The system uses catalytically inactive Cas9, which retains its ability to bind a guide-selected DNA site but lacks the activity needed to cut DNA. A single-guide RNA positions this complex near a promoter or regulatory sequence, while MS2 aptamers recruit the Synergistic Activation Mediator complex. Its transcriptional activators then stimulate expression from the endogenous gene.
MS2 aptamers function as recruitment elements attached to the guide RNA. They provide binding sites for the Synergistic Activation Mediator complex rather than directing DNA targeting themselves. The recruited complex contains activators such as VP64, p65, and HSF1, whose combined activity supports stronger transcriptional stimulation at the selected genomic locus.
The selected promoter or regulatory sequence determines where the guide-bound dCas9 complex is positioned in relation to the gene’s transcriptional control region. Placing the mediator at such a locus allows its activators to influence transcription of the endogenous gene. This targeting logic makes the approach useful for examining how regulatory regions affect gene expression.
Unlike nuclease-active CRISPR approaches, dCas9-SAM uses an inactive Cas9 variant that does not cleave the targeted DNA. Its purpose is transcriptional stimulation rather than sequence cutting. Consequently, the method is suited to testing the functional effects of increased expression from selected endogenous genes while preserving the DNA sequence itself.
A typical workflow begins by selecting a gene and a promoter or regulatory sequence for activation, then designing a single-guide RNA that directs dCas9 to that locus. The guide includes MS2 aptamers for mediator recruitment, and the system supplies the Synergistic Activation Mediator complex. This arrangement is used to stimulate expression of the chosen endogenous gene.
Researchers can choose this approach when they need to increase expression of a selected endogenous gene without cutting its DNA. The resulting activation supports studies of gene function, gene regulation, regulatory networks, disease modeling, and cell-state control. These applications allow investigators to connect targeted expression changes with broader genetic or cellular behaviors.
The programmable design allows guides to be directed toward several genes, enabling multiplexed activation within a genetic study. Activating multiple endogenous genes can help researchers examine coordinated regulatory relationships rather than evaluating only one gene at a time. This capability is particularly relevant to regulatory-network analysis and investigations of cell-state control.