Characterizaion and Chemical Rescure of the Phenotype of ors-3, a Knockout mutant line of PpORS in Physcomitrella patens

dc.contributor.advisorSuh, Dae-Yeon
dc.contributor.authorAslam, Misbah
dc.contributor.committeememberBabu, Mohan
dc.contributor.committeememberAshton, Neil
dc.contributor.externalexaminerWeger, Harold
dc.date.accessioned2019-11-21T17:44:10Z
dc.date.available2019-11-21T17:44:10Z
dc.date.issued2019-04
dc.descriptionA Thesis Submitted to the Faculty of Graduate Studies and Research In Partial Fulfillment of the Requirements for the Degree of Master of Science in Biochemistry, University of Regina. ix, 83 p.en_US
dc.description.abstract2ʹ-Oxoalkylresorcinol synthase from Physcomitrella patens (PpORS) is basal to all plant type III polyketide synthases in phylogenetic trees, and may resemble closely their most recent common ancestor. PpORS knockouts were previously generated and partially characterized (Li et al., Planta, 2018, 247: 527–541). This study aimed to investigate further the in planta functions and evolutionary roles of PpORS. Ors-3 (an ors knockout line) was first subjected to dehydration stress. The ability of ors-3 to recover after dehydration is significantly compromised in contrast to the control strain. Ors-3 also loses water faster than the control strain. These results together with the previous data suggested that ors mutants possess a defective cuticle (Li et al., 2018). In ors-3, the expression of two putative paralogs of PpORS was also examined to reveal that their expression levels did not appear to be up-regulated in ors-3 as compared to those in the control. Chemical rescue of ors-3 has been achieved. Thus, the ability of ors-3 to survive dehydration is restored in a dose dependent manner by in vitro PpORS products, purified oxoalkylresorcinol, and also by long chain alkylresorcinol analogs. Exogenous 14Clabelled in vitro PpORS products are incorporated as an insoluble biopolymer, and most of the radoioactivity was recovered after acid hydrolysis. Taken together, these data indicate that PpORS-produced 2ʹ-oxoalkylresorcinols are constituents of the moss cuticular biopolymer that confer resistance to dehydration, and imply that an ancestral ORS in early land plants may have contributed to their successful colonization of the land.en_US
dc.description.authorstatusStudenten
dc.description.peerreviewyesen
dc.identifier.tcnumberTC-SRU-9024
dc.identifier.thesisurlhttps://ourspace.uregina.ca/bitstream/handle/10294/9024/Aslam_Misbah_MSc_BIOC_Fall2019.pdf
dc.identifier.urihttps://hdl.handle.net/10294/9024
dc.language.isoenen_US
dc.publisherFaculty of Graduate Studies and Research, University of Reginaen_US
dc.titleCharacterizaion and Chemical Rescure of the Phenotype of ors-3, a Knockout mutant line of PpORS in Physcomitrella patensen_US
dc.typeThesisen
thesis.degree.departmentDepartment of Chemistry and Biochemistryen_US
thesis.degree.disciplineBiochemistryen_US
thesis.degree.grantorUniversity of Reginaen
thesis.degree.levelMaster'sen
thesis.degree.nameMaster of Science (MSc)en_US

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