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Rakowiecki, K.

Publications and source records attributed to Rakowiecki, K..

2 recordsLinked to original sources

Amyloid precursor protein dosage normalization rescues neurogenesis and Alzheimer's Disease phenotypes associated with Down Syndrome

Down Syndrome (DS) is the most abundant genetic form of mental retardation. It is caused by the triplication of partial or complete human chromosome 21 (HSA21). The molecular mechanisms causing it are not fully understood. Previous studies identified "Down syndrome Critical Region" (DSCR) genes that are essential or sufficient for the development of DS. However, these studies are largely inconclusive, due, in part, to the reliance on a small number of epidemiological cases. Amyloid precursor protein (APP) resides on HSA21 and is triplicated in DS. APP plays a role in developmental and post-natal neurogenesis, but is not thought to be part of the DSCR. The role of APP overdose in cortical malformation and cognitive impairments in DS is unknown. Mutations in APP cause familial Alzheimers disease (FAD). However, whether APP overdose is sufficient for the development of Alzheimers disease (AD) in DS is not fully understood. Here, we addressed the role of APP overdose in neuronal development and AD pathology. Using CRISPR/Cas9 gene editing, we eliminated one copy of APP from Down Syndrome-derived induced iPSCs DS APP(+/+/-) and examined the effect on neurogenesis, AD-related pathology and the expression levels of genes on HSA21 that are implicated in DS, neurodegeneration and inflammation.

neuroscience↗

Amyloid precursor protein mediates deficits in corticogenesis in Down syndrome cortical organoids

Down syndrome (DS), due to trisomy 21 (T21), occurs in approximately 14.14 per 10,000 live births in the United States. Reduced neural progenitor cell (NPC) proliferation, delayed neurogenesis, impaired cortical lamination and altered cell fate specification are thought to contribute to cognitive impairments in DS individuals. The molecular mechanisms underlying these deficits are not fully understood. Notably, Amyloid precursor protein (APP), located on human chromosome 21 (HSA21), has been extensively implicated in these processes. Mouse models only partially recapitulate DS phenotypes due to genetic, developmental, and species-specific differences. Recent advances in induced pluripotent stem cell (iPSC) derived 3D cortical organoids allow for the study of DS cortical development in a human model system. Here, we show that normalizing APP gene copy number in DS cortical organoids ameliorated deficits in NPC proliferation, neuronal differentiation, and transcriptional programs. Our results demonstrate the value of cortical organoids in uncovering gene-specific roles in DS pathogenesis and identify APP as a promising target for addressing early neurodevelopmental impairments.

neuroscience↗