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Teo, C. H.

Publications and source records attributed to Teo, C. H..

3 recordsLinked to original sources

In silico comparative RNA-seq analysis reveals varietal-specific intergenic small open reading frames in Cucumis sativus L.

Small open reading frames (sORFs) have been reported to play important roles in growth, regulation of morphogenesis, and abiotic stress responses in various plant species. However, their sequences and functions remain poorly understood in many plant species including Cucumis sativus. Cucumis sativus (commonly known as cucumber) is Asias fourth most important vegetable and the second most important crop in Western Europe. The breeding of climate-resilient cucumbers is of great importance to ensure their sustainability under extreme climate conditions. In this study, we aim to isolate the intergenic sORFs from C. sativus var. hardwickii genome and determine their sequence diversity and expression profiles in C. sativus var. hardwickii and different cultivars of C. sativus var. sativus using bioinformatics tools. We identified a total of 50,191 coding sORFs with coding potential (coding sORFs) from C. sativus var. hardwickii genome. In addition, 1,311 transcribed sORFs were detected in RNA-seq datasets of C. sativus var. hardwickii and shared homology to sequences deposited in the cucumber EST database, and among these, 91 transcribed sORFs with translation potential were detected. A total of 629 high-confident C. sativus-specific sORFs were identified in both varieties. Varietal-specific transcribed sORFs were also identified in C. sativus var. hardwickii (87) and C. sativus var. sativus (2,906). Furthermore, cultivar- and tissue-specific transcribed sORFs were identified in different cultivars and tissue samples. The findings of this study provide insight into sequence diversity and expression patterns of sORFs in C. sativus, which could help in developing climate-resilient cucumbers.

bioinformatics↗

Waterlogging stress induces antioxidant defense responses and aerenchyma formation and alters metabolisms of banana plants

Flooding caused or exacerbated by climate change has threatened plant growth and food production worldwide. The lack of knowledge on how crops respond and adapt to flooding stress imposes a major barrier to enhancing their productivity. Hence, understanding the flooding-responsive mechanisms of crops is indispensable for developing new flooding-tolerant varieties. Here, we examined the banana (Musa acuminata cv. Berangan) responses to soil waterlogging for 1, 3, 5, 7, 14, and 24 days. After waterlogging stress, banana root samples were analyzed for their molecular and biochemical changes. We found that waterlogging treatment induced the formation of adventitious roots and aerenchyma with conspicuous gas spaces. In addition, the antioxidant activities, hydrogen peroxide and malondialdehyde contents of the waterlogged bananas increased in response to waterlogging stress. To assess the initial response of bananas toward waterlogging stress, we analyzed the transcriptome changes of banana roots. A total of 3,508 unigenes were differentially expressed under 1-day waterlogging conditions. These unigenes comprise abiotic stress-related transcription factors, such as ethylene response factors, basic helix-loop-helix, myeloblastosis, plant signal transduction, and carbohydrate metabolisms. The findings of the study provide insight into the complex molecular events of bananas in response to waterlogging stress, which could later help develop waterlogging resilient crops for the future climate.

plant biology↗

Genome assembly and analysis of the flavonoid and phenylpropanoid biosynthetic pathways in Fingerroot ginger (Boesenbergia rotunda)

Boesenbergia rotunda (Zingiberaceae), is a high-value culinary and ethno-medicinal plant of Southeast Asia. The rhizomes of this herb have high flavanone and chalcone content. Here we report genome analysis of B. rotunda together with a complete genome sequence as a hybrid assembly. B. rotunda has an estimated genome size of 2.4 Gb which was assembled as 27,491 contigs with N50 size of 12.386 Mb. The highly heterozygous genome encodes 71,072 protein-coding genes and has 72% repeat content, with class I TEs occupying [~]67% of the assembled genome. Fluorescence In Situ Hybridization of the 18 chromosome pairs at metaphase showed six sites of 45S rDNA and two sites of 5S rDNA. SSR analysis identified 238,441 gSSRs and 4,604 EST-SSRs with 49 SSR markers common among related species. Genome-wide methylation percentages ranged from 73% CpG, 36% CHG and 34% CHH in leaf to 53% CpG, 18% CHG and 25% CHH in embryogenic callus. Panduratin A biosynthetic unigenes were most highly expressed in watery callus. B rotunda has a relatively large genome with high heterozygosity and TE content. This assembly and data (PRJNA71294) comprise a source for further research on the functional genomics of B. rotunda, the evolution of the ginger plant family and the potential genetic selection or improvement of gingers.

genomics↗