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Ruis, B. L.

Publications and source records attributed to Ruis, B. L..

2 recordsLinked to original sources

Splice-specific lyn knockout mice reveal a dominant function of LynB in preventing autoimmunity

The unique roles of the Src-family kinases LynA and LynB in immune activating and inhibitory signaling have eluded definition. Here we report that LynB, the shorter splice product of lyn, carries the dominant immunosuppressive function. We used CRISPR/Cas9 gene editing to constrain lyn splicing and expression to a single product: LynAKO or LynBKO mice. While activities of both isoforms regulate homeostatic Lyn expression, only LynB protects against autoimmune disease. LynBKO monocytes and dendritic cells are TLR4-hyper-responsive, and TLR4 expression increases with age in LynBKO myeloid and B cells. These changes are accompanied by the development of an inflammatory disease that resembles human systemic lupus erythematosus (SLE). The interplay between LynB and TLR4 likely underlies the autoimmunity risk associated with LYN hypomorph and TLR4 hypermorph alleles.

immunology

Split Staphylococcus aureus prime editor for AAV delivery

Prime editing brings immense promise to correct a large number of human pathogenic mutations and enact diverse edit types without introducing widespread undesired editing events. Delivery of prime editors in vivo would enable such edits to be introduced in a clinical setting. The coding sequence for prime editor, however, is too large to fit within the size-constrained adeno-associated virus (AAV) genome. Herein, we describe a split Staphylococcus aureus prime editor capable of being delivered by dual AAVs. We characterize the editing ability of plasmid-based versions of an S. aureus prime editor in vitro at a variety of loci with diverse edit types. We investigate various split prime editor architectures and alternative dimerization domains. Finally, we demonstrate the capacity of prime editor to be co-delivered by dual AAVs in vitro. While editing rates are lower than desired, this approach presents an important step to translate prime editing for in vivo delivery.

molecular biology