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King, O. D.

Publications and source records attributed to King, O. D..

6 recordsLinked to original sources

Spatial transcriptomics reveals epithelial-immune remodeling preceding malignant transformation of oral premalignant lesions

Oral premalignant lesions (OPLs) are common; however, histopathological grading incompletely identifies lesions destined for cancer. To define tissue ecosystems that precede malignant transformation, we integrated single-cell-resolution Xenium spatial transcriptomics of 20 HPV-negative biospecimens from 16 patients, with independent single-cell RNA sequencing and immunofluorescence data from 38 patients with OPLs after quality control. Progressive OPLs exhibit a coordinated epithelial-immune program comprising MX1/NOTCH3-high KRT14+/KRT15+ basal epithelial states, S100A9-high inflammatory macrophages, TIGIT-high, exhaustion-associated T cells, and altered dendritic cell states. Spatial analyses showed that T cells and dendritic cells were displaced from the basal epithelial interface, and that epithelial neighborhoods were depleted of dendritic cells but enriched for TIGIT-high T cells, revealing immune reorganization not captured by cellular abundance alone. Independent single-cell and protein-level analyses reproduced basal epithelial interferon/stress programs, S100A9-associated myeloid inflammation, TIGIT-high, exhaustion-associated T-cell programs, and dendritic cell redistribution. Ligand-receptor inference suggested convergent myeloid and lymphoid signals linked to epithelial stress, checkpoint regulation, and extracellular matrix remodeling. Functionally, recombinant S100A9 accelerated wound closure in oral epithelial and cancer cells, whereas S100A9 and S100A8/S100A9 enhanced oral cancer cell proliferation. These responses were attenuated by pharmacologic inhibition of TLR4 or RAGE. Together, these data define a spatially organized, myeloid-skewed, checkpoint-enriched ecosystem present before invasion and suggest S100A9-TLR4/RAGE signaling and epithelial-immune geometry as candidate mechanisms and biomarkers for oral cancer interception.

immunology↗

The D4Z4caster DNA methylation signature identifies individuals at epigenetic risk for developing facioscapulohumeral muscular dystrophy (FSHD)

