Kennesaw State University
Simultaneous Delivery of CRISPR/Cas Complexes and Donor DNA Using Cell-Penetrating Peptide-Adaptors
Abstract
dc:description.abstract<p>Clustered Regularly Interspaced Palindromic Repeats (CRISPR)/CRISPR associated protein (Cas) complexes are becoming the preferred technique for genomic editing because of their precision, efficiency and accuracy. Prokaryotes naturally use CRISPR/Cas complexes to detect and eliminate foreign nucleic acids after infections. Cas proteins form complexes with RNA to cause double-stranded breaks (DSBs) in the invader’s sequence. Researchers are trying to use CRISPR complexes to treat many human diseases caused by these mutations. Research using CRISPR/Cas systems in the treatments of many of the genetic diseases has resulted in misfortunes (such as toxicity to the patient or new diseases) because of the method of delivery such as viral delivery. </p> <p>The current work attempted to delivery Cas proteins complexed with RNA to the nuclei of living eukaryotic cells using a novel cell-penetrating peptide (CPP)-adaptor system. Since the discovery of CPPs in the 1980s, researchers have used CPPs to deliver biomolecules such as proteins and nucleic acids into cells (the delivered biomolecules are called cargos). Researchers encountered the problem of endosomal entrapment: the CPP-cargos remained trapped in endosomes likely because of CPP-receptor interactions. To solve this problem, a novel CPP adaptor, TAT-CaM was developed. TAT-CaM fuses the CPP from HIV TAT to human calmodulin (CaM) in one polypeptide. When Ca<sup>2+</sup> is present, TAT-CaM binds to an engineered or endogenous calmodulin-binding site (CBS) on cargo proteins. After endocytosis, TAT-CaM dissociates from cargos as Ca<sup>2+</sup> concentrations drop during trafficking. Like other CPPs, TAT-CaM remains trapped in endosomes, but cargos escape efficiently.</p> <p>Here, we use biolayer interferometry (BLI) and confocal microscopy to show Ca<sup>2+-</sup>dependent binding and delivery of CRISPR complexes to the nuclei of cells. Donor DNA sequences were also delivered to the nucleus of the cell. The donor DNA contained a biotin tag that bound to CBS-tamavidin, an avidin from the mushroom <em>Pleurotus</em><em> cornucopia</em> with a high affinity for biotin. CBS-tamavidin bound to both TAT-CaM and biotinylated donor DNA during delivery to living cells. Ultimately, we aim to deliver CRISPR complexes and donor DNA simultaneously delivered to the cell nucleus, where the cell’s homologous recombination machinery can use the donor DNA sequences to repair the DSBs break.</p>
Degree
thesis:*- Name thesis:degree_name
- Master of Science in Chemical Sciences (MSCB)
- Level thesis:degree_level
- Thesis
- Discipline thesis:degree_discipline
- Chemistry
- Year dc:date.available
- 2019
Author and committee
dc:creator, dc:contributor.*- Author dc:creator
-
- Mbugua, Maria Mugure
- Contributors dc:contributor
-
- Dr. Jonathan L. McMurry
- Dr. Daniel P. Morris
- Dr. Susan M.E. Smith
Subjects
dc:subject × 9Identifiers
dc:identifier.*- Repository record dc:identifier
- https://digitalcommons.kennesaw.edu/mscs_etd/30
- OAI identifier oai:identifier
- oai:digitalcommons.kennesaw.edu:mscs_etd-1031