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Biology subjects

Sevik, T.

Publications and source records attributed to Sevik, T..

2 recordsLinked to original sources

Programmable DNA integration with New-to-Nature tools using Computational Protein Design

Programmable integration of large DNA cargo ([≥] 2 kb), without inducing double-strand breaks, remains challenging for genome editing technologies. Current approaches have limitations in programmability, depend on co-delivery of multiple components, require multiple enzymatic steps, or have variable on-target editing outcomes. Here, we address this challenge using de novo protein design to create highly active, new-to-nature RNA-guided transposons. Our strategy exploits the modular architecture of CRISPR-associated transposons (CASTs), reconfiguring their conserved transposition machinery to interface with widely adopted Cas9. The resulting system, which we call NovoCAST, simplifies the CAST architecture from eight distinct proteins to four, establishing the simplest CAST described to date. NovoCAST exhibits sharply defined integration profiles, a 500-fold increase in activity relative to the parental PmcCAST, and general programmability. Using structural and biochemical analyses, we confirmed that the designed proteins fold and function as intended. Finally, we demonstrate robust programmable genomic integration in human cells highlighting its broad potential applications in research and therapeutics. Together, these results establish de novo protein design as a powerful strategy for engineering efficient genome-editing systems and for coupling CRISPR-mediated DNA recognition to heterologous functions through de novo designed protein interfaces.

biochemistry↗

In Vitro Generation and Characterization of The Wu Syndrome Model That Causes Mental Retardation in Neural Cell Lines

Wu Syndrome, also known as X-Linked Wu Type Intellectual Developmental Disorder, is caused by a mutation in the GRIA3 (Glutamate Ionotropic Receptor AMPA Type Subunit 3) gene located at position 25 on the X chromosome. GRIA3 encodes iGluR3, a subunit of the AMPA (-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid) receptor, which plays a critical role in rapid excitatory synaptic transmission in the central nervous system. This receptor is essential for learning, memory, and the processes of long-term depression (LTD) and long-term potentiation (LTP). Despite its significance, Wu Syndrome remains under-researched and lacks effective treatments. Notably, some genetic variants have been identified, but many, including the W637S variant, are still unstudied. This study pioneers the development of a Wu Syndrome model in neural cell lines using genetic modification techniques to identify and characterize new GRIA3 variants. By focusing on variants such as G833R and W637S, this research provides novel insights into their effects on GRIA3 function, paving the way for potential therapeutic strategies. This is the first study to explore the responses of neural cells to these mutations in vitro, thereby contributing valuable knowledge toward understanding and treating Wu Syndrome.

molecular biology↗