CYBERMED LIFE - ORGANIC  & NATURAL LIVING

Epigenetic Modification

  • The epigenetic role of vitamin C in health and disease. 📎

    Abstract Title:

    The epigenetic role of vitamin C in health and disease.

    Abstract Source:

    Cell Mol Life Sci. 2016 Apr ;73(8):1645-58. Epub 2016 Aug 4. PMID: 26846695

    Abstract Author(s):

    Vladimir Camarena, Gaofeng Wang

    Article Affiliation:

    Vladimir Camarena

    Abstract:

    Recent advances have uncovered a previously unknown function of vitamin C in epigenetic regulation. Vitamin C exists predominantly as an ascorbate anion under physiological pH conditions. Ascorbate was discovered as a cofactor for methylcytosine dioxygenases that are responsible for DNA demethylation, and also as a likely cofactor for some JmjC domain-containing histone demethylases that catalyze histone demethylation. Variation in ascorbate bioavailability thus can influence the demethylation of both DNA and histone, further leading to different phenotypic presentations. Ascorbate deficiency can be presented systematically, spatially and temporally in different tissues at the different stages of development and aging. Here, we review how ascorbate deficiency could potentially be involved in embryonic and postnatal development, and plays a role in various diseases such as neurodegeneration and cancer through epigenetic dysregulation.

  • The Roles and Mechanisms of Actions of Vitamin C in Bone: New Developments. 📎

    Abstract Title:

    The Roles and Mechanisms of Actions of Vitamin C in Bone: New Developments.

    Abstract Source:

    J Bone Miner Res. 2015 Sep 11. Epub 2015 Sep 11. PMID: 26358868

    Abstract Author(s):

    Patrick Aghajanian, Susan Hall, Montri D Wongworawat, Subburaman Mohan

    Article Affiliation:

    Patrick Aghajanian

    Abstract:

    Vitamin C is an important antioxidant and cofactor which is involved in the regulation of development, function and maintenance of several cell types in the body. Deficiencies in vitamin C can lead to conditions such as scurvy, which, among other ailments, causes gingivia, bone pain and impaired wound healing. This review examines the functional importance of vitamin C as it relates to the development and maintenance of bone tissues. Analysis of several epidemiological studies and genetic mouse models regarding the effect of vitamin C shows a positive effect on bone health. Overall, vitamin C exerts a positive effect on trabecular bone formation by influencing expression of bone matrix genes in osteoblasts. Recent studies on the molecular pathway for vitamin C actions that include direct effects of vitamin C on transcriptional regulation of target genes by influencing the activity of transcription factors and by epigenetic modification of key genes involved in skeletal development and maintenance are discussed. With an understanding of mechanisms involved in the uptake and metabolism of vitamin C and knowledge of precise molecular pathways for vitamin C actions in bone cells, it is possible that novel therapeutic strategies can be developed or existing therapies can be modified for the treatment of osteoporotic fractures. This article is protected by copyright. All rights reserved.

  • Uptake of ascorbic acid by pancreatic acinar cells is negatively impacted by chronic alcohol exposure. 📎

    Abstract Title:

    Uptake of ascorbic acid by pancreatic acinar cells is negatively impacted by chronic alcohol exposure.

    Abstract Source:

    Am J Physiol Cell Physiol. 2016 Jul 1 ;311(1):C129-35. Epub 2016 Apr 27. PMID: 27122159

    Abstract Author(s):

    Veedamali S Subramanian, Padmanabhan Srinivasan, Hamid M Said

    Article Affiliation:

    Veedamali S Subramanian

    Abstract:

