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PUBMED FOR HANDHELDS

Journal Abstract Search


330 related items for PubMed ID: 19934017

  • 41. Overexpression of Smad2 in Tgf-beta3-null mutant mice rescues cleft palate.
    Cui XM, Shiomi N, Chen J, Saito T, Yamamoto T, Ito Y, Bringas P, Chai Y, Shuler CF.
    Dev Biol; 2005 Feb 01; 278(1):193-202. PubMed ID: 15649471
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  • 43. A unique mouse strain expressing Cre recombinase for tissue-specific analysis of gene function in palate and kidney development.
    Lan Y, Wang Q, Ovitt CE, Jiang R.
    Genesis; 2007 Oct 01; 45(10):618-24. PubMed ID: 17941042
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  • 47. Foxf2 is required for secondary palate development and Tgfβ signaling in palatal shelf mesenchyme.
    Nik AM, Johansson JA, Ghiami M, Reyahi A, Carlsson P.
    Dev Biol; 2016 Jul 01; 415(1):14-23. PubMed ID: 27180663
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  • 48. Genome-wide Identification of Foxf2 Target Genes in Palate Development.
    Xu J, Liu H, Lan Y, Park JS, Jiang R.
    J Dent Res; 2020 Apr 01; 99(4):463-471. PubMed ID: 32040930
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  • 49. Systematic analysis of palatal transcriptome to identify cleft palate genes within TGFβ3-knockout mice alleles: RNA-Seq analysis of TGFβ3 Mice.
    Ozturk F, Li Y, Zhu X, Guda C, Nawshad A.
    BMC Genomics; 2013 Feb 20; 14():113. PubMed ID: 23421592
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  • 52. Rescue of an in vitro palate nonfusion model using interposed embryonic mesenchyme.
    Erfani S, Maldonado TS, Crisera CA, Warren SM, Peled ZM, Longaker MT.
    Plast Reconstr Surg; 2002 Jun 20; 109(7):2363-72. PubMed ID: 12045564
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  • 58. Msx1 Heterozygosity in Mice Enhances Susceptibility to Phenytoin-Induced Hypoxic Stress Causing Cleft Palate.
    Park J, Nakatomi M, Sasaguri M, Habu M, Takahashi O, Yoshiga D, Matsuyama K, Kataoka S, Toyono T, Seta Y, Peters H, Tominaga K.
    Cleft Palate Craniofac J; 2021 Jun 20; 58(6):697-706. PubMed ID: 34047208
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