Insights and advances in integrating multi-omic approaches for potato crop improvement

•A literature review regarding the recent advances in multi-omics approaches towards potato improvement.•Deep understanding of the complexity of potato genome due to its tetraploid nature is of the utmost importance, to implement precise and targeted breeding in tetraploid potato genotypes, as well...

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Veröffentlicht in:Scientia horticulturae 2022-11, Vol.305, p.111387, Article 111387
Hauptverfasser: Boutsika, Anastasia, Tanou, Georgia, Xanthopoulou, Aliki, Samiotaki, Martina, Nianiou-Obeidat, Irini, Ganopoulos, Ioannis, Mellidou, Ifigeneia
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container_title Scientia horticulturae
container_volume 305
creator Boutsika, Anastasia
Tanou, Georgia
Xanthopoulou, Aliki
Samiotaki, Martina
Nianiou-Obeidat, Irini
Ganopoulos, Ioannis
Mellidou, Ifigeneia
description •A literature review regarding the recent advances in multi-omics approaches towards potato improvement.•Deep understanding of the complexity of potato genome due to its tetraploid nature is of the utmost importance, to implement precise and targeted breeding in tetraploid potato genotypes, as well as to develop new diploid cultivars escaping inbreeding depression.•Unraveling the “holo-genetic” basis of agriculturally important traits can be crucial for potato breeding especially under resource-limiting environments.•Additional post-genomics studies, such as functional genomics, transcriptomics, proteomics and metagenomics are required to comprehend the genetic base of potato's quality traits. In the forthcoming era of climate change and degradation of culturable land, there is an urgent need to secure global food supply in a sustainable manner. unraveling the genetic mysteries underlying interactions between functional genetic and metabolic networks through fostering the use of high-throughput -omic technologies can serve as a valuable tool towards characterizing plant phenotypic diversity and plasticity, to mitigate current threats of the climate change scenario on agriculture. Recently, a colossal number of -omic studies, including genomics, transcriptomics, proteomics, metabolomics, epigenomics and metagenomics, have enabled the identification of genes, proteins, and metabolites, that are related to desirable phenotypes, explaining the “holo-genetic” basis of agriculturally important traits, especially under resource-limiting environments. Undoubtedly, the integration of such big datasets with machine learning is highly demanding, mainly due to the lack of universal protocols to predict gene models or networks that govern various key traits. Among other important plant species contributing to food production, potato (Solanum tuberosum L.) represents one of top crop species worldwide, in terms of nutrition contribution, yielding capacity, and as a component of diverse cropping systems, especially for the developing counties. The potato genome is highly heterozygous as a result of self-incompatibility of the diploid potato species, suffering acute inbreeding depression. In this review, we discuss recent developments of high-throughput genomic technologies, as a useful tool for the selection of potato germplasm with improved nutritional value and quality traits.
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In the forthcoming era of climate change and degradation of culturable land, there is an urgent need to secure global food supply in a sustainable manner. unraveling the genetic mysteries underlying interactions between functional genetic and metabolic networks through fostering the use of high-throughput -omic technologies can serve as a valuable tool towards characterizing plant phenotypic diversity and plasticity, to mitigate current threats of the climate change scenario on agriculture. Recently, a colossal number of -omic studies, including genomics, transcriptomics, proteomics, metabolomics, epigenomics and metagenomics, have enabled the identification of genes, proteins, and metabolites, that are related to desirable phenotypes, explaining the “holo-genetic” basis of agriculturally important traits, especially under resource-limiting environments. Undoubtedly, the integration of such big datasets with machine learning is highly demanding, mainly due to the lack of universal protocols to predict gene models or networks that govern various key traits. Among other important plant species contributing to food production, potato (Solanum tuberosum L.) represents one of top crop species worldwide, in terms of nutrition contribution, yielding capacity, and as a component of diverse cropping systems, especially for the developing counties. The potato genome is highly heterozygous as a result of self-incompatibility of the diploid potato species, suffering acute inbreeding depression. 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subjects climate change
data collection
diploidy
epigenetics
food production
food supply chain
genes
germplasm
heterozygosity
metabolites
Metabolomics
Metagenomics
Methylation
nutrition
nutritive value
phenotypic variation
Potato breeding
potatoes
Proteomics
Quantitative trait locus
Solanum tuberosum
species
Transcriptomics
title Insights and advances in integrating multi-omic approaches for potato crop improvement
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