ID/Version |
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Sequence description from provider |
RecName: Full=Achaete-scute homolog 1 {ECO:0000303|PubMed:8217843, ECO:0000303|PubMed:8424959}; Short=ASH-1 {ECO:0000303|PubMed:8217843, ECO:0000303|PubMed:8424959}; Short=mASH-1 {ECO:0000303|PubMed:8217843, ECO:0000303|PubMed:8424959}; | ||||||||||||||
Provider | SWISS-PROT | ||||||||||||||
Sequence |
Polypeptide
231
aa
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Annotated genes and markers |
Follow the symbol links to get more information on the GO terms,
expression assays, orthologs, phenotypic alleles, and other information
for the genes or markers below.
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Sequence references in MGI |
J:2319
Johnson JE, et al., Induction and repression of mammalian achaete-scute homologue (MASH) gene expression during neuronal differentiation of P19 embryonal carcinoma cells. Development. 1992 Jan;114(1):75-87
J:3915 Franco del Amo F, et al., Cloning, sequencing and expression of the mouse mammalian achaete-scute homolog 1 (MASH1). Biochim Biophys Acta. 1993 Jan 23;1171(3):323-7 J:14701 Guillemot F, et al., Dynamic expression of the murine Achaete-Scute homologue Mash-1 in the developing nervous system. Mech Dev. 1993 Aug;42(3):171-85 J:15850 Guillemot F, et al., Mammalian achaete-scute homolog 1 is required for the early development of olfactory and autonomic neurons. Cell. 1993 Nov 5;75(3):463-76 J:99680 The FANTOM Consortium and RIKEN Genome Exploration Research Group and Genome Science Group (Genome Network Project Core Group), The Transcriptional Landscape of the Mammalian Genome. Science. 2005;309(5740):1559-1563 J:100187 Li S, et al., Foxn4 acts synergistically with Mash1 to specify subtype identity of V2 interneurons in the spinal cord. Proc Natl Acad Sci U S A. 2005 Jul 26;102(30):10688-93 J:128001 Del Barrio MG, et al., A regulatory network involving Foxn4, Mash1 and delta-like 4/Notch1 generates V2a and V2b spinal interneurons from a common progenitor pool. Development. 2007 Oct;134(19):3427-36 J:138261 Kokubu H, et al., Mash1 is required for neuroendocrine cell development in the glandular stomach. Genes Cells. 2008 Jan;13(1):41-51 J:196142 Rardin MJ, et al., Label-free quantitative proteomics of the lysine acetylome in mitochondria identifies substrates of SIRT3 in metabolic pathways. Proc Natl Acad Sci U S A. 2013 Apr 16;110(16):6601-6 J:241054 Wapinski OL, et al., Hierarchical mechanisms for direct reprogramming of fibroblasts to neurons. Cell. 2013 Oct 24;155(3):621-35 |
Mouse Genome Database (MGD), Gene Expression Database (GXD), Mouse Models of Human Cancer database (MMHCdb) (formerly Mouse Tumor Biology (MTB)), Gene Ontology (GO) |
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last database update 12/10/2024 MGI 6.24 |
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