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Biology subjects

Anderson, H. A.

Publications and source records attributed to Anderson, H. A..

2 recordsLinked to original sources

A feline model of human LDLR-related atherosclerosis

BackgroundAtherosclerosis, a chronic inflammatory vascular disease driven by the accumulation of LDL-derived cholesterol on arterial walls, is the leading cause of mortality worldwide but is rare in animals. We recently identified spontaneous atherosclerosis in the Korat cat breed, characterized by severe hypercholesterolemia and clinical signs of congestive heart failure, ultimately leading to death. Histopathological examination revealed lesions similar to those observed in human atherosclerosis. Given the close genetic relationship among affected cats, we hypothesized a genetic basis for the condition. MethodsWe expanded our sample recruitment and employed whole genome sequencing to identify genetic variants associated with the condition. ResultsWe identified a homozygous XM_003981898.6:c.2406G>A variant specific to the cases in the LDLR gene. This variant is predicted to result in a premature stop codon, XP_003981947.3:p.Trp758*, leading to a truncated LDLR protein that lacks the last 108 amino acids, including the transmembrane and intracellular C-terminal domains. Genotyping this LDLR variant in an additional cohort of 309 Korat cats confirmed its segregation and revealed new affected cats for clinical follow-up. In silico analyses demonstrated that the identified variant appears optimal for gene-editing-based therapeutics. ConclusionsThis is the first report of a spontaneous atherosclerosis animal model with an LDLR variant, the most common gene associated with familial hypercholesterolemia in humans. Given that PCSK9, another known hypercholesterolemia gene, has been lost in many mammalian genomes, including cats, our study provides an exciting double knockout model for human atherosclerosis. The affected Korats may also serve as a valuable model for DNA base editing therapeutics.

genetics↗

The Rac1 homolog CED-10 is a component of the MES-1/SRC-1 pathway for asymmetric division of the C. elegans EMS blastomere

Asymmetric cell division is essential for the creation of cell types with different identities and functions. The EMS blastomere of the four-cell Caenorhabditis elegans embryo undergoes an asymmetric division in response to partially redundant signaling pathways. One pathway involves a Wnt signal emanating from the neighboring P2 cell, while the other pathway is defined by the receptor-like MES-1 protein localized at the EMS/P2 cell contact, and the cytoplasmic kinase SRC-1. In response to these pathways, the EMS nuclear-centrosome complex rotates so that the spindle forms on the anterior-posterior axis; after division, the daughter cell contacting P2 becomes the endodermal precursor cell. Here we identify the Rac1 homolog, CED-10, as a new component of the MES-1/SRC-1 pathway. Loss of CED-10 affects both spindle positioning and endoderm specification. Although MES-1 is still present at the EMS/P2 contact in ced-10 embryos, SRC-1 dependent phosphorylation is reduced. These and other results suggest that CED-10 acts downstream of MES-1 and upstream of, or at the level of, SRC-1 activity. In addition, we find that the branched actin regulator ARX-2 is enriched at the EMS/P2 cell contact site, in a CED-10 dependent manner. Loss of ARX-2 results in spindle positioning defects, suggesting that CED-10 acts through branched actin to promote the asymmetric division of the EMS cell.

developmental biology↗