Alternative Splicing From Abiotic Stress Tolerance to Evolutionary Genomics
A combination of dry lab bioinformatic analyses and wet lab molecular experiments seems to be a major trend for biological studies. The authors of the papers included in this reprint tried to elucidate the linkage between environmental stress and molecular response, and the species investigated in e...
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Format: | Electronic Book Chapter |
Language: | English |
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Basel
MDPI - Multidisciplinary Digital Publishing Institute
2023
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Online Access: | DOAB: download the publication DOAB: description of the publication |
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100 | 1 | |a Gao, Bei |4 edt | |
700 | 1 | |a Chen, Moxian |4 edt | |
700 | 1 | |a Oliver, Melvin J. |4 edt | |
700 | 1 | |a Gao, Bei |4 oth | |
700 | 1 | |a Chen, Moxian |4 oth | |
700 | 1 | |a Oliver, Melvin J. |4 oth | |
245 | 1 | 0 | |a Alternative Splicing |b From Abiotic Stress Tolerance to Evolutionary Genomics |
260 | |a Basel |b MDPI - Multidisciplinary Digital Publishing Institute |c 2023 | ||
300 | |a 1 electronic resource (188 p.) | ||
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506 | 0 | |a Open Access |2 star |f Unrestricted online access | |
520 | |a A combination of dry lab bioinformatic analyses and wet lab molecular experiments seems to be a major trend for biological studies. The authors of the papers included in this reprint tried to elucidate the linkage between environmental stress and molecular response, and the species investigated in each of the articles are phylogenetically and agriculturally diverse. These exemplar studies will potentially ignite more ideas and biological stories to investigate gene functions. | ||
540 | |a Creative Commons |f https://creativecommons.org/licenses/by/4.0/ |2 cc |4 https://creativecommons.org/licenses/by/4.0/ | ||
546 | |a English | ||
650 | 7 | |a Research & information: general |2 bicssc | |
650 | 7 | |a Biology, life sciences |2 bicssc | |
653 | |a rice | ||
653 | |a grain size | ||
653 | |a QTL | ||
653 | |a BSA-seq | ||
653 | |a splicing | ||
653 | |a additive effects | ||
653 | |a alternative splicing | ||
653 | |a GWAS | ||
653 | |a proteogenomics | ||
653 | |a Zea mays L. | ||
653 | |a plant genotype | ||
653 | |a plant-microbe interaction | ||
653 | |a microbiome assembly | ||
653 | |a post-transcriptional regulation | ||
653 | |a alkaloids | ||
653 | |a ascorbate | ||
653 | |a phytohormones | ||
653 | |a lipids | ||
653 | |a metabolism | ||
653 | |a phenylpropanoids | ||
653 | |a plants | ||
653 | |a starch | ||
653 | |a terpenoids | ||
653 | |a FtHDACs | ||
653 | |a genome-wide | ||
653 | |a low-temperature responses | ||
653 | |a Tartary buckwheat | ||
653 | |a microRNA | ||
653 | |a moderate soil drying | ||
653 | |a inferior spikelets | ||
653 | |a MACP2 | ||
653 | |a membrane attack complex/perforin-like protein | ||
653 | |a pathogen infection | ||
653 | |a salicylic acid signaling | ||
653 | |a indole glucosinolates | ||
653 | |a PpRNH1A | ||
653 | |a heat stress (HS) | ||
653 | |a lipid droplets | ||
653 | |a Physcomitrium (Physcomitrella) patens | ||
653 | |a Brassica napus | ||
653 | |a transcription factors | ||
653 | |a nutrient stress | ||
653 | |a transcriptomic analysis | ||
653 | |a miRNA | ||
653 | |a galanthamine | ||
653 | |a Lycoris | ||
653 | |a SWATH-MS | ||
653 | |a n/a | ||
856 | 4 | 0 | |a www.oapen.org |u https://mdpi.com/books/pdfview/book/7254 |7 0 |z DOAB: download the publication |
856 | 4 | 0 | |a www.oapen.org |u https://directory.doabooks.org/handle/20.500.12854/100792 |7 0 |z DOAB: description of the publication |