Grants and Contributions:

Title:
Tracing molecular mechanisms leading to greater adaption of autopolyploids, a case study of Hordeum bulbosum species
Agreement Number:
RGPIN
Agreement Value:
$26,000.00
Agreement Date:
May 10, 2017 -
Organization:
Natural Sciences and Engineering Research Council of Canada
Location:
Nova Scotia, CA
Reference Number:
GC-2017-Q1-02888
Agreement Type:
Grant
Report Type:
Grants and Contributions
Additional Information:

Grant or Award spanning more than one fiscal year. (2017-2018 to 2018-2019)

Recipient's Legal Name:
Sun, Genlou (Saint Mary’s University)
Program:
Discovery Grants Program - Individual
Program Purpose:

Polyploidization has been suggested as a major force for speciation and genome evolution. Despite enormous research progress, many basic questions concerning the genetic consequences of polyploid evolution remain unanswered, such as the molecular mechanisms that might promote speciation after whole genome duplication, especially in ecology, physiology and evolution.

Molecular studies on allopolyploids have revealed structural and functional changes caused by polyploidization as the key to the success of polyploids, which might be induced by either hybridization or genome doubling or a combination of both. The effect of genome doubling can only be examined using diploid and autopolyploids. Previous studies suggested that genome doubling has a greater influence on stress tolerance than hybridization. Some studies on synthetic autopolyploids showed that an autopolyploid has a stronger stress tolerance than its diploid. However, we still lack the evidence that observed transcriptional and genomic changes actually lead to greater adaptation of autopolyploids in natural populations. MicroRNAs not only play an important role in regulating gene expression during genome doubling but also in various stresses response, resulting in allopolyploids that adapt to different environmental conditions. However, how miRNAs in autopolyploids respond relative to its diploid to environmental changes has rarely been studied. Although no or limited changes on genome reorganization and structure were reported in synthetic autopolyploids, methylation changes in these polyploids occurred, which may contribute to ecological and physiological novelty. However, changes to methylation patterns do not always accompany genome doubling. It is unclear why the effect was observed in particular plant systems but not in others.

Hordeum bulbosum has both diploid and autotetraploid cytotypes, and is an excellent model system for autoployploidy studies. We will use innovative molecular and experimental approaches to test the hypothesis that natural autotetraploids have experienced major genetic and epigenetic changes to promote evolution via increased adaptability. Specific objectives are: 1) to reveal the molecular basis which explains the adaptive difference between diploid and autopolyploid at the transcriptome, proteome and miRNA level; 2) to determine if methylation changes induced by genome doubling per se promote autopolyploid adaption, and are linked to different ecotypes; 3) to train students in novel interdisciplinarity both in molecular biology and evolution. The outcome of this study will reveal the adaptive role of polyploidy in responses to environmental changes, and provide novel knowledge on the role of polyploidy per se on speciation, as well as are of both practical (such as polyploidy breeding) and theoretical interest.