It is suggested that the engineered mutation is likely to abolish the functional activity of the mstnb gene, thereby providing a validated donor DNA construct for precise RGR-mediated genome editing in L. rohita.
Abstract
Myostatin b (mstnb), a key negative regulator of skeletal muscle growth, represents a promising target gene for genome editing aimed at enhancing growth performance and aquaculture productivity. The present study aimed to design, construct and in silico validate a donor DNA carrying a single-nucleotide substitution that introduces a premature stop codon in the mstnb gene of Labeo rohita for RNA-guided recombinase (RGR) platform-mediated genome editing. For this purpose the mstnb gene sequence was retrieved from the NCBI database and analysed to identify an appropriate target site within exon 1. A targeted single nucleotide substitution from guanine to thymine (G > T) was strategically planned into the donor DNA upstream of the native stop codon to convert the glycine codon (GGA) into a premature stop codon (TGA). This was achieved by identifying RGR target sites flanking the intended mutation site and designing specific primers to amplify and clone the DNA fragment. The target 600 bp DNA fragment encompassing the mutation site flanked by two RGR target sites was successfully amplified and ligated into the pJET1.2 cloning vector and confirmed through Sanger sequencing. Site-directed mutagenesis successfully introduced the intended nucleotide substitution, which was subsequently confirmed by Sanger sequencing. Computational analyses using InterPro, ColabFold, SWISS-MODEL and CYS_REC predicted that the introduced nonsense mutation would generate a truncated Mstnb protein, resulting in the loss of conserved TGF-β domains, reduced structural stability, and impaired cytokine activity. Structural modelling further revealed disruption of the C-terminal β-sheet structure, reduced stereochemical quality, altered QMEAN Z-scores, and loss of cysteine residues, collectively indicating impaired protein folding and reduced structural stability. These findings suggest that the engineered mutation is likely to abolish the functional activity of the mstnb gene, thereby providing a validated donor DNA construct for precise RGR-mediated genome editing in L. rohita. Future studies will focus on the experimental validation of the engineered donor DNA construct through RGR-mediated genome editing, followed by functional characterization in L. rohita.
DGRs can be installed in E. coli and reprogrammed for the continuous, iterative mutagenesis of user-defined target genes, and the DGR template RNA can be reprogrammed for gene- and residue-specific mutagenesis, leaving untargeted, adjacent residues unchanged.
Yang Liu, Yang-Qi Gu, Ganesh Agam et al.· bioRxiv· 0 citations
Hyperactivated serine recombinases are promising genome engineering tools because they mediate precise DNA recombination without inducing double-strand breaks. However, the genomic distribution of endogenous hyperactivated Beta recombinase recognition sites with six base spacers in goat (Capra hircus) genome has not been systematically investigated. A genome-wide computational search was performed using the Capra hircus ARS1.2 reference genome and a degenerate recognition motif for the hyperactivated Beta recombinase with a 6-bp spacer. Target sites identified on both DNA strands were merged, duplicate loci were removed, and unique sites were annotated using the reference GFF3 file. Functional enrichment of associated genes was assessed using Gene Ontology (GO) and KEGG pathway analyses. A total of 509 unique Beta recombinase recognition sites were identified across the goat genome. Most sites were located in intergenic (52.7%) and intronic (40.7%) regions, while a smaller proportion occurred within CDS (3.1%), promoters (2.2%), and exons (1.4%). Functional enrichment analysis revealed significant GO terms related to cellular regulation, signaling, and small GTPase-mediated signal transduction. GO Molecular Function analysis highlighted protein binding and GTPase regulator activity, whereas GO Cellular Component analysis showed enrichment of cytosolic and cytoplasmic components. KEGG analysis identified axon guidance as the significantly enriched pathway. This study presents the first genome-wide catalogue of naturally occurring hyperactivated Beta recombinase recognition sites with six base spacer in the goat genome. These findings provide a valuable resource for recombinase-mediated genome engineering and future precision genetic improvement in goats.
S. Pathak, Subodh Kumar, A. Sonwane· Genetics and Molecular Resea...· 0 citations
This study establishes a streamlined and highly efficient framework for precise insertional mutagenesis and double-mutant generation in Ulva, thereby expanding the genetic engineering toolkit for this macroalga.
K. Ichihara, Chikako Nagasato, T. Yamazaki et al.· Phycology Journal· 0 citations
Together, the engineered clonal controls and optimized LR-TES provide reference material and a technical framework supporting rAAV ISA in safety evaluation, particularly when high structural resolution and specificity are needed to interpret predominant integration events.
This study successfully established a YE1-AncBE4max-based platform for efficient, precise dual-gene editing in goats and showed that the edited goats exhibited significantly increased body weight and a "double-muscling" phenotype by 90 days of age compared to wild-type controls.
Ling Li, Ming-Xing Cao, Muhammad Farhab et al.· Functional & Integrative Gen...· 0 citations
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