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Silvian, D.

Publications and source records attributed to Silvian, D..

2 recordsLinked to original sources

Aberrant chromatin remodeling influences human neural cell fate change in Trisomy 21

Correct neural progenitor cell (NPC) fate specification is essential to produce the full complement of neurons and glia needed for proper brain structure and function. Neurodevelopmental disorders, including the autosomal aneuploidy Down syndrome (DS), or Trisomy 21 (T21), are frequently associated with impaired cell fate decisions which ultimately drive differences in overall brain size and cell type composition through unknown mechanisms. To uncover mechanisms driving altered NPC fate in T21, we leverage paired single-nuclei transcriptomic and epigenomic analyses of human induced pluripotent stem cell (iPSC)-derived NPCs and their differentiated progeny coupled with in depth clonal cell fate, cell cycle, and proteomic analyses. Here we show that T21 NPCs fail to activate an orchestrated neurogenic program during the earliest stages of fate specification, instead maintaining a repressive chromatin structure over neurogenic loci, leading to reduced neurogenesis and continued NPC proliferation. We identify novel enrichment of the repressive histone mark H3K27me3 at fate instructive genes dysregulated across diverse cell and tissue types in T21, with corresponding genome-wide changes in H3K27me3 binding in T21 NPCs. Moreover, pharmacological treatment with an inhibitor of the Polycomb repressive complex 2 (PRC2) which catalyzes H3K27 methylation, is sufficient to partially restore neurogenesis in T21 cells. Collectively, our analyses reveal a chromatin mechanism influencing neurogenic defects in T21.

neuroscience↗

KV1.8 (Kcna10) potassium channels enhance fast, linear signaling in vestibular hair cells and facilitate vestibulomotor reflexes and balance

Vestibular hair cells (HCs) faithfully and rapidly detect head motions and gravity, driving motor reflexes that stabilize balance and gaze during locomotion. With the transition from water to land, the amniote vestibular inner ear added type I HCs, which differ from amniote type II HCs and anamniote HCs by their large calyx afferent synapse, non-quantal afferent transmission, and a large, low-voltage-activated K+ conductance (gK,L). We recently showed that both gK,L and the major type II K+ conductances (A-type and delayed rectifier) require KV1.8 (Kcna10) subunits. Here we compared KV1.8-null (Kcna10-/-) and control animals to see how KV1.8 affects function as measured by receptor potentials and nonquantal postsynaptic potentials evoked by direct hair bundle motions, and by vestibulomotor behaviors. Recordings were taken from extrastriolar zones of the utricle. In both HC types, KV1.8 affected receptor potentials by reducing response time and gain, increasing dampening, and expanding the frequency bandwidth toward high frequencies. Effects are most prominent in type I HCs: lowpass corner frequencies of receptor potentials in Kcna10-/- HCs of both types were [~]20 Hz, vs. [~]400 Hz in control type I and [~]70 Hz in control type II. We recorded nonquantal postsynaptic potentials from extrastriolar calyces, and found that the synaptic transfer function had lower gain and greater phase lag in Kcna10-/- mice. In behavioral tests, Kcna10-/- mice had vestibular-ocular reflexes with different response dynamics at low frequencies, impaired performance on a narrow balance beam, abnormal body posture and abnormal head motions in water and on land, and also rarely assumed bipedal stances. These vestibulomotor deficits in Kcna10-/- mice likely reflect the changes noted in HCs, where KV1.8 expression is concentrated; that is, slower signaling of high-frequency head motions by Kcna10-/- HCs fails to fully stabilize body and head position during locomotion. Thus, gK,L (KV1.8) contributes to fast signal transmission in the amniote vestibular inner ear and supports improved performance on challenging vestibulomotor tasks. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=191 SRC="FIGDIR/small/634388v1_ufig1.gif" ALT="Figure 1"> View larger version (44K): org.highwire.dtl.DTLVardef@126570borg.highwire.dtl.DTLVardef@1cab5borg.highwire.dtl.DTLVardef@36240corg.highwire.dtl.DTLVardef@789617_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