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Bok, J.

Publications and source records attributed to Bok, J..

3 recordsLinked to original sources

Neural Progenitors as a Novel Pathogenic Mechanism in Microcephaly

Despite their significance, the genetic and molecular bases of neurodevelopmental disorders remain poorly understood. In this study, using human brain organoids and mouse models, we show that loss of NDE1, a gene closely associated with microcephaly, disrupts progenitor identity, prolongs mitosis, and alters regional patterning in the forebrain. NDE1 knockout leads to a caudal identity shift of neural progenitor cells in the organoids and mouse brains, coinciding with aberrant ERK signaling. Notably, downstream activation of the ERK pathway restored rostral PAX6 expression in human brain organoids. Parallel analyses of Nde1 knockout mice confirmed disrupted regional patterning of the forebrain. Together, our data establish NDE1 as a critical regulator of early human brain regionalization and elucidate molecular mechanisms underlying the structural abnormalities observed in NDE1-associated microcephaly.

developmental biology↗

Robust Production of Parvalbumin Cortical Interneurons and Fast-Spiking Neurons from Human Medial Ganglionic Eminence Organoids

The medial ganglionic eminence (MGE) gives rise to parvalbumin (PV)-and somatostatin (SST)-expressing cortical interneurons essential for regulating cortical excitability. Although PV interneurons are linked to various neurodevelopmental and neurodegenerative disorders, reliably generating them from human pluripotent stem cells (hPSCs) has been extremely challenging. We present a robust, reproducible protocol for generating single-rosette MGE organoids (MGEOs) from hPSCs. Transcriptomic analyses reveal that MGEOs exhibit MGE regional identity and faithfully model the developing human fetal MGE. As MGEOs mature, they generate abundant PV-expressing cortical interneurons, including putative basket and axoaxonic cells, at a scale not previously achieved in vitro. When fused with human cortical organoids (hCOs), these interneurons rapidly migrate into the hCOs, integrate into excitatory networks, and contribute to complex electrophysiological patterns and the emergence of large numbers of fast-spiking neurons. Using this model, we uncover a previously unreported migration deficit of MGE interneurons in a disease model of SLC6A1 developmental and epileptic encephalopathy, offering potential insights into the developmental contributions to epileptogenesis. MGEOs thus offer a powerful in vitro approach for probing human MGE-lineage cortical and subcortical GABAergic neuron development, modeling various neuropsychiatric disorders, and advancing cell-based therapies for neurodevelopmental and neurodegenerative disorders. HighlightsO_LIGeneration of subpallial organoids highly enriched for MGE lineages C_LIO_LIMGE organoids (MGEOs) robustly produce parvalbumin-expressing cortical interneurons C_LIO_LIComplex network activity and fast-spiking neurons are generated in assembloids C_LIO_LIImpaired interneuron migration in SLC6A1 knockout and patient-derived MGEOs C_LI Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/662594v2_ufig1.gif" ALT="Figure 1"> View larger version (69K): org.highwire.dtl.DTLVardef@1fce574org.highwire.dtl.DTLVardef@3c28d2org.highwire.dtl.DTLVardef@19bf737org.highwire.dtl.DTLVardef@834f2b_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

TMEM145 is a key component in stereociliary link structures of outer hair cells

Outer hair cells (OHCs) in the cochlea contain specialized stereociliary structures essential for auditory function. These include horizontal top connectors (HTCs), linking adjacent stereocilia and tectorial membrane-attachment crowns (TM-ACs), anchoring the tallest stereocilia to the tectorial membrane. The known molecular components of these structures, such as stereocilin, otogelin, otogelin-like, and tubby, lack transmembrane domains, suggesting the existence of anchoring proteins. This study identified TMEM145, a transmembrane protein with a Golgi dynamics (GOLD) domain, as a crucial OHC stereocilia component. TMEM145 was expressed in both OHCs and spiral ganglion neurons, with specific localization to TM-ACs and HTCs in OHCs. Tmem145 knockout (KO) mice exhibited profound hearing impairment at three weeks of age, with complete loss of distortion product otoacoustic emissions, indicating OHC dysfunction. Immunostaining and scanning electron microscopy revealed the absence of TM-ACs and HTCs in Tmem145 KO mice. In heterologous cell systems, TMEM145 interacted with stereocilin and tubby, facilitating their extracellular secretion. TMEM145 was undetectable in stereocilin KO and tubby mutant mice, indicating interdependence among these proteins. These findings establish TMEM145 as an essential membrane protein for the structural integrity of OHC stereocilia, providing insights into the molecular architecture of cochlear hair cells and their role in auditory function.

neuroscience↗