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The extracellular matrix molecule tenascin-C modulates cell cycle progression and motility of adult neural stem/progenitor cells from the subependymal zone

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TLDR
In this paper , the function of the extracellular matrix (ECM) glycoproteins in the adult stem cell niche has been investigated in two canonical regions of the adult central nervous system (CNS).
Abstract
Adult neurogenesis has been described in two canonical regions of the adult central nervous system (CNS) of rodents, the subgranular zone (SGZ) of the hippocampus and the subependymal zone (SEZ) of the lateral ventricles. The stem cell niche of the SEZ provides a privileged environment composed of a specialized extracellular matrix (ECM) that comprises the glycoproteins tenascin-C (Tnc) and laminin-1 (LN1). In the present study, we investigated the function of these ECM glycoproteins in the adult stem cell niche. Adult neural stem/progenitor cells (aNSPCs) of the SEZ were prepared from wild type (Tnc+/+) and Tnc knockout (Tnc-/-) mice and analyzed using molecular and cell biological approaches. A delayed maturation of aNSPCs in Tnc-/- tissue was reflected by a reduced capacity to form neurospheres in response to epidermal growth factor (EGF). To examine a potential influence of the ECM on cell proliferation, aNSPCs of both genotypes were studied by cell tracking using digital video microscopy. aNSPCs were cultivated on three different substrates, namely, poly-D-lysine (PDL) and PDL replenished with either LN1 or Tnc for up to 6 days in vitro. On each of the three substrates aNSPCs displayed lineage trees that could be investigated with regard to cell cycle length. The latter appeared reduced in Tnc-/- aNSPCs on PDL and LN1 substrates, less so on Tnc that seemed to compensate the absence of the ECM compound to some extent. Close inspection of the lineage trees revealed a subpopulation of late dividing aNSPCslate that engaged into cycling after a notable delay. aNSPCslate exhibited a clearly different morphology, with a larger cell body and conspicuous processes. aNSPCslate reiterated the reduction in cell cycle length on all substrates tested, which was not rescued on Tnc substrates. When the migratory activity of aNSPC-derived progeny was determined, Tnc-/- neuroblasts displayed significantly longer migration tracks. This was traced to an increased rate of migration episodes compared to the wild-type cells that rested for longer time periods. We conclude that Tnc intervenes in the proliferation of aNSPCs and modulates the motility of neuroblasts in the niche of the SEZ.

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Citations
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Journal ArticleDOI

Neural Stem Cells in Adult Mammals are not Astrocytes

TL;DR: In this article , the authors evaluated the evidence collected to date to establish whether classifying the NSCs as astrocytes is appropriate and useful, and they concluded that classifying adult mammalian NSC as an astrocell is potentially misleading.
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Matricellular protein tenascin C: Implications in glioma progression, gliomagenesis, and treatment

TL;DR: The evidence regarding the role of TNC in glioma progression is reviewed, a potential association between TNC and gliomagenesis is proposed, and its clinical applications are summarized.
Journal ArticleDOI

Low-density lipoprotein receptor-related protein-1 (LRP1) in the glial lineage modulates neuronal excitability

TL;DR: The low-density lipoprotein related protein receptor 1 (LRP1) as discussed by the authors is a transmembrane receptor that interacts with more than 40 known ligands and plays an important biological role as receptor of morphogens, extracellular matrix molecules, cytokines, proteases, protease inhibitors and pathogens.
References
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Generation of neurons and astrocytes from isolated cells of the adult mammalian central nervous system

TL;DR: Cells of the adult mouse striatum have the capacity to divide and differentiate into neurons and astrocytes.
Journal ArticleDOI

Subventricular Zone Astrocytes Are Neural Stem Cells in the Adult Mammalian Brain

TL;DR: It is shown that SVZ astrocytes act as neural stem cells in both the normal and regenerating brain and give rise to cells that grow into multipotent neurospheres in vitro.
Journal ArticleDOI

Long-distance neuronal migration in the adult mammalian brain

TL;DR: Grafted and endogenous SVZ cells in the lateral ventricle of adult mice migrate long distances and differentiate into neurons in the olfactory bulb.
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Adult neurogenesis in the mammalian brain: significant answers and significant questions.

TL;DR: Major advances in understanding of adult mammalian neurogenesis in the dentate gyrus of the hippocampus and from the subventricular zone of the lateral ventricle, the rostral migratory stream to the olfactory bulb are reviewed.
Journal ArticleDOI

The glial nature of embryonic and adult neural stem cells

TL;DR: The timing in development and location of NSCs, a property tightly linked to their neuroepithelial origin, appear to be the key determinants of the types of neurons generated.
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