Curcumin Induces Neural Differentiation of Human Pluripotent Embryonal Carcinoma Cells through the Activation of Autophagy.
Nudjanad HeebkaewNarawadee RujanapunPhongsakorn KunhormThiranut JaroonwitchawanNipha ChaicharoenaudomrungWilasinee PromjantuekParinya NoisaPublished in: BioMed research international (2019)
Curcumin is a natural polyphenolic compound, isolated from Curcuma longa, and is an important ingredient of Asian foods. Curcumin has revealed its strong activities of anti-inflammatory, antioxidant, and anticancer. The efficient amount of curcumin could induce differentiation of stem cells and promoted the differentiation of glioma-initiating cells; however, the mechanisms underlying neural induction of curcumin have not yet been revealed. In this study, neural-inducing ability of curcumin was explored by using human pluripotent embryonal carcinoma cells, NTERA2 cells. The cells were induced toward neural lineage with curcumin and were compared with a standard neutralizing agent (retinoic acid). It was found that, after 14 days of the induction by curcumin, NTERA2 cells showed neuronal morphology and expressed neural-specific genes, including NeuroD, TUJ1, and PAX6. Importantly, curcumin activated neurogenesis of NTERA2 cells via the activation of autophagy, since autophagy-related genes, such as LC3, LAMP1, and ATG5, were upregulated along with the expression of neural genes. The inhibition of autophagy by chloroquine suppressed both autophagy and neural differentiation, highlighting the positive role of autophagy during neural differentiation. This autophagy-mediated neural differentiation of curcumin was found to be an ROS-dependent manner; curcumin induced ROS generation and suppressed antioxidant gene expression. Altogether, this study proposed the neural-inducing activity of curcumin via the regulation of autophagy within NTERA2 cells and underscored the health beneficial effects of curcumin for neurodegenerative disorders, such as Alzheimer's disease and Parkinson's disease.
Keyphrases
- induced apoptosis
- cell death
- endoplasmic reticulum stress
- cell cycle arrest
- oxidative stress
- signaling pathway
- gene expression
- stem cells
- endothelial cells
- anti inflammatory
- healthcare
- public health
- dna damage
- dna methylation
- single cell
- bone marrow
- mental health
- high glucose
- risk assessment
- reactive oxygen species
- blood brain barrier
- cognitive decline
- high resolution
- mild cognitive impairment
- long non coding rna
- simultaneous determination
- quantum dots
- tandem mass spectrometry
- genome wide identification
- health promotion