4.5 Article

Latent process genes for cell differentiation are common decoders of neurite extension length

Journal

JOURNAL OF CELL SCIENCE
Volume 125, Issue 9, Pages 2198-2211

Publisher

COMPANY OF BIOLOGISTS LTD
DOI: 10.1242/jcs.097709

Keywords

Cell differentiation; ERK; Gene expression; Neurite extension; Neurotrophic factor

Categories

Funding

  1. Japanese Science and Technology Agency (JST)
  2. Ministry of Education, Culture, Sports, Science and Technology of Japan [21240025]
  3. Grants-in-Aid for Scientific Research [20227006, 21240025] Funding Source: KAKEN

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A latent process involving signal transduction and gene expression is needed as a preparation step for cellular function. We previously found that nerve growth factor (NGF)-induced cell differentiation has a latent process, which is dependent on ERK activity and gene expression and required for subsequent neurite extension. A latent process can be considered as a preparation step that decodes extracellular stimulus information into cellular functions; however, molecular mechanisms of this process remain unknown. We identified Metrnl, Dclk1 and Serpinb1a as genes that are induced during the latent process (LP) with distinct temporal expression profiles and are required for subsequent neurite extension in PC12 cells. The LP genes showed distinct dependency on the duration of ERK activity, and they were also induced during the latent process of PACAP-and forskolin-induced cell differentiation. Regardless of neurotrophic factors, expression levels of the LP genes during the latent process (0-12 hours), but not phosphorylation levels of ERK, always correlated with subsequent neurite extension length (12-24 hours). Overexpression of all LP genes together, but not of each gene separately, enhanced NGF-induced neurite extension. The LP gene products showed distinct spatial localization. Thus, the LP genes appear to be the common decoders for neurite extension length regardless of neurotrophic factors, and they might function in distinct temporal and spatial manners during the latent process. Our findings provide molecular insight into the physiological meaning of the latent process as the preparation step for decoding information for future phenotypic change.

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