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Sonntag, Kai-Christian

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Sonntag

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Kai-Christian

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Sonntag, Kai-Christian

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  • Publication

    Fast and Efficient Neural Conversion of Human Hematopoietic Cells

    (Elsevier, 2014) Castaño, Julio; Menendez, Pablo; Bruzos-Cidon, Cristina; Straccia, Marco; Sousa, Amaia; Zabaleta, Lorea; Vazquez, Nerea; Zubiarrain, Amaia; Sonntag, Kai-Christian; Ugedo, Luisa; Carvajal-Vergara, Xonia; Canals, Josep Maria; Torrecilla, Maria; Sanchez-Pernaute, Rosario; Giorgetti, Alessandra

    Summary Neurons obtained directly from human somatic cells hold great promise for disease modeling and drug screening. Available protocols rely on overexpression of transcription factors using integrative vectors and are often slow, complex, and inefficient. We report a fast and efficient approach for generating induced neural cells (iNCs) directly from human hematopoietic cells using Sendai virus. Upon SOX2 and c-MYC expression, CD133-positive cord blood cells rapidly adopt a neuroepithelial morphology and exhibit high expansion capacity. Under defined neurogenic culture conditions, they express mature neuronal markers and fire spontaneous action potentials that can be modulated with neurotransmitters. SOX2 and c-MYC are also sufficient to convert peripheral blood mononuclear cells into iNCs. However, the conversion process is less efficient and resulting iNCs have limited expansion capacity and electrophysiological activity upon differentiation. Our study demonstrates rapid and efficient generation of iNCs from hematopoietic cells while underscoring the impact of target cells on conversion efficiency.

  • Publication

    Molecular Profiles of Parvalbumin-Immunoreactive Neurons in the Superior Temporal Cortex in Schizophrenia

    (Informa Healthcare, 2014) Pietersen, Charmaine Y.; Mauney, Sarah A.; Kim, Susie S.; Passeri, Eleonora; Lim, Maribel P.; Rooney, Robert J.; Goldstein, Jill; Petreyshen, Tracey L.; Seidman, Larry Joel; Shenton, Martha; McCarley, Robert William; Sonntag, Kai-Christian; Woo, Tsung-Ung

    Dysregulation of pyramidal cell network function by the soma- and axon-targeting inhibitory neurons that contain the calcium-binding protein parvalbumin (PV) represents a core pathophysiological feature of schizophrenia. In order to gain insight into the molecular basis of their functional impairment, we used laser capture microdissection (LCM) to isolate PVimmunolabeled neurons from layer 3 of Brodmann’s area 42 of the superior temporal gyrus (STG) from postmortem schizophrenia and normal control brains. We then extracted ribonucleic acid (RNA) from these neurons and determined their messenger RNA (mRNA) expression profile using the Affymetrix platform of microarray technology. Seven hundred thirty-nine mRNA transcripts were found to be differentially expressed in PV neurons in subjects with schizophrenia, including genes associated with WNT (wingless-type), NOTCH, and PGE2 (prostaglandin E2) signaling, in addition to genes that regulate cell cycle and apoptosis. Of these 739 genes, only 89 (12%) were also differentially expressed in pyramidal neurons, as described in the accompanying paper, suggesting that the molecular pathophysiology of schizophrenia appears to be predominantly neuronal type specific. In addition, we identified 15 microRNAs (miRNAs) that were differentially expressed in schizophrenia; enrichment analysis of the predicted targets of these miRNAs included the signaling pathways found by microarray to be dysregulated in schizophrenia. Taken together, findings of this study provide a neurobiological framework within which hypotheses of the molecular mechanisms that underlie the dysfunction of PV neurons in schizophrenia can be generated and experimentally explored and, as such, may ultimately inform the conceptualization of rational targeted molecular intervention for this debilitating disorder.