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Biology subjects

Linden, A. K.

Publications and source records attributed to Linden, A. K..

2 recordsLinked to original sources

Identification of Human Pluripotent Stem Cell Derived Astrocytic Progenitors that Correlate with Glioblastoma Subtypes

Recent studies have identified stem/progenitor cells in Glioblastoma multiforme (GBM) tumors that recapitulate developmental glial lineages in tumor progression, but whether non-malignant developmental glial progenitors share molecular characteristics with GBM tumor subtypes has not been extensively investigated. Here we present an approach that uses human pluripotent stem cells (hPSCs)-derived neural progenitors to study the developmental diversity of cells in the astrocytic lineage and how it correlates with GBM subtypes. Using a combination of single cell RNA sequencing of gliogenic stage neural progenitors and bulk RNA sequencing of cells that express combinations of GBM-associated cell surface markers, we identified two astrocytic progenitor populations that share gene expression profiles with the mesenchymal and proneural GBM subtypes respectively. Differential gene expression and pathway analyses of mesenchymal and proneural-associated progenitor clusters revealed enrichment in TGF-{beta} signaling and neuronal differentiation pathways respectively. These findings suggest that hPSC-derived astrocytic progenitors retain similar molecular heterogeneity as that observed in human fetal brain and GBM tumor cells. Identification of specific astrocyte progenitors that exhibit distinct GBM subtype transcriptomic profiles should facilitate development of therapies that target specific GBM cell populations. Significance StatementSignaling pathways that create heterogeneity during development are essential for the generation of functionally distinct cell types that coordinate to achieve the complexity of the nervous system. However, studies have demonstrated that molecular dysfunction in stem/progenitor cells that give rise to the diverse cell types during normal development may contribute to malignant outcomes, including brain tumors such as glioblastoma. Using human pluripotent stem cell (hPSC) as a model, we found that developmental signals that promote the generation of astrocytes also give rise to astrocyte progenitor cells that share molecular similarities with different brain tumor subtypes. The study provides a novel hPSC differentiation protocol for generating molecularly distinct populations of astrocyte progenitors, which may be utilized in disease modeling or drug testing for specific brain tumor subtypes.

developmental biology↗

YAP and TAZ differentially regulate postnatal cortical progenitor proliferation and astrocyte differentiation

WW domain-containing transcription regulator 1 (TAZ) and Yes-associated protein (YAP) are transcriptional co-activators traditionally studied together as a part of the Hippo pathway and best known for their roles in stem cell proliferation and differentiation. Despite their similarities, TAZ and YAP can exert divergent cellular effects by differentially interacting with other signaling pathways that regulate stem cell maintenance or differentiation. In the developing central nervous system, In this study, we show that TAZ regulates astrocytic differentiation and maturation of postnatal neural stem and progenitor cells (NPCs), and that TAZ mediates some but not all of the effects of bone morphogenetic protein (BMP) signaling on astrocytic development. By contrast, TAZ and YAP both mediate effects on NPC fate of {beta}1-integrin and integrin-linked kinase (ILK) signaling, and these effects are dependent on extracellular matrix (ECM) cues. These findings demonstrate that TAZ and YAP perform divergent functions in the regulation of astrocyte differentiation, where YAP regulates cell cycle states of astrocytic progenitors and TAZ regulates differentiation and maturation from astrocytic progenitors into astrocytes. Summary StatementAstrocytes are accounts for nearly half of the cells in the central nervous system, where they perform a diverse array of physiological functions. During development, astrocytes are primarily generated after neuronal differentiation in a stepwise manner from multiple glial committed progenitor subtypes. How gliogenic progenitors maintain proliferative properties versus differentiate into astrocytes is not fully understood. This work aims to elucidate how environmental signals utilizes molecularly similar intracellular components to achieve distinct developmental outcomes. In addition, many of the cell types that are involved in glial development are also present in brain tumors including glioblastoma. Knowledge on mechanisms regulating proliferation and differentiation of glial progenitors will provide insights into differences and similarities between normal and malignant cells.

neuroscience↗