补充同行评审出版物(表型数据),国家生物技术信息数据库中心(从头基因组组装和测序数据)和美国国家植物种质系统(植物材料)公开。通过这项研究开发的资源、工具和产品将为辣椒育种计划提供遗传手段,以可持续地解决由于根结线虫造成的产量损失。关键词:抗根结线虫,辣椒,茄科,基因组测序和组装,三分箱,渐渗,栽培和野生祖先系,该奖项反映了NSF的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
This action funds an NSF National Plant Genome Initiative Postdoctoral Research Fellowship in Biology for FY 2020. The fellowship supports a research and training plan in a host laboratory for the Fellow who also presents a plan to broaden participation in biology. The title of the research and training plan for this fellowship to Emily Delorean is " Elucidating Root Knot Nematode Genetic Resistance Through de novo Genome Assembly of Cultivated and Wild Chili Peppers" The host institutions for the fellowship are the United States Department of Agriculture – Agricultural Research Service (USDA-ARS) and North Carolina State University and the sponsoring scientists are Drs. Amanda Hulse-Kemp and William Rutter.Root knot nematode infection threatens vegetable crop production worldwide. Chili pepper is one of the vegetable crops severely threatened by root knot nematode (RKN) with an estimated loss of 12.2% of the $898.6 million annual crop in the U.S.A. Due to the limitations in sustainable field managements controls, genetic resistance presents a promising avenue to protect crop yields. However, breeding for root knot nematode resistance in chili peppers is limited by the availability of genomic and genetic technologies. This project will address this limitation using cutting edge genomic tools and resources to identify new resistance genes to an emerging and hypervirulent RKN species in a known resistance gene "hotspot" in the chili pepper genome. Once identified, the resulting resistance genes will serve as an important new genetic resource for breeders to use in developing resistant chili pepper varieties. Training objectives include technical training in genome assembly, germplasm development and plant pathology as well as formal training in teaching through the "Preparing the Professoriate" certification program. Broader impacts include teaching bioinformatics to undergraduate students in collaboration with the Peer Scholars program and working with existing outreach programs to recruit young people of underrepresented groups to the STEM fields. This project seeks to use genetic and genomic technologies to identify and introduce new genetic diversity in RKN resistance into cultivated chili pepper. Specifically, hybrid plants will be generated by crossing cultivated chili (with resistance to root knot nematode species Meloidogyne incognita, Meloidogyne javanica, and Meloidogyne arenaria) and ancestral chili (with resistance to Meloidogyne enterolobii, a new and highly virulent root knot nematode species). The resultant hybrids will be sequenced using "trio-binning", a technique that utilizes a combination of long and short read sequencing, to generate genome assemblies for all four both parental genomes. Long read sequencing will allow resolution of the highly repetitive resistance gene "hotspot", improving the current chili pepper reference genome assembly and providing a pan-genome representation of this region that is known to have multiple haplotypes for mapping. Hybrids between ancestral chili (resistant to M. enterolobii) and cultivated chili (resistant to M. incognita, M. javanica, and M. arenaria) will be used to "stack" resistance genes to all four species and create a mapping population for the resistance genes to M. enterolobii. Finally, sequence-based genotyping markers that are compatible with precision breeding methods such as marker assisted breeding and genomic selection will be developed using sequence data generated for the genome assemblies. Data and plant material generated in this research will be made publicly available through supplements of resulting peer-reviewed publication (phenotypic data), the National Center for Biotechnology Information database (de novo genome assemblies and sequencing data), and the U.S. National Plant Germplasm System (plant material). The resources, tools and products developed through this research will provide chili pepper breeding programs with the genetic means to sustainably address the yield losses due to root knot nematode.Keywords: root knot nematode resistance, chili pepper, Solanaceae, genome sequence and assembly, trio-binning, introgression, cultivated and wild ancestral lines, mapping populationThis award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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