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1.
De novo
assembly of
Zea nicaraguensis
root transcriptome identified 5 261 full-length transcripts
JIANG Wei, LIU Hai-lan, WU Yuan-qi, ZHANG Su-zhi, LIU Jian, LU Yan-li, TANG Qi-lin, RONG Ting-zhao
Journal of Integrative Agriculture 2016, 15 (
06
): 1207-1217. DOI:
10.1016/S2095-3119(15)61153-4
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1194
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Zea nicaraguensis
, a wild relative of cultivated maize (
Zea mays
subsp. mays), is considered to be a valuable germplasm to improve the waterlogging tolerance of cultivated maize. Use of reverse genetic-based gene cloning and function verification to discover waterlogging tolerance genes in
Z. nicaraguensis
is currently impractical, because little gene sequence information for
Z. nicaraguensis
is available in public databases. In this study,
Z. nicaraguensis
seedlings were subjected to simulated waterlogging stress and total RNAs were isolated from roots stressed and non-stressed controls. In total, 80 mol L
–1
Illumina 100-bp paired-end reads were generated.
De novo
assembly of the reads generated 81 002 final non-redundant contigs, from which 5 261 full-length transcripts were identified. Among these full-length transcripts, 3 169 had at least one Gene Ontology (GO) annotation, 2 354 received cluster of orthologous groups (COG) terms, and 1 992 were assigned a Kyoto encyclopedia of genes and genomes (KEGG) Orthology number. These sequence data represent a valuable resource for identification of
Z. nicaraguensis
genes involved in waterlogging response.
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2.
Perennial aneuploidy as a potential material for gene introgression between maize and Zea perennis
FU Jie, YANG Xiu-yan, CHENG Ming-jun, Lü Gui-hua, WANG Pei, WU Yuan-qi, ZHENG Ming-min, ZHOU Shu-feng, RONG Ting-zhao, TANG Qi-lin
Journal of Integrative Agriculture 2015, 14 (
5
): 839-846. DOI:
10.1016/S2095-3119(14)60874-1
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2433
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Hybridization, which allows for gene flow between crops, is difficult between maize and Zea perennis. In this study, we aim to initiate and study gene flow between maize and Z. perennis via a special aneuploid plant (MDT) derived from an interspecific hybrid of the two species. The chromosome constitution and morphological characters of MDT as well as certain backcross progenies were examined. Results from genomic in situ hybridization (GISH) indicate that aneuploid MDT consisted of nine maize chromosomes and 30 Z. perennis chromosomes. The backcross progenies of MDT×maize displayed significant diversity of vegetative and ear morphology; several unusual plants with specific chromosome constitution were founded in its progenies. Some special perennial progeny with several maize chromosomes were obtained by backcrossing MDT with Z. perennis, and the first whole chromosome introgression from maize to Z. perennis was detected in this study. With this novel material and method, a number of maize-tetraploid teosinte addition or substitution lines can be generated for further study, which has great significance to maize and Z. perennis genetic research, especially for promoting introgression and transferring desirable traits.
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