Gene regulatory patterning codes in early cell fate specification of the C. elegans embryo
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T. Hashimshony | I. Yanai | A. Cole | Z. Du
[1] P. Sternberg,et al. WormBase single-cell tools , 2022, Bioinformatics advances.
[2] Xuehua Ma,et al. A 4D single-cell protein atlas of transcription factors delineates spatiotemporal patterning during embryogenesis , 2021, Nature Methods.
[3] G. Seydoux,et al. Nanos promotes epigenetic reprograming of the germline by down-regulation of the THAP transcription factor LIN-15B , 2017, eLife.
[4] J. Lieb,et al. A Transcriptional Lineage of the Early C. elegans Embryo. , 2016, Developmental cell.
[5] Shuqiang Li,et al. CEL-Seq2: sensitive highly-multiplexed single-cell RNA-Seq , 2016, Genome Biology.
[6] J. Murray,et al. Combinatorial decoding of the invariant C. elegans embryonic lineage in space and time , 2016, Genesis.
[7] Robert D. Finn,et al. The Pfam protein families database: towards a more sustainable future , 2015, Nucleic Acids Res..
[8] H. Najafabadi,et al. Mapping and analysis of Caenorhabditis elegans transcription factor sequence specificities , 2015, eLife.
[9] Z. Bao,et al. A semi-local neighborhood-based framework for probabilistic cell lineage tracing , 2014, BMC Bioinformatics.
[10] T. Hashimshony,et al. CEL-Seq: single-cell RNA-Seq by multiplexed linear amplification. , 2012, Cell reports.
[11] R. Waterston,et al. Multidimensional regulation of gene expression in the C. elegans embryo , 2012, Genome research.
[12] S. Linnarsson,et al. Counting absolute numbers of molecules using unique molecular identifiers , 2011, Nature Methods.
[13] G. Richards,et al. Early evolution of metazoan transcription factors. , 2009, Current opinion in genetics & development.
[14] Morris F. Maduro,et al. The NK-2 class homeodomain factor CEH-51 and the T-box factor TBX-35 have overlapping function in C. elegans mesoderm development , 2009, Development.
[15] S. Carroll. Evo-Devo and an Expanding Evolutionary Synthesis: A Genetic Theory of Morphological Evolution , 2008, Cell.
[16] Thomas J. Nicholas,et al. Automated analysis of embryonic gene expression with cellular resolution in C. elegans , 2008, Nature Methods.
[17] K L Hammond,et al. From DNA to diversity: molecular genetics and the evolution of animal design (2nd ed.) , 2006, Heredity.
[18] James R Priess,et al. Notch signaling in the C. elegans embryo. , 2005, WormBook : the online review of C. elegans biology.
[19] N. Gostling,et al. From DNA to Diversity: Molecular Genetics and the Evolution of Animal Design , 2002, Heredity.
[20] Morris F. Maduro,et al. Making worm guts: the gene regulatory network of the Caenorhabditis elegans endoderm. , 2002, Developmental biology.
[21] J. Gerhart,et al. 1998 Warkany lecture: signaling pathways in development. , 1999, Teratology.
[22] J. McGhee,et al. The GATA-factor elt-2 is essential for formation of the Caenorhabditis elegans intestine. , 1998, Developmental biology.
[23] C. Mello,et al. Wnt Signaling and an APC-Related Gene Specify Endoderm in Early C. elegans Embryos , 1997, Cell.
[24] Bruce Bowerman,et al. Wnt Signaling Polarizes an Early C. elegans Blastomere to Distinguish Endoderm from Mesoderm , 1997, Cell.
[25] C. Hunter,et al. Spatial and Temporal Controls Target pal-1 Blastomere-Specification Activity to a Single Blastomere Lineage in C. elegans Embryos , 1996, Cell.
[26] A. Fire,et al. Body-wall muscle formation in Caenorhabditis elegans embryos that lack the MyoD homolog hlh-1. , 1992, Science.
[27] J. Sulston,et al. The embryonic cell lineage of the nematode Caenorhabditis elegans. , 1983, Developmental biology.
[28] B. Goldstein,et al. Culture and manipulation of embryonic cells. , 2012, Methods in cell biology.
[29] Geoffrey E. Hinton,et al. Visualizing Data using t-SNE , 2008 .
[30] Lewis Wolpert,et al. Principles of Development , 1997 .
[31] E. Schierenberg,et al. Cell lineages of the embryo of the nematode Caenorhabditis elegans. , 1978, Proceedings of the National Academy of Sciences of the United States of America.