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      Nuclear Factor One X in Development and Disease

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      Trends in Cell Biology
      Elsevier BV

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          Intertumoral Heterogeneity within Medulloblastoma Subgroups.

          While molecular subgrouping has revolutionized medulloblastoma classification, the extent of heterogeneity within subgroups is unknown. Similarity network fusion (SNF) applied to genome-wide DNA methylation and gene expression data across 763 primary samples identifies very homogeneous clusters of patients, supporting the presence of medulloblastoma subtypes. After integration of somatic copy-number alterations, and clinical features specific to each cluster, we identify 12 different subtypes of medulloblastoma. Integrative analysis using SNF further delineates group 3 from group 4 medulloblastoma, which is not as readily apparent through analyses of individual data types. Two clear subtypes of infants with Sonic Hedgehog medulloblastoma with disparate outcomes and biology are identified. Medulloblastoma subtypes identified through integrative clustering have important implications for stratification of future clinical trials.
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            SATELLITE CELL OF SKELETAL MUSCLE FIBERS

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              Reprogramming committed murine blood cells to induced hematopoietic stem cells with defined factors.

              Hematopoietic stem cells (HSCs) sustain blood formation throughout life and are the functional units of bone marrow transplantation. We show that transient expression of six transcription factors Run1t1, Hlf, Lmo2, Prdm5, Pbx1, and Zfp37 imparts multilineage transplantation potential onto otherwise committed lymphoid and myeloid progenitors and myeloid effector cells. Inclusion of Mycn and Meis1 and use of polycistronic viruses increase reprogramming efficacy. The reprogrammed cells, designated induced-HSCs (iHSCs), possess clonal multilineage differentiation potential, reconstitute stem/progenitor compartments, and are serially transplantable. Single-cell analysis revealed that iHSCs derived under optimal conditions exhibit a gene expression profile that is highly similar to endogenous HSCs. These findings demonstrate that expression of a set of defined factors is sufficient to activate the gene networks governing HSC functional identity in committed blood cells. Our results raise the prospect that blood cell reprogramming may be a strategy for derivation of transplantable stem cells for clinical application. Copyright © 2014 Elsevier Inc. All rights reserved.
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                Author and article information

                Journal
                Trends in Cell Biology
                Trends in Cell Biology
                Elsevier BV
                09628924
                January 2019
                January 2019
                : 29
                : 1
                : 20-30
                Article
                10.1016/j.tcb.2018.09.003
                30287093
                a96f7033-998b-4797-b1be-907f9b0d1451
                © 2019

                https://www.elsevier.com/tdm/userlicense/1.0/

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