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Biology subjects

Russell, B. E.

Publications and source records attributed to Russell, B. E..

3 recordsLinked to original sources

Virus-free CRISPR knock-in of a chimeric antigen receptor into KLRC1 generates potent GD2-specific natural killer cells

Natural killer (NK) cells are an appealing off-the-shelf, allogeneic cellular therapy due to their cytotoxic profile. However, their activity against solid tumors remains suboptimal in part due to the upregulation of NK-inhibitory ligands, such as HLA-E, within the tumor microenvironment. Here, we utilize CRISPR-Cas9 to disrupt the KLRC1 gene (encoding the HLA-E-binding NKG2A receptor) and perform non-viral insertion of a GD2-targeting chimeric antigen receptor (CAR) within NK cells isolated from human peripheral blood. Genome editing with CRISPR/Cas9 ribonucleoprotein complexes yields efficient genomic disruption of the KLRC1 gene with 98% knockout efficiency and specific knock-in of the GD2 CAR transgene as high as 23%, with minimal off-target activity as shown by CHANGE-Seq, in-out PCR, and next generation sequencing. KLRC1-GD2 CAR NK cells display high viability and proliferation, as well as precise cellular targeting and potency against GD2+ human melanoma cells. Notably, KLRC1-GD2 CAR NK cells overcome HLA-E-based inhibition by HLA-E-expressing, GD2+ melanoma cells. Using a single-step, virus-free genome editing workflow, this study demonstrates the feasibility of precisely disrupting inhibitory signaling within NK cells via CRISPR/Cas9 while expressing a CAR to generate potent allogeneic cell therapies against HLA-E+ solid tumors.

bioengineering↗

Resolution of ring chromosomes, Robertsonian translocations, and complex structural variants from long-read sequencing and telomere-to-telomere assembly

The capacity to resolve structural variants (SVs) at sequence resolution in highly repetitive genomic regions has long been intractable. Consequently, the properties, origins, and functional effects of multiple classes of complex rearrangement are unknown. To resolve these challenges, we leveraged recent technical milestones: 1) Oxford-Nanopore (ONT) sequencing; 2) the gapless Telomere-to-Telomere (T2T) genome assembly; and 3) a novel tool to discover large-scale rearrangements from long-reads. We applied these technologies across 13 patients with ring chromosomes, Robertsonian translocations, and complex balanced SVs that were unresolved by short-read sequencing. We resolved 10 of 13 events, including ring chromosomes, the complex SVs, and a Robertsonian translocation. Multiple breakpoints were localized to highly repetitive regions inaccessible to short-read alignment, such as acrocentric p-arms, ribosomal DNA arrays, and telomeric repeats, and involved complex structures such as a deletion-inversion and interchromosomal dispersed duplications. We also leveraged ONT native methylation detection to discover phased differential methylation in a gene promoter proximal to a ring fusion site, suggesting a long-range positional effect with heterochromatin spreading. Breakpoint sequences were consistent with common mechanisms of SV formation, including microhomology-mediated mechanisms, non-homologous end-joining, and non-allelic homologous recombination. These methods provide some of the first glimpses into the sequence resolution of ring chromosomes and Robertsonian translocations and illuminate the structural diversity of chromosomal rearrangements with implications for molecular diagnosis and genome biology. HighlightsO_LICryptic rearrangements revealed in repetitive and previously inaccessible regions C_LIO_LIAligning long-reads to telomere-to-telomere assembly enabled breakpoint discovery C_LIO_LIFirst sequence resolution of a Robertsonian translocation breakpoint C_LIO_LIHaplotype-specific methylation changes associated with ring formation C_LI Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/555775v1_ufig1.gif" ALT="Figure 1"> View larger version (57K): org.highwire.dtl.DTLVardef@188cef8org.highwire.dtl.DTLVardef@cc2ed5org.highwire.dtl.DTLVardef@116b7e6org.highwire.dtl.DTLVardef@837f73_HPS_FORMAT_FIGEXP M_FIG C_FIG

genomics↗

Truncating ASXL1 mutations in Bohring-Opitz Syndrome dysregulate canonical and non-canonical Wnt Signaling

ASXL1 (Additional sex combs-like 1) plays key roles in epigenetic regulation of early developmental gene expression. De novo truncating mutations in ASXL1 cause Bohring-Opitz syndrome (BOS, OMIM #605039), a rare neurodevelopmental condition characterized by severe intellectual disabilities, characteristic facial features, hypertrichosis, increased risk of Wilms tumor, and variable congenital anomalies including heart defects and severe skeletal defects giving rise to a typical BOS posture. These BOS-causing ASXL1 variants are also high-prevalence somatic driver mutations in acute myeloid leukemia (AML). We use primary cells from BOS individuals (n = 18) and controls (n = 49) to dissect gene regulatory changes caused by ASXL1 mutations using comprehensive multi-omics assays for chromatin accessibility (ATAC-seq), DNA methylation, histone methylation binding, and transcriptome in peripheral blood and skin fibroblasts. Our data shows that regardless of cell type, ASXL1 mutations drive strong cross-tissue effects that disrupt multiple layers of the epigenome. The data showed a broad activation of canonical Wnt signaling at the transcriptional and protein levels and upregulation of VANGL2, a planar cell polarity pathway protein that acts through non-canonical Wnt signaling to direct tissue patterning and cell migration. This multi-omics approach identifies the core impact of ASXL1 mutations and therapeutic targets for BOS and myeloid leukemias. Brief summaryGermline ASXL1 mutations that cause Bohring Optiz syndrome disrupt the epigenome and dysregulate gene expression resulting in activation of canonical and non-canonical Wnt signaling pathways.

genetics↗