BackgroundFacioscapulohumeral muscular dystrophy (FSHD) is caused by epigenetic dysregulation at the chromosome 4q35 D4Z4 repeat array under specific permissive genetic conditions. Due to the complexity, expense, and general inaccessibility of FSHD genetic testing, many individuals displaying characteristic muscle weakness are never genetically confirmed and at-risk relatives cannot get screened. We previously developed a targeted bisulfite sequencing (BSS) protocol using the Sanger method to determine DNA methylation levels at specific D4Z4 loci relevant to distinguishing forms of FSHD from non-FSHD that can be used with DNA isolated from saliva, thereby reducing cost and increasing accessibility compared to traditional D4Z4 deletion testing that uses DNA isolated from blood. MethodsHere, we adapt the D4Z4 BSS protocol to next-generation sequencing (NGS) to increase sequencing depth and further reduce cost, validate both sequencing technologies against several cohorts of genetically defined samples, and introduce the D4Z4caster software for computing DNA methylation signatures with diagnostic utility from raw sequencing data. ResultsBoth Sanger and NGS BSS methods using D4Z4caster were validated as providing high sensitivity and specificity, with geometric mean of sensitivity and specificity (G-mean) >95% and area-under-the ROC curve (AUC) of 0.99. The NGS method allows for higher throughput and increased read depth, while the Sanger method allows faster processing of individual samples. Importantly, the NGS method could identify FSHD1 cases that are likely mosaic and would otherwise be missed. ConclusionsD4Z4caster methylation signatures can accurately detect contracted FSHD1-permissive chromosome 4q35 alleles, hypomethylation of D4Z4 arrays indicative of FSHD2, and SNPs that are important for diagnostic use. This workflow is amenable to transitioning to clinical settings for an accurate, low-cost FSHD molecular diagnostic test that could be accessible worldwide. What is already known on this topicCurrently accepted genetic diagnostics for FSHD1 are complex and expensive and can mischaracterize certain complex genetic cases. These diagnostics all require high molecular weight genomic DNA typically freshly isolated from blood, highly specialized equipment, and additional testing for FSHD2, making FSHD diagnostics the most expensive among neuromuscular diseases and inaccessible to much of the world. However, the epigenetic status of the 4q35 and 10q26 D4Z4 repeat arrays, as determined by DNA methylation status using our bisulfite sequencing-based protocol, distinguishes genetically FSHD1, FSHD2, and non-FSHD samples. Additionally, since our protocol is PCR-based, it can utilize DNA isolated from multiple sources, including saliva and buccal swabs. What this study addsThis study validates the relevant DNA methylation signatures against several large cohorts of genetically-confirmed FSHD and non-FSHD samples and optimizes the DNA methylation data analysis for the greater accuracy required for diagnostic utility, including the exclusion of nonpathogenic chromosome 10q or 4A166 contractions. In addition, we introduce the D4Z4caster analysis software, which runs in a portable and scalable Docker container, and provides increased quantitative accuracy important for: 1) confirming likely clinical cases of FSHD that do not meet the currently accepted genetic definition of FSHD1 or FSHD2, 2) identifying FSHD1 somatic mosaicism, and 3) potential prognostic applications. How this study might affect research, practice or policyFSHD1 is genetically defined by a D4Z4 array at the 4q35 locus that is contracted to 1-10 repeat units. However, disease penetrance is influenced by repeat number, epigenetic modifications, and genetic background, causing a misalignment of current genetic diagnosis with clinical diagnosis. This study will improve the accuracy of epigenetic analysis for determining cases of genetic FSHD, help broaden the definition of genetic FSHD to more accurately correspond to clinical FSHD, and allow identification of those at risk for developing clinical FSHD in affected families and in large population studies now being performed and proposed. In addition, it will better inform how an individuals epigenetic status is interpreted for potential prognostic value. Overall, this methodology is: 1) significantly less expensive than current clinically-approved FSHD diagnostic technologies, 2) more accessible due to compatibility with DNA isolated from multiple sources including saliva, and 3) compatible with the current sequencing equipment and workflow for DNA isolation used in commercial clinical laboratories. Together, these advantages will help move the technology toward becoming an approved molecular diagnostic test for FSHD in the USA, Europe, and countries currently lacking clear access to testing.

genetics↗

Selective chr21 homolog silencing reveals polymorphisms influence the epigenetic silencing and functional dosage of RWDD2B

Polymorphisms that affect chr21 gene expression have significance for both variable severity in Down syndrome and common multifactorial conditions. Results here demonstrate "selective homolog silencing" in cells from even one individual can provide a valuable complement to large studies. In trisomic iPSC subclones that silence different chr21 homologs (via XIST-based silencing), we discovered unusually large, homolog-specific, differences in RWDD2B in iPSCs, cortical organoids and endothelial cells. RNA FISH showed RWDD2B transcription almost entirely from the H1 homolog, correlated with CpG promoter methylation differences. Polymorphisms different on H1 versus H2/H3 had strongest eQTLs in GTEx, especially in brain. Collective results indicate RWDD2B functional dosage is more frequently disconnected from copy number even compared to neighboring genes. RWDD2B function is unknown, but nearby methyl-eQTLs are implicated in osteoarthritis, and potential roles in inflammation or immune response merit consideration. This study has significance for RWDD2B regulation and demonstrates a cell-based methodology to study polymorphisms.

