
Ordering Information
| Product Name | Catalog # | UNIT | Price | Qty | FAVORITES | |
Ribosomal Protein L22L1 Lentiviral Activation Particles (h) | sc-402323-LAC | 200 µl | $455.00 |
RPL22L1 encodes Ribosomal Protein L22L1, a cytoplasmic ribosomal component that supports 60S large subunit function and contributes to efficient mRNA translation. As part of core ribosome biogenesis and translational control processes, RPL22L1 influences proteostasis and cellular growth programs that are sensitive to changes in ribosomal composition. Perturbations in ribosomal protein dosage can affect cell-cycle regulation, stress responses, and lineage-specific gene expression through altered translation of structured or regulatory mRNAs. In biomedical research, RPL22L1 is studied in the context of ribosome specialization and dysregulated protein synthesis pathways that are frequently implicated in oncogenic and developmental phenotypes.
Ribosomal Protein L22L1 Lentiviral Activation Particles (h) address this need by packaging the complete synergistic activation mediator (SAM) transcriptional activation system into transduction-ready, high-titer lentiviral particles, enabling efficient RPL22L1 upregulation across a broader range of human cell types.
Ribosomal Protein L22L1 Lentiviral Activation Particles (h) deliver all functional components of the synergistic activation mediator (SAM) system via lentiviral transduction. The system comprises three particle preparations co-transduced into target cells: one encoding catalytically inactive dCas9 (D10A and N863A mutations) fused to the VP64 transactivation domain with a blasticidin resistance gene; one encoding the MS2-p65-HSF1 fusion protein with a hygromycin resistance gene; and one encoding a target-specific 20 nt sgRNA fused to two MS2 RNA aptamers with a puromycin resistance gene. Following lentiviral transduction and genomic integration of the expression cassettes, the SAM components are stably expressed and assemble at the target locus within the proximal promoter region upstream of the RPL22L1 transcriptional start site, where VP64, p65, and HSF1 act cooperatively to recruit endogenous transcriptional machinery and drive sustained upregulation of endogenous Ribosomal Protein L22L1 expression. The use of nuclease-inactive dCas9 avoids the introduction of double-strand DNA breaks and preserves the native RPL22L1 genomic locus and regulatory architecture.
The lentiviral format offers several practical advantages: stable genomic integration supports heritable activation across cell divisions; high-titer particle preparations eliminate the need for in-house viral production; and compatibility with primary, non-dividing, and transfection-resistant cell types expands experimental accessibility. Successful transduction can be confirmed and enriched through triple antibiotic selection using puromycin, hygromycin, and blasticidin.
For Research Use Only. Not Intended for Diagnostic or Therapeutic Use.