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Himeda, C. L.

Publications and source records attributed to Himeda, C. L..

2 recordsLinked to original sources

Identification of compounds that repress DUX4 expression in facioscapulohumeral muscular dystrophy

Facioscapulohumeral muscular dystrophy (FSHD) is caused by epigenetic dysregulation of the disease locus, leading to pathogenic misexpression of DUX4 in skeletal muscle. Thus, most FSHD therapeutic approaches target DUX4. Our previous study identified the chromatin remodeling factor BAZ1A (bromodomain adjacent to zinc finger domain protein 1A) as a promising target for therapeutic development. Here we used an artificial intelligence-based screening pipeline to identify molecules predicted to bind the BAZ1A bromodomain, and validated hit compounds using FSHD-specific assays in FSHD myocytes. One compound, termed C06, emerged as a potent and specific repressor of DUX4 and DUX4 target gene expression. Interestingly, while C06 exhibited binding to BAZ1A in vitro, it can also inhibit multiple kinases, including p38, an upstream activator of DUX4. Despite this, at low doses C06 was an equally effective and more specific repressor of DUX4 than losmapimod, which is a robust and specific p38 inhibitor. Thus, C06 is a useful tool for potent and specific DUX4 suppression, and a viable candidate for further development. Our results highlight both the utility and limitations of AI for targeted drug discovery, and the importance of using an FSHD-specific functional screening strategy for selecting relevant candidates.

pharmacology and toxicology↗

Transgenic mouse models for investigating human DUX4 expression during development and its roles in FSHD pathophysiology

Facioscapulohumeral muscular dystrophy (FSHD) is an autosomal dominant myopathy caused by aberrant expression of the DUX4 retrogene, and it affects skeletal muscles primarily in the face, shoulder, and limbs. In healthy individuals, DUX4 is expressed in early development and is subsequently silenced in most somatic tissues. The spatiotemporal pattern of DUX4 mis-expression beyond the cleavage stage in FSHD is poorly understood because DUX4 is not well conserved beyond primates. Here, we generated Cre reporter mouse lines with human DUX4 regulatory elements to investigate the cell lineages derived from DUX4-expressing cells in embryos and adults. Intriguingly, we found that DUX4-expressing cell lineages were present in embryonic forelimb, hindlimb, and face. In adults, the reporter was expressed strongly in testis and to a lesser extent in other tissues, including weak, sporadic expression in skeletal muscles, reminiscent of mosaic DUX4 expression in FSHD. Within skeletal muscles, DUX4 lineage cells include pericytes, an interstitial cell that contributes to muscle regeneration and repair. Overall, this study introduces a new research tool for the field, and provides new insight into potential developmental mechanisms underlying FSHD pathophysiology. Summary statementCre reporter mouse lines with human DUX4 regulatory elements are discovery tools for developmental processes and mechanisms underlying FSHD pathophysiology.

developmental biology↗