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Morrison, S. D.

Publications and source records attributed to Morrison, S. D..

2 recordsLinked to original sources

Oligodendrocyte Enriched Brain Organoids Reveal Impaired Oligodendroglial Maturation and Altered Neural Network Activity in Down Syndrome

Individuals with Down syndrome (DS) display developmental delay, intellectual disability, premature brain ageing, and an increased risk of Alzheimer-like neurodegeneration. Although the neuropathology of the postnatal and adult DS brain has been widely described, it remains unclear how trisomy 21 alters early human neural and glial development. Here, we used human oligodendrocyte enriched brain organoids derived from trisomic and euploid iPSCs to define the cellular, functional, and molecular consequences of trisomy 21 during early brain development. Trisomic organoids exhibited an early growth delay, reduced oligodendroglial specification, and impaired oligodendrocyte maturation, resulting in decreased myelination. These defects were accompanied by increased astroglial output and delayed neuronal maturation. At the functional level, trisomic organoids showed elevated spontaneous network activity, but failed to mount normal coordinated responses to pharmacological stimulation, consistent with abnormal neural circuit development. Bulk RNA sequencing revealed the strongest transcriptomic dysregulation occurs at early neural and glial specification. Together, these findings show that trisomy 21 disrupts early developmental stages and establish oligodendrocyte enriched brain organoids as a human model to investigate the developmental origins of white matter and network dysfunction in DS.

cell biology↗

Choroid plexus defects in Down syndrome brain organoids enhance neurotropism of SARS-CoV-2

Why individuals with Down Syndrome (DS, trisomy 21) are particularly susceptible to SARS CoV-2 induced neuropathology remains largely unclear. Since the choroid plexus (CP) performs important barrier and immune-interface functions, secretes the cerebrospinal fluid and strongly expresses the ACE2 receptor and the chromosome 21 encoded TMPRSS2 protease, we hypothesized that the CP could play a role in establishing SARS-CoV-2 infection in the brain. To investigate the role of the choroid plexus in SARS-CoV-2 central nervous system infection in DS, we established a new type of brain organoid from DS and isogenic euploid control iPSC that consists of a core of appropriately patterned functional cortical neuronal cell types that is surrounded by a patent and functional choroid plexus (CPCOs). Remarkably, DS-CPCOs not only recapitulated abnormal features of DS cortical development but also revealed defects in ciliogenesis and epithelial cell polarity of the developing choroid plexus. We next demonstrate that the choroid plexus layer facilitates SARS-CoV-2 replication and infection of cortical neuronal cells, and that this is increased in DS-CPCOs. We further show that inhibition of TMPRSS2 and Furin activity inhibits SARS-CoV-2 replication in DS CPCOs to the level observed in euploid organoids. We conclude that CPCOs are a useful model for dissecting the role of the choroid plexus in euploid and DS forebrain development and enables screening for therapeutics that can inhibit SARS-CoV-2 induced neuro-pathogenesis.

neuroscience↗