H2020Индивидуална стипендия2020–2023

OCNANO · Depicting the richest source of pathogen linked miscellaneous gene expression in orphan crops by Nanopore.

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2020-12-01 → 2023-09-07
Финансиране от ЕС
224 934 €
Участници
1
Схема
MSCA-IF

Линиите свързват координатора с партньорите.

Накратко на български

Генната експресия при черния пипер и негови диви роднини се анализира, за да се разбере как растенията реагират на гъбичната болест „кракогниене“. Това помага за създаването на по-устойчиви земеделски системи и намаляване на големите आर्थिकни загуби от реколтата.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Depicting the richest source of pathogen linked miscellaneous gene expression in orphan crops by Nanopore.

The proposed MSCA work involved the depiction of pathogen linked miscellaneous gene expression in resistant and susceptible sources of black pepper by Nanopore. Neglected or orphan crops like black pepper(Piper nigrum L.), has the potential to diversify the human diet, increase food production levels and trade so as to enable more sustainable and resilient agro- and horti-food systems. The economic value of this neglected crop is drastically affected (an annual crop loss of $ 4.5-7.5 million) by the dreadful foot rot disease caused by the oomycete fungus Phytophthora capsica. Surprisingly, the wild relative of black pepper, Piper colubrinum was totally resistant to this oomycete. This project was aimed to (a) annotate the transcriptomes of P.nigrum and P. colubrinum; (b) identify pathogen gene expression during infection using a capture array and (c) perform comparative analysis of P. nigrum and P. colubrinum gene expression during infection. The first part of the project was executed, after travelling to India. The rooted cuttings of resistant and susceptible plants were collected, pathogen was isolated and confirmed, and total RNA from pathogen induced wild (resistant) and cultivated (susceptible) varieties was extracted in sophisticated laboratory in India. Post pathogen inoculation changes (48hpi and 72hpi) confirmed the efficiency of pathogen induction studies. Further completion of subsequent objectives solely relied upon receival of isolated samples from India based on negotiation agreements. Due to unforeseen delay in receiving the extracted RNA samples, an alternate workplan was suggested which aimed to study the premature transcription termination of a significant class of gene families -the Nucleotide binding Leucine rich repeat Receptors (NLRs) involved in the plant immune response to detect the intracellular invasion of pathogen effector proteins. There exists a balance maintenance in the fine control of NLRs- at low levels for pathogen surveillance, at high levels for pathogen invasion and at uncontrolled levels which trigger autoimmunity or hybrid necrosis. The premature transcription termination of NLRs is also affected by the RNA-binding protein FPA, which have an impact on plant immunity. To understand how natural variation in transcription termination of NLRs alter its function, FPA overexpression lines of Arabidopsis were crossed with accessions with diverse NLRs and accessions with incompatible alleles. The harvested seeds of individual crosses were screened for BASTA resistance. Enrichment of NLR targets to study the splicing, methylation patterns and poly (A) site choices employing adaptive sampling on GridION platforms in HMW genomic DNA resulted in significant higher coverage across Arabidopsis genome. Research progressing towards understanding RNA processing of plant immune response genes by applying leading edge Oxford Nanopore Technologies, can further enhance crop productivity, food security, knowledge-based economy and society and contribute to the achievement of several UN Sustainable Development Goals. The study enables to unravel the genetic resistance or susceptible mechanisms during pathogen invasion which can eventually lead to the rescue of orphan crops like black pepper from the devastating pathogen. Targeting major plant immune response NLR genes to understand its genetic control and evolution, will establish an unknown aspect of plant immune system. Altogether the proposed work can add our capability to revolutionise crop protection.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Modern agriculture is dominated by crops noticeable for intense food supply leaving behind a class of neglected or orphan crops. Relatively poorly studied orphan crops have the potential to diversify the human diet, increase agricultural food productivity levels and enable more sustainable and resilient agro- and horti-food systems. Here, we focus on two such crops-Piper nigrum (black pepper) the most important spice traded internationally and Piper colubrinum, a wild relative of black pepper introduced from Brazil, which is the only known source of resistance to diseases such as foot rot or quick wilt caused by an Oomycete Phytophthora capsici. Negligible genome sequence data exists for either species. Although agricultural practices for making P. nigrum resistant to this Oomycete by interspecific hybridization with P.colubrinum are well known, no effective strategies have been generated yet. The exact reason behind the resistance of P.colubrinum is not yet understood, thus leaving open a fertile area of investigation.With this background, OCNANO aims to reveal the basis of pathogen resistance that distinguish resistant from susceptible species of Piper. We will employ Oxford nanopore MinION technology to address this issue with three specific objectives:(1) Annotate the transcriptomes of P.nigrum and P. colubrinum; (2) Identify pathogen gene expression during infection using a capture array; (3) Comparative analysis of P. nigrum and P. colubrinum gene expression during infection. Innovative strategies like nanopore in combination with other sequencing approaches can transform annotation and enable the richest understanding of gene expression during pathogen attack. Research progressing towards the rescue of such orphan crops from their environmental stresses, by applying leading edge technologies, can further enhance crop productivity, food security, knowledge based economy and society and contribute to the achievement of several UN Sustainable Development Goals.

Оригинален текст от CORDIS (на английски).

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Връзки

Данни: CORDIS, © Европейски съюз