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Biology subjects

Shamir, E. R.

Publications and source records attributed to Shamir, E. R..

2 recordsLinked to original sources

Deep learning design and in vivo validation of Müller glia-specific cis-regulatory elements

Effective recombinant adeno-associated virus gene therapies require promoters that are compact and cell-type-specific. Ideally, promoters should also exhibit functional conservation when tested in model organisms to ensure that preclinical findings translate reliably to human patients. Here, we introduce a deep learning framework for designing cis-regulatory elements (CREs) meeting these criteria, applied to retinal Muller glia (MG). Using single-cell chromatin accessibility data from human and mouse retinas, we trained species-specific models to predict cell-type accessibility, and designed compact CREs using two complementary strategies. In silico validation predicted that the designed CREs exhibit high MG-specific accessibility (on-target) in both species with minimal off-target accessibility across hundreds of human cell types and tissues. Mechanistic analysis revealed that the predicted MG accessibility is driven by the creation of LHX2 motifs. In vivo validation confirmed that the designed CREs successfully restrict reporter expression to MG in the murine retina. Our deep learning framework is highly generalizable and enables the rapid design of compact, on-target, and species-conserved CREs for precision gene therapy.

genomics↗

Acute Pericentral Liver Injury Induces a Novel Transient Hepatocyte Population

The liver exhibits robust regenerative capacity in response to injury, a property shaped by its essential metabolic and detoxification roles. While the mechanisms of regeneration following chronic liver injury have been extensively studied, the response during the early phases of acute injury remains poorly understood. Here, we employed a pericentral model of acute liver injury using carbon tetrachloride (CCl4) to investigate the initial hepatocyte response to damage. Through integration of single-nucleus multiome-sequencing, lineage tracing, spatial transcriptomics, and immunostaining, we identified a novel, transient population of damage-responsive SOX9+ pericentral hepatocytes. This population does not exhibit progenitor-like behavior but instead potentially mediates key aspects of early tissue repair. Specifically, SOX9+ pericentral hepatocytes engage in interactions with hepatic stellate cells and display migratory features associated with wound closure. Moreover, these cells exhibit an immune-related transcriptional signature and colocalize with liver macrophages at injury sites, suggesting a role in modulating immune responses. Our findings highlight a previously underappreciated function of SOX9 as a stress-responsive regulator of hepatocyte behavior and intercellular crosstalk during the early stages of acute liver injury.

cell biology↗