Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Optimizing Lentiviral Vector-Based Delivery of SCN1A Transgenes to Mammalian Cells

View through CrossRef
Abstract The SCN1A gene encodes Na V 1.1, a voltage-gated sodium channel protein that is necessary for neuronal excitability and whose loss-of-function mutations cause Dravet syndrome, a treatment-resistant childhood onset epilepsy. Gene replacement strategies for this syndrome are challenged by the large size of SCN1A and difficulty achieving stable cellular expression. Lentiviral vectors (LVVs) offer sufficient packaging capacity and genomic integration for defective SCN1A gene replacement. Here, we evaluated LVV-mediated delivery of different engineered SCN1A transgene sequences in human cells. LVV-transduced cells expressed full-length Na V 1.1 protein that trafficked to the membrane and produced functional sodium currents. However, SCN1A transgene expression declined over time despite stable vector copy number, indicating post-integration regulatory limitations. Expression efficiency varied by SCN1A transgene sequence, with a codon-optimized variant showing higher expression despite lower LVV copy number. Treatment with sodium butyrate, a histone deacetylase inhibitor, significantly enhanced SCN1A transgene expression and partially rescued expression decay in a sequence-dependent manner. Incorporation of a ubiquitous chromatin opening element (UCOE) upstream of the promoter to maintain expression resulted in a trend of increased expression and increased responsiveness to butyrate. These findings demonstrate that sequence-specific and epigenetic factors may influence expression of large transgenes following lentiviral delivery, highlighting key challenges and design considerations for therapeutic SCN1A transgene expression.
Title: Optimizing Lentiviral Vector-Based Delivery of SCN1A Transgenes to Mammalian Cells
Description:
Abstract The SCN1A gene encodes Na V 1.
1, a voltage-gated sodium channel protein that is necessary for neuronal excitability and whose loss-of-function mutations cause Dravet syndrome, a treatment-resistant childhood onset epilepsy.
Gene replacement strategies for this syndrome are challenged by the large size of SCN1A and difficulty achieving stable cellular expression.
Lentiviral vectors (LVVs) offer sufficient packaging capacity and genomic integration for defective SCN1A gene replacement.
Here, we evaluated LVV-mediated delivery of different engineered SCN1A transgene sequences in human cells.
LVV-transduced cells expressed full-length Na V 1.
1 protein that trafficked to the membrane and produced functional sodium currents.
However, SCN1A transgene expression declined over time despite stable vector copy number, indicating post-integration regulatory limitations.
Expression efficiency varied by SCN1A transgene sequence, with a codon-optimized variant showing higher expression despite lower LVV copy number.
Treatment with sodium butyrate, a histone deacetylase inhibitor, significantly enhanced SCN1A transgene expression and partially rescued expression decay in a sequence-dependent manner.
Incorporation of a ubiquitous chromatin opening element (UCOE) upstream of the promoter to maintain expression resulted in a trend of increased expression and increased responsiveness to butyrate.
These findings demonstrate that sequence-specific and epigenetic factors may influence expression of large transgenes following lentiviral delivery, highlighting key challenges and design considerations for therapeutic SCN1A transgene expression.

Related Results

Molecular Genetics of Dravet Syndrome
Molecular Genetics of Dravet Syndrome
Abstract Dravet syndrome is a severe epilepsy disorder characterised by infantile onset of fever‐sensitive seizures. Seizures are...
Influence of insulators on transgene expression from integrating and non-integrating lentiviral vectors
Influence of insulators on transgene expression from integrating and non-integrating lentiviral vectors
Abstract Background The efficacy and biosafety of lentiviral gene transfer is influenced by the design of the vector. To this end, properties of ...
Successful transfection of Lymphoblastoid cell line (Preprint)
Successful transfection of Lymphoblastoid cell line (Preprint)
BACKGROUND Immortalization is the stage that the cell goes through before full transformation [1]. Human resting B lymphocytes from peripheral blood are eas...
Evaluation of Lentiviral Based Gene Delivery System in Adherent and Suspension in vitro Cell Models
Evaluation of Lentiviral Based Gene Delivery System in Adherent and Suspension in vitro Cell Models
Lentiviruses are a highly robust gene delivery system capable of in vitro and in vivo gene transfer into multiple cell types. Recent fourth-generation lentiviral systems have been ...
Clinical Study and Molecular Genetic Analyses of Malaysian GEFS+ Patients
Clinical Study and Molecular Genetic Analyses of Malaysian GEFS+ Patients
AbstractGeneralized epilepsy with febrile seizure plus (GEFS+) is a familial epilepsy syndrome characterized by phenotypic and genetic heterogeneity. Neuronal voltage gated sodium ...

Back to Top