genetics↗

AAV gene therapy for Cockayne syndrome

Cockayne Syndrome (CS) is an autosomal recessive, progressive developmental and neurodegenerative disease. Approximately 30% of cases are caused by mutations in the ERCC8/CSA gene. Patients with CS present with cutaneous photosensitivity, growth failure, shorter life span and a progressive degeneration of the central nervous system. Loss of function mutations in CSA result in deficiencies in transcription-coupled nucleotide excision repair, regulation of RNA Pol II mediated transcription repair of oxidative DNA damage, and mitochondrial metabolism. Currently there are no available therapies for these patients. AAV gene therapy offers an opportunity to address this unmet need. We designed a new AAV vector encoding human CSA under a CBA promoter. We tested the therapeutic efficacy of this AAV9-CSA vector by neonatal ICV injection in the Csa-/-;Xpa-/- mouse model. Treatment with AAV9-CSA resulted in a significant increase in lifespan, and broad distribution of human CSA in the brain and heart. Despite clear therapeutic benefit, we also observed neuroradiological abnormalities, neuropathologic alterations including hypo-myelination, astrocytosis, microgliosis, and likely life limiting transcriptomic alterations in liver at endpoint. Nonetheless, the success of these experiments paves the way for the first in human clinical translation of a gene therapy for CS patients.

neuroscience↗

Sustained efficacy of CRISPR-Cas13b gene therapy for FSHD is challenged by immune response to Cas13b

Facioscapulohumeral muscular dystrophy (FSHD) is a potentially devastating muscle disease caused by de-repression of the toxic DUX4 gene in skeletal muscle. FSHD patients may benefit from DUX4 inhibition therapies, and although several experimental strategies to reduce DUX4 levels in skeletal muscle are being developed, no approved disease modifying therapies currently exist. We developed a CRISPR-Cas13b system that cleaves DUX4 mRNA and reduces DUX4 protein level, protects cells from DUX4-mediated death, and reduces FSHD-associated biomarkers in vitro. In vivo delivery of the CRISPR-Cas13b system with adeno-associated viral vectors reduced acute damage caused by high DUX4 levels in a mouse model of severe FSHD. However, protection was not sustained over time, with decreases in Cas13b and guide RNA levels between 8 weeks and 6 months after injection. In addition, wild-type mice injected with AAV6.Cas13b showed muscle inflammation with infiltrates containing Cas13b-responsive CD8+ cytotoxic T cells. Our RNA-seq data confirmed that several immune response pathways were significantly increased in human FSHD myoblasts transfected with Cas13b. Overall, our findings suggest that CRISPR-Cas13b is highly effective for DUX4 silencing but successful implementation of CRISPR/Cas13-based gene therapies may require strategies to mitigate immune responses.

molecular biology↗

Modeling Down syndrome neurodevelopment with isogenic cerebral organoids

As a model of early fetal brain development in Down syndrome, this study examines cortical organoids generated from isogenic trisomic and disomic iPSC lines. Initially pools of organoids from a trisomic versus disomic line found broad transcriptomic differences and modest differences in cell-type representation, suggesting a potential neurodevelopmental phenotype due to Trisomy 21. To better control for multiple sources of variation, we undertook a very robust study of ~1,200 organoids, using an expanded panel of six isogenic subclones (three disomic and three trisomic). The power of the experimental design was indicated by exceptionally strong detection of the ~1.5-fold difference in most chr21 genes. Despite some variability in secreted A{beta}-40 levels between "identical" cell lines, this Alzheimer-related phenotype was detected as clearly correlated with Trisomy 21. However, the many statistically significant non-chr21 DEGs found in the small experiment fell away in the expanded study design, such that just three non-chr21 DEGs correlated to T21 status. Similarly, differences in cell-type representation of organoids varied somewhat between the six isogenic lines, but did not correlate with T21 status. Overall, our results indicate that even when organoid and batch variability are better controlled, common, subtle differences between isogenic cell lines (even subclones) may obscure, or be confused with, differences due to Trisomy 21. Interestingly, the neurodegenerative increase in A{beta} due to T21 was strong enough to be evident in "fetal" organoids. In contrast, any neurodevelopmental phenotype that may be present in the ~2nd trimester of DS brain development may be more subtle, and within the range of variability in neurodifferentiation potential (unrelated to Trisomy 21) of our isogenic iPSC lines. The potential significance of two non-Chr21 DEGs that results suggest correlate with T21 is discussed.

developmental biology↗