The circadian clock shapes the Arabidopsis transcriptome by regulating alternative splicing and alternative polyadenylation is a research paper published in Journal of Biological Chemistry (2020). On theSindex it has a DataRank of 0. It has been cited 68 times.
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HHS | National Institutes of Health
Grant: ES027255
HHS | National Institutes of Health
Grant: GM118102
NIGMS NIH HHS
Grant: R35 GM118102
NIEHS NIH HHS
Grant: R01 ES027255
NIEHS NIH HHS
Grant: P30 ES010126
National Institutes of Health
Grant: 2R35GM118102-06
Molecular Mechanism of Mammalian DNA Excision Repair and the Circadian Clock
FWCI
10.56
Citation Percentile
1.0%
Citation Trend
Fields of Study
MeSH Terms
Keywords
Sustainable Development Goals
Additional file 1 of Comprehensive transcriptomic and proteomic analyses identify intracellular targets for myriocin to induce Fusarium oxysporum f. sp. niveum cell death
Additional file 1 of Comprehensive transcriptomic and proteomic analyses identify intracellular targets for myriocin to induce Fusarium oxysporum f. sp. niveum cell death
Additional file 2 of Comprehensive transcriptomic and proteomic analyses identify intracellular targets for myriocin to induce Fusarium oxysporum f. sp. niveum cell death
Additional file 2 of Comprehensive transcriptomic and proteomic analyses identify intracellular targets for myriocin to induce Fusarium oxysporum f. sp. niveum cell death
Additional file 1 of Transcriptomal dissection of soybean circadian rhythmicity in two geographically, phenotypically and genetically distinct cultivars
Additional file 1 of Transcriptomal dissection of soybean circadian rhythmicity in two geographically, phenotypically and genetically distinct cultivars
Additional file 1 of Alternative splicing regulation appears to play a crucial role in grape berry development and is also potentially involved in adaptation responses to the environment
Additional file 1 of Alternative splicing regulation appears to play a crucial role in grape berry development and is also potentially involved in adaptation responses to the environment
Additional file 3 of Alternative splicing regulation appears to play a crucial role in grape berry development and is also potentially involved in adaptation responses to the environment
Additional file 3 of Alternative splicing regulation appears to play a crucial role in grape berry development and is also potentially involved in adaptation responses to the environment
Additional file 4 of Alternative splicing regulation appears to play a crucial role in grape berry development and is also potentially involved in adaptation responses to the environment
Additional file 4 of Alternative splicing regulation appears to play a crucial role in grape berry development and is also potentially involved in adaptation responses to the environment
Additional file 5 of Alternative splicing regulation appears to play a crucial role in grape berry development and is also potentially involved in adaptation responses to the environment
Additional file 5 of Alternative splicing regulation appears to play a crucial role in grape berry development and is also potentially involved in adaptation responses to the environment
Additional file 3 of Transcriptomal dissection of soybean circadian rhythmicity in two geographically, phenotypically and genetically distinct cultivars
Additional file 2 of Transcriptomal dissection of soybean circadian rhythmicity in two geographically, phenotypically and genetically distinct cultivars
Additional file 2 of Transcriptomal dissection of soybean circadian rhythmicity in two geographically, phenotypically and genetically distinct cultivars
Additional file 3 of Transcriptomal dissection of soybean circadian rhythmicity in two geographically, phenotypically and genetically distinct cultivars