Investigating The Molecular Functions of The Os-Sc106 Spliceosomal Protein Via CRISPR/Cas9 System

Plants employ sophisticated molecular machineries to fine-tune their responses to growth, developmental, and stress cues. Plants cellular response influences gene expression through regulating processes like transcription and splicing. To increase the genome coding potential and further regulate the...

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Main Author: Alhabsi, Abdulrahman
Other Authors: Mahfouz, Magdy M.
Language:en
Published: 2019
Subjects:
Online Access:Alhabsi, A. (2019). Investigating The Molecular Functions of The Os-Sc106 Spliceosomal Protein Via CRISPR/Cas9 System. KAUST Research Repository. https://doi.org/10.25781/KAUST-U0N63
http://hdl.handle.net/10754/660344
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spelling ndltd-kaust.edu.sa-oai-repository.kaust.edu.sa-10754-6603442021-12-01T05:07:17Z Investigating The Molecular Functions of The Os-Sc106 Spliceosomal Protein Via CRISPR/Cas9 System Alhabsi, Abdulrahman Mahfouz, Magdy M. Biological and Environmental Science and Engineering (BESE) Division Blilou, Ikram Ghaffour, NorEddine Splicing Alternative Splicing SR Proteins CRISPR/Cas9 Genome Engineering Plants employ sophisticated molecular machineries to fine-tune their responses to growth, developmental, and stress cues. Plants cellular response influences gene expression through regulating processes like transcription and splicing. To increase the genome coding potential and further regulate the expression, pre-mRNA is alternatively spliced. Serine/Arginine-rich (SR) proteins, a family of pre-mRNA splicing factors, recognize splicing cis-elements and regulate both constitutive and alternative splicing. Recent studies reported only 22 SR proteins encoded in the genome of rice (Oryza sativa), which are classified into 6 subfamilies. Oryza s. SC subfamily 106 kDa (Os-Sc106) locus is homologous to the human SR protein SFSR11 (SRp54). Os-Sc106 contains SR proteins characteristics, and was not included among the rice SR proteins. The clustered regularly interspaced short palindromic repeats (CRISPR) and its associated protein 9 (Cas9) system, an RNA-guided endonuclease complex that introduces a double-strand break (DSB) into the DNA. Innovative scientific advances in genome engineering have made CRISPR/Cas9 an excellent system to conduct functional knockout studies of genes in most biological systems including plants. In this study, I targeted the rice Os-Sc106 locus at exon1, and 3 via CRISPR/Cas9 system. Genotyping analyses revealed the recovery of Os-Sc106 mutants including complete functional knockouts such as sf11h-2, sf11h-8, and sf11h-55. Phenotypic analyses show that Os-Sc106 mutants (sf11h-2, 8, 55, and 57) are oversensitive under abiotic stress in comparison to WT plants, suggesting that Os-Sc106 locus encodes a protein that is important for regulating plant stress responses. 2019-12-02T05:51:26Z 2019-12-02T05:51:26Z 2019-11 Thesis Alhabsi, A. (2019). Investigating The Molecular Functions of The Os-Sc106 Spliceosomal Protein Via CRISPR/Cas9 System. KAUST Research Repository. https://doi.org/10.25781/KAUST-U0N63 10.25781/KAUST-U0N63 http://hdl.handle.net/10754/660344 en 2022-12-01 At the time of archiving, the student author of this thesis opted to temporarily restrict access to it. The full text of this thesis will become available to the public after the expiration of the embargo on 2022-12-01.
collection NDLTD
language en
sources NDLTD
topic Splicing
Alternative Splicing
SR Proteins
CRISPR/Cas9
Genome Engineering
spellingShingle Splicing
Alternative Splicing
SR Proteins
CRISPR/Cas9
Genome Engineering
Alhabsi, Abdulrahman
Investigating The Molecular Functions of The Os-Sc106 Spliceosomal Protein Via CRISPR/Cas9 System
description Plants employ sophisticated molecular machineries to fine-tune their responses to growth, developmental, and stress cues. Plants cellular response influences gene expression through regulating processes like transcription and splicing. To increase the genome coding potential and further regulate the expression, pre-mRNA is alternatively spliced. Serine/Arginine-rich (SR) proteins, a family of pre-mRNA splicing factors, recognize splicing cis-elements and regulate both constitutive and alternative splicing. Recent studies reported only 22 SR proteins encoded in the genome of rice (Oryza sativa), which are classified into 6 subfamilies. Oryza s. SC subfamily 106 kDa (Os-Sc106) locus is homologous to the human SR protein SFSR11 (SRp54). Os-Sc106 contains SR proteins characteristics, and was not included among the rice SR proteins. The clustered regularly interspaced short palindromic repeats (CRISPR) and its associated protein 9 (Cas9) system, an RNA-guided endonuclease complex that introduces a double-strand break (DSB) into the DNA. Innovative scientific advances in genome engineering have made CRISPR/Cas9 an excellent system to conduct functional knockout studies of genes in most biological systems including plants. In this study, I targeted the rice Os-Sc106 locus at exon1, and 3 via CRISPR/Cas9 system. Genotyping analyses revealed the recovery of Os-Sc106 mutants including complete functional knockouts such as sf11h-2, sf11h-8, and sf11h-55. Phenotypic analyses show that Os-Sc106 mutants (sf11h-2, 8, 55, and 57) are oversensitive under abiotic stress in comparison to WT plants, suggesting that Os-Sc106 locus encodes a protein that is important for regulating plant stress responses.
author2 Mahfouz, Magdy M.
author_facet Mahfouz, Magdy M.
Alhabsi, Abdulrahman
author Alhabsi, Abdulrahman
author_sort Alhabsi, Abdulrahman
title Investigating The Molecular Functions of The Os-Sc106 Spliceosomal Protein Via CRISPR/Cas9 System
title_short Investigating The Molecular Functions of The Os-Sc106 Spliceosomal Protein Via CRISPR/Cas9 System
title_full Investigating The Molecular Functions of The Os-Sc106 Spliceosomal Protein Via CRISPR/Cas9 System
title_fullStr Investigating The Molecular Functions of The Os-Sc106 Spliceosomal Protein Via CRISPR/Cas9 System
title_full_unstemmed Investigating The Molecular Functions of The Os-Sc106 Spliceosomal Protein Via CRISPR/Cas9 System
title_sort investigating the molecular functions of the os-sc106 spliceosomal protein via crispr/cas9 system
publishDate 2019
url Alhabsi, A. (2019). Investigating The Molecular Functions of The Os-Sc106 Spliceosomal Protein Via CRISPR/Cas9 System. KAUST Research Repository. https://doi.org/10.25781/KAUST-U0N63
http://hdl.handle.net/10754/660344
work_keys_str_mv AT alhabsiabdulrahman investigatingthemolecularfunctionsoftheossc106spliceosomalproteinviacrisprcas9system
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