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Statistical Modeling for Genome Data Analysis to Detect Agricultural Biomarkers

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dc.contributor.advisor Mollah, Md. Nurul Haque
dc.contributor.advisor Alam, Munirul
dc.contributor.author Akond, Zobaer
dc.date.accessioned 2023-08-07T04:13:22Z
dc.date.available 2023-08-07T04:13:22Z
dc.date.issued 2019
dc.identifier.uri http://rulrepository.ru.ac.bd/handle/123456789/1044
dc.description This Thesis is Submitted to the Institute of Environmental Science (IES) , University of Rajshahi, Rajshahi, Bangladesh for The Degree of Doctor of Philosophy (PhD) en_US
dc.description.abstract The focuses of this study were to evaluate the performance of different statistical methods from the perspective of various genomic data such as phenotypic-genotypic data, gene expression (microarray/RNA-Seq) data, SNP data and meta-genomic data collected from different environmental samples. We also performed some in silico analysis of RNA silencing machinery genes in wheat (Triticum aestivum) based on the RNAi genes of arabidopsis thaliana and expression profile analysis of seven TaDCL genes in leaves and roots as well as against drought stress using qRT-PCR. In Chapter Two, we explored better QTL mapping approach by comparative study. We found that Composite Interval Mapping (CIM) performs significantly better than the other four Simple Interval Mapping (SIM) methods in detecting QTL positions in backcross technique both on simulated data and on real rice genome dataset. In the case of real rice genome data analysis for backcross population, the CIM identified some vital positions that were not detected by the traditional SIM approaches.----- en_US
dc.language.iso en en_US
dc.publisher University of Rajshahi, Rajshahi en_US
dc.relation.ispartofseries ;D4590
dc.subject Statistical Modeling en_US
dc.subject Agricultural Biomarkers en_US
dc.subject Genome Data en_US
dc.subject IES en_US
dc.title Statistical Modeling for Genome Data Analysis to Detect Agricultural Biomarkers en_US
dc.type Thesis en_US


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