Integrating genomics for chickpea improvement: achievements and opportunities
cg.contact | R.K.Varshney@CGIAR.ORG | en_US |
cg.contributor.center | International Center for Agricultural Research in the Dry Areas - ICARDA | en_US |
cg.contributor.center | International Crops Research Institute for the Semi-Arid Tropics - ICRISAT | en_US |
cg.contributor.center | Ethiopian Institute of Agricultural Research - EIAR | en_US |
cg.contributor.center | The University of Western Australia, Faculty of Science, School of Plant Biology - UWA - FoS - SoPB | en_US |
cg.contributor.center | Indian Council of Agricultural Research, Indian Agricultural Research Institute - ICAR-IARI | en_US |
cg.contributor.center | Indian Council of Agricultural Research, Indian Institute of Pulses Research - ICAR-IIPR | en_US |
cg.contributor.center | The University of Western Australia - UWA | en_US |
cg.contributor.center | Osmania University | en_US |
cg.contributor.center | University of Saskatchewan, College of Agriculture and Bioresources, Crop Development Centre - USAK - AGBIO- CDC | en_US |
cg.contributor.center | Rani Lakshmi Bai Central Agricultural University - RLBCAU | en_US |
cg.contributor.crp | CGIAR Research Program on Grain Legumes and Dryland Cereals - GLDC | en_US |
cg.contributor.funder | CGIAR System Organization - CGIAR | en_US |
cg.contributor.project-lead-institute | International Center for Agricultural Research in the Dry Areas - ICARDA | en_US |
cg.coverage.country | IN | en_US |
cg.coverage.region | Southern Asia | en_US |
cg.creator.id | Roorkiwal, Manish: 0000-0001-6595-281X | en_US |
cg.creator.id | Thudi, Mahendar: 0000-0003-2851-6837 | en_US |
cg.creator.id | Hamwieh, Aladdin: 0000-0001-6060-5560 | en_US |
cg.creator.id | Agrawal, Shiv Kumar: 0000-0001-8407-3562 | en_US |
cg.identifier.doi | https://dx.doi.org/10.1007/s00122-020-03584-2 | en_US |
cg.isijournal | ISI Journal | en_US |
cg.issn | 0040-5752 | en_US |
cg.journal | TAG Theoretical and Applied Genetics | en_US |
cg.subject.agrovoc | breeding | en_US |
cg.subject.agrovoc | chickpeas | en_US |
cg.volume | 133 | en_US |
dc.contributor | Bharadwaj, Chellapilla | en_US |
dc.contributor | Barmukh, Rutwik | en_US |
dc.contributor | Dixit, Girish | en_US |
dc.contributor | Thudi, Mahendar | en_US |
dc.contributor | Gaur, Pooran | en_US |
dc.contributor | Chaturvedi, Sushil k. | en_US |
dc.contributor | Fikre, Asnake | en_US |
dc.contributor | Hamwieh, Aladdin | en_US |
dc.contributor | Agrawal, Shiv Kumar | en_US |
dc.contributor | Sachdeva, Supriya | en_US |
dc.contributor | Ojiewo, Chris | en_US |
dc.contributor | Taran, Bunyamin | en_US |
dc.contributor | Girma, Nigusie | en_US |
dc.contributor | Singh, Narendra Pratap | en_US |
dc.contributor | Siddique, Kadambot H M | en_US |
dc.contributor | Varshney, Rajeev | en_US |
dc.creator | Roorkiwal, Manish | en_US |
dc.date.accessioned | 2020-10-08T16:49:21Z | |
dc.date.available | 2020-10-08T16:49:21Z | |
dc.description.abstract | The implementation of novel breeding technologies is expected to contribute substantial improvements in crop productivity. While conventional breeding methods have led to development of more than 200 improved chickpea varieties in the past, still there is ample scope to increase productivity. It is predicted that integration of modern genomic resources with conventional breeding efforts will help in the delivery of climate-resilient chickpea varieties in comparatively less time. Recent advances in genomics tools and technologies have facilitated the generation of large-scale sequencing and genotyping data sets in chickpea. Combined analysis of high-resolution phenotypic and genetic data is paving the way for identifying genes and biological pathways associated with breeding-related traits. Genomics technologies have been used to develop diagnostic markers for use in marker-assisted backcrossing programmes, which have yielded several molecular breeding products in chickpea. We anticipate that a sequence-based holistic breeding approach, including the integration of functional omics, parental selection, forward breeding and genome-wide selection, will bring a paradigm shift in development of superior chickpea varieties. There is a need to integrate the knowledge generated by modern genomics technologies with molecular breeding efforts to bridge the genome-to-phenome gap. Here, we review recent advances that have led to new possibilities for developing and screening breeding populations, and provide strategies for enhancing the selection efficiency and accelerating the rate of genetic gain in chickpea. | en_US |
dc.format | en_US | |
dc.identifier | https://mel.cgiar.org/reporting/downloadmelspace/hash/d04f4bdeab55c435f20ebb31485f1d3e/v/05b31295d54447bb3696c6c70299d105 | en_US |
dc.identifier.citation | Manish Roorkiwal, Chellapilla Bharadwaj, Rutwik Barmukh, Girish Dixit, Mahendar Thudi, Pooran Gaur, Sushil k. Chaturvedi, Asnake Fikre, Aladdin Hamwieh, Shiv Kumar Agrawal, Supriya Sachdeva, Chris Ojiewo, Bunyamin Taran, Nigusie Girma, Narendra Pratap Singh, Kadambot H M Siddique, Rajeev Varshney. (6/4/2020). Integrating genomics for chickpea improvement: achievements and opportunities. TAG Theoretical and Applied Genetics, 133, pp. 1703-1720. | en_US |
dc.identifier.status | Open access | en_US |
dc.identifier.uri | https://hdl.handle.net/20.500.11766/11880 | |
dc.language | en | en_US |
dc.publisher | Springer Verlag (Germany) | en_US |
dc.rights | CC-BY-4.0 | en_US |
dc.source | TAG Theoretical and Applied Genetics;133,(2020) Pagination 1703-1720 | en_US |
dc.subject | chickpea improvement | en_US |
dc.subject | low cost genotyping | en_US |
dc.subject | genomic technologies | en_US |
dc.title | Integrating genomics for chickpea improvement: achievements and opportunities | en_US |
dc.type | Journal Article | en_US |
dcterms.available | 2020-04-06 | en_US |
dcterms.extent | 1703-1720 | en_US |
mel.impact-factor | 4.439 | en_US |