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Chemical genetic-based phenotypic screen reveals novel regulators of gluconeogenesis in human primary hepatocytes.
Zou, Haixia; Liu, Qian; Meng, Li; Zhou, Jingye; Da, Chenxiao; Wu, Xikun; Jiang, Lichun; Shou, Jianyong; Hua, Haiqing.
Afiliación
  • Zou H; Lilly China Research and Development Center (LCRDC), Eli Lilly & Company, Shanghai, China.
  • Liu Q; Lilly China Research and Development Center (LCRDC), Eli Lilly & Company, Shanghai, China.
  • Meng L; Lilly China Research and Development Center (LCRDC), Eli Lilly & Company, Shanghai, China.
  • Zhou J; Lilly China Research and Development Center (LCRDC), Eli Lilly & Company, Shanghai, China.
  • Da C; Lilly China Research and Development Center (LCRDC), Eli Lilly & Company, Shanghai, China.
  • Wu X; Lilly China Research and Development Center (LCRDC), Eli Lilly & Company, Shanghai, China.
  • Jiang L; Lilly China Research and Development Center (LCRDC), Eli Lilly & Company, Shanghai, China.
  • Shou J; Lilly China Research and Development Center (LCRDC), Eli Lilly & Company, Shanghai, China.
  • Hua H; Lilly China Research and Development Center (LCRDC), Eli Lilly & Company, Shanghai, China.
NPJ Genom Med ; 3: 20, 2018.
Article en En | MEDLINE | ID: mdl-30131871
Insulin resistance is a pathophysiological hallmark of type 2 diabetes and nonalcoholic fatty liver disease. Under the condition of fat accumulation in the liver, suppression of hepatic glucose production by insulin is diminished. In order to gain deeper understanding of dysregulation of glucose production in metabolic diseases, in the present study, we performed an unbiased phenotypic screening in primary human hepatocytes to discover novel mechanisms that regulate gluconeogenesis in the presence of insulin. To optimize phenotypic screening process, we used a chemical genetic screening approach by building a small-molecule library with prior knowledge of activity-based protein profiling. The "positive hits" result from the screen will be small molecules with known protein targets. This makes downstream deconvolution process (i.e., determining the relevant biological targets) less time-consuming. To unbiasedly decipher the molecular targets, we developed a novel statistical method and discovered a set of genes, including DDR3 and CACNA1E that suppressed gluconeogenesis in human hepatocytes. Further investigation, including transcriptional profiling and gene network analysis, was performed to understand the molecular functions of DRD3 and CACNA1E in human hepatocytes.

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: NPJ Genom Med Año: 2018 Tipo del documento: Article País de afiliación: China Pais de publicación: Reino Unido

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: NPJ Genom Med Año: 2018 Tipo del documento: Article País de afiliación: China Pais de publicación: Reino Unido