De Novo Regulatory Motif Discovery Identifies Significant Motifs in Promoters of Five Classes of Plant Dehydrin Genes.

PLoS One

Department of Plant Science, Macdonald Campus, McGill University, 21111 Lakeshore Road, Sainte-Anne-de-Bellevue, QC, H9X 3V9, Canada.

Published: April 2016

Plants accumulate dehydrins in response to osmotic stresses. Dehydrins are divided into five different classes, which are thought to be regulated in different manners. To better understand differences in transcriptional regulation of the five dehydrin classes, de novo motif discovery was performed on 350 dehydrin promoter sequences from a total of 51 plant genomes. Overrepresented motifs were identified in the promoters of five dehydrin classes. The Kn dehydrin promoters contain motifs linked with meristem specific expression, as well as motifs linked with cold/dehydration and abscisic acid response. KS dehydrin promoters contain a motif with a GATA core. SKn and YnSKn dehydrin promoters contain motifs that match elements connected with cold/dehydration, abscisic acid and light response. YnKn dehydrin promoters contain motifs that match abscisic acid and light response elements, but not cold/dehydration response elements. Conserved promoter motifs are present in the dehydrin classes and across different plant lineages, indicating that dehydrin gene regulation is likely also conserved.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4482647PMC
http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0129016PLOS

Publication Analysis

Top Keywords

dehydrin promoters
16
dehydrin classes
12
promoters motifs
12
abscisic acid
12
dehydrin
10
motif discovery
8
classes plant
8
motifs linked
8
cold/dehydration abscisic
8
motifs match
8

Similar Publications

Drought, as an abiotic stressor, globally limits cereal productivity, leading to early aging of leaves and lower yields. The expression of the isopentenyl transferase (IPT) gene, which is involved in cytokinin (CK) biosynthesis, can delay drought-induced leaf senescence. In this study, the Agrobacterium Isopentenyl transferase (IPT) gene was introduced into two local hexaploid wheat cultivars, NR-421 and FSD-2008.

View Article and Find Full Text PDF

Late Embryogenesis Abundant (LEA) proteins are extensively distributed among higher plants and are crucial for regulating growth, development, and abiotic stress resistance. However, comprehensive data regarding the LEA gene family in Ipomoea species remains limited. In this study, we conducted a genome-wide comparative analysis across seven Ipomoea species, including sweet potato (I.

View Article and Find Full Text PDF
Article Synopsis
  • All ten dehydrin genes identified in three Medicago species respond to various abiotic stresses, indicating their protective roles in plant stress tolerance.
  • CAS31, a specific dehydrin gene, enhances salt tolerance in transgenic plants by reducing the expression of HKT1, which is involved in sodium accumulation.
  • This study highlights the importance of dehydrin genes in understanding stress mechanisms in Medicago species and shows how genetic modifications can improve resilience to environmental challenges.
View Article and Find Full Text PDF

Cold stress affects the growth, development, and yield of asparagus bean (Vigna unguiculata subsp. sesquipedalis). Mediator (MED) complex subunits regulate the cold tolerance of asparagus bean, but the underlying regulatory mechanisms remain unclear.

View Article and Find Full Text PDF

Transcription Factor and Protein Regulatory Network of in Response to Pine Wilt Nematode Infection.

Plants (Basel)

September 2024

Key Laboratory of Integrated Pest Management in Ecological Forests (Fujian Province University), Fujian Agriculture and Forestry University, Fuzhou 350002, China.

Pine wilt disease, caused by , is a highly destructive and contagious forest affliction. Often termed the "cancer" of pine trees, it severely impacts the growth of Masson pine (). Previous studies have demonstrated that ectopic expression of the gene from in notably enhances resistance to pine wilt nematode infection.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!