Integrated transcriptome, small RNA and degradome sequencing approaches provide insights into Ascochyta blight resistance in chickpea

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Genetical Analysis of Ascochyta Blight Resistance in Chickpea

Ascochyta blight, caused by Ascochyta rabiei (Pass.) Lab. is a devastating disease of chickpea (Cicer arietinum L.) worldwide. Available genetic variation for Ascochyta blight resistance in genus Cicer has prompted interest in the development and use of resistant cultivars that can be sown in autumn and, to increase seed yield in chickpea. Understanding the mode of inheritance of resistance to ...

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An Update on Genetic Resistance of Chickpea to Ascochyta Blight

Ascochyta blight (AB) caused by Ascochyta rabiei (Pass.) Labr. is an important and widespread disease of chickpea (Cicer arietinum L.) worldwide. The disease is particularly severe under cool and humid weather conditions. Breeding for host resistance is an efficient means to combat this disease. In this paper, attempts have been made to summarize the progress made in identifying resistance sour...

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genetics of ascochyta blight resistance in chickpea

available genetic variation for ascochyta blight resistance in genus cicer has prompted interest in the development and use of autumn sown resistant chickpea cultivars. a thorough understanding of the mode of inheritance of resistance to ascochyta blight in chickpea would assist the breeding efforts. in order to determine the number of genes, as well as to evaluate heritability and action of ge...

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Genome Analysis Identified Novel Candidate Genes for Ascochyta Blight Resistance in Chickpea Using Whole Genome Re-sequencing Data

Ascochyta blight (AB) is a fungal disease that can significantly reduce chickpea production in Australia and other regions of the world. In this study, 69 chickpea genotypes were sequenced using whole genome re-sequencing (WGRS) methods. They included 48 Australian varieties differing in their resistance ranking to AB, 16 advanced breeding lines from the Australian chickpea breeding program, fo...

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RNA Degradome Studies Give Insights into Ribosome Dynamics.

RNA metabolism is key to a number of crucial processes in the cell including transcription, RNA splicing, translation, and gene regulation. For efficient translation, mature mRNAs must have a 7methylguanosine cap on the 5' end to help recruit the translation machinery, and protect the mRNA from exonucleases. If the cap is removed during RNA degradation, a free 5' monophosphate is revealed. Like...

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ژورنال

عنوان ژورنال: Plant Biotechnology Journal

سال: 2018

ISSN: 1467-7644,1467-7652

DOI: 10.1111/pbi.13026