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Deb, B. K.

Publications and source records attributed to Deb, B. K..

2 recordsLinked to original sources

STAT3 regulates the generation of astroglia inhuman brain organoids with high mTORC1 activity

During brain development, neural progenitor cells first produce neurons, then astrocytes and other glial cell types, which provide important trophic support and shape neuronal development and function. Intrinsic genetic programs interact with extracellular signals to control progenitor fate, resulting in temporally segregated periods of neurogenesis and gliogenesis. Animal models have implicated STAT3 as an important driver of astrogenesis; however, the signaling pathways that control glial differentiation during human brain development are less well understood. Prior work demonstrated that constitutive activation of mTORC1 signaling in human brain organoid models resulted in the precocious generation of glial-lineage cells. In this study, we tested whether mTORC1 acts via STAT3 to control astrogenesis in brain organoids. We show that knockdown of STAT3 reduces astrogenesis in wild-type organoids and in organoids with constitutively high mTORC1 signaling caused by deletion of the negative regulator TSC2. However, mTORC1 is not required for cytokine-induced activation of STAT3 and expression of the astrocytic protein GFAP. Together, these results show that mTORC1 acts through STAT3 to control astroglia production in human brain organoid models, but that mTOR signaling is dispensable for STAT3-driven astrogenesis. Summary statementDeb et al, use human brain organoid models to show a requirement for STAT3 downstream of mTORC1 in regulating astrogliogenesis during early human brain development.

neuroscience↗

Regulation of Store-Operated Ca2+ Entry by IP3 Receptors Independent of Their Ability to Release Ca2+

Loss of endoplasmic reticular (ER) Ca2+ activates store-operated Ca2+ entry (SOCE) by causing the ER localized Ca2+ sensor STIM to unfurl domains that activate Orai channels in the plasma membrane at membrane contact sites (MCS). Here we demonstrate a novel mechanism by which the inositol 1,4,5 trisphosphate receptor (IP3R), an ER-localized IP3-gated Ca2+ channel, regulates neuronal SOCE. In human neurons, SOCE evoked by pharmacological depletion of ER-Ca2+ is attenuated by loss of IP3Rs, and restored by expression of IP3Rs even when they cannot release Ca2+, but only if the IP3Rs can bind IP3. Imaging studies demonstrate that IP3Rs enhance association of STIM1 with Orai1 in neuronal cells with empty stores; this requires an IP3-binding site, but not a pore. Convergent regulation by IP3Rs, may tune neuronal SOCE to respond selectively to receptors that generate IP3.

cell biology↗