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Alegbe, T.

Publications and source records attributed to Alegbe, T..

2 recordsLinked to original sources

The Human Pleiotropic Map of GWAS Associations and Therapeutic Implications

Genetic support for drug targets substantially increases clinical success rates, establishing genome-wide association studies (GWAS) as central to therapeutic hypothesis generation. However, the same genetic evidence that reveals causal gene-disease relationships simultaneously exposes organism-level safety liabilities--a dimension requiring principled, genome-wide quantification. Here we systematically analyse 100,526 GWAS to yield 789,453 credible sets and gene prioritisations for 15,641 genes, with discovery showing no saturation as GWAS expand and increase diversity. We find that 64% of GWAS-implicated genes are pleiotropic, associated with traits across multiple diseases and showing a non-linear relationship between the degree of pleiotropy and clinical success. Highly pleiotropic genes--concentrated in immune, inflammatory, and oncogenic signalling programmes--are enriched in safety-terminated clinical programmes, mouse lethal knockouts, and cancer driver genes, establishing gene-level pleiotropy as a potential measure of genetically-informed organism-level safety liability. Protein-altering variant (PAV) support amplifies therapeutic signal (OR = 6.0), yet PAV targets show higher average pleiotropy, introducing a competing safety liability. Combining PAV support with intermediate pleiotropy (2-5 therapeutic areas) resolves this tension, yielding OR = 10.3 and relative success = 4.8--a profile already satisfied by 52 approved therapies. As GWAS continue to expand in scale and resolution, these findings lay the groundwork for increasingly sophisticated target discovery strategies that yield safer and more effective therapeutic hypotheses.

genomics↗

Inflammation-associated monocytes express ACOD1 to curtail inflammatory behaviour in IBD and experimental colitis

Monocytes are essential for replenishing homeostatic macrophages in the intestine. However, they also accumulate in significant numbers when intestinal homeostasis is disrupted in diseases, such as inflammatory bowel disease (IBD). The molecular pathways governing monocyte behaviour across these different contexts remain poorly understood. Here, we profile the monocyte / macrophage compartment in human IBD using single-cell RNA sequencing and identify a discrete population of monocytes that accumulate in IBD, which we term inflammation associated monocytes (IAMs). These can be identified by the expression of CD319, CD274 and CCRL2, and demonstrate increased expression of IBD susceptibility genes. By performing cross-species analysis, we show an analogous population of IAMs accumulate during chemically induced colitis in mice. Using transgenic fate mapping approaches, we show these cells likely derive from a discrete precursor in the bone marrow (BM) and are locally imprinted to produce heightened IL-1{beta} and TNF in mouse and humans. Importantly, we show that co-incident with a hyper-inflammatory phenotype, these same cells uniquely and specifically express aconitate decarboxylase (ACOD1) in response to local Toll-like receptor (TLR) and interferon (IFN) receptor signalling, to limit unrestricted cytokine production. Thus, the intestinal environment after injury instructs both inflammation and recovery specifically within a transitioning population of monocytes that are absent in health.

immunology↗