    Vitamin C (ascorbic acid, AA) is indispensable for normal metabolism of all mammalian cells including pancreatic acinar cells (PACs). PACs obtain AA from their surroundings via transport across the cell membrane. Chronic alcohol exposure negatively affects body AA homeostasis; it also inhibits uptake of other micronutrients into PACs, but its effect on AA uptake is not clear. We examined this issue using both in vitro (266-6 cells) and in vivo (mice) models of chronic alcohol exposure. First, we determined the relative expression of the AA transporters 1 and 2 [i.e., sodium-dependent vitamin C transporter-1 (SVCT-1) and SVCT-2] in mouse and human PACs and found SVCT-2 to be the predominant transporter. Chronic exposure of 266-6 cells to alcohol significantly inhibited AA uptake and caused a marked reduction in SVCT-2 expression at the protein, mRNA, and heterogeneous nuclear RNA (hnRNA) levels. Similarly, chronic alcohol feeding of mice significantly inhibited AA uptake and caused a marked reduction in level of expression of the SVCT-2 protein, mRNA, and hnRNA. These findings suggest possible involvement of transcriptional mechanism(s) in mediating chronic alcohol effect on AA uptake by PACs. We also observed significant epigenetic changes (histone modifications) in the Slc23a2 gene (reduction in H3K4me3 level and an increase in H3K27me3 level) in the alcohol-exposed 266-6 cells. These findings show that chronic alcohol exposure inhibits PAC AA uptake and that the effect is mediated, in part, at the level of transcription of the Slc23a2 gene and may involve epigenetic mechanism(s).

  • Vitamin C facilitates dopamine neuron differentiation in fetal midbrain through TET1- and JMJD3-dependent epigenetic control manner. 📎

    Abstract Title:

    Vitamin C facilitates dopamine neuron differentiation in fetal midbrain through TET1- and JMJD3-dependent epigenetic control manner.

    Abstract Source:

    Stem Cells. 2015 Apr ;33(4):1320-32. PMID: 25535150

    Abstract Author(s):

    Xi-Biao He, Mirang Kim, Seon-Young Kim, Sang-Hoon Yi, Yong-Hee Rhee, Taeho Kim, Eun-Hye Lee, Chang-Hwan Park, Shilpy Dixit, Fiona E Harrison, Sang-Hun Lee

    Article Affiliation:

    Xi-Biao He

    Abstract:

    Intracellular Vitamin C (VC) is maintained at high levels in the developing brain by the activity of sodium-dependent VC transporter 2 (Svct2), suggesting specific VC functions in brain development. A role of VC as a cofactor for Fe(II)-2-oxoglutarate-dependent dioxygenases has recently been suggested. We show that VC supplementation in neural stem cell cultures derived from embryonic midbrains greatly enhanced differentiation toward midbrain-type dopamine (mDA) neurons, the neuronal subtype associated with Parkinson's disease. VC induced gain of 5-hydroxymethylcytosine (5hmC) and loss of H3K27m3 in DA phenotype gene promoters, which are catalyzed by Tet1 and Jmjd3, respectively. Consequently, VC enhanced DA phenotype gene transcriptions in the progenitors by Nurr1, a transcription factor critical for mDA neuron development, to be more accessible to the gene promoters. Further mechanism studies including Tet1 and Jmjd3 knockdown/inhibition experiments revealed that both the 5hmC and H3K27m3 changes, specifically in the progenitor cells, are indispensible for the VC-mediated mDA neuron differentiation. We finally show that in Svct2 knockout mouse embryos, mDA neuron formation in the developing midbrain decreased along with the 5hmC/H3k27m3 changes. These findings together indicate an epigenetic role of VC in midbrain DA neuron development.

  • Vitamin C promotes pluripotency of human induced pluripotent stem cells via the histone demethylase JARID1A.

    Abstract Title:

    Vitamin C promotes pluripotency of human induced pluripotent stem cells via the histone demethylase JARID1A.

    Abstract Source:

    Biol Chem. 2016 Jun 25. Epub 2016 Jun 25. PMID: 27343473

    Abstract Author(s):

    Wassim Eid, Wafaa Abdel-Rehim

    Article Affiliation:

    Wassim Eid

    Abstract:

    Somatic cells can be reprogrammed into induced pluripotent stem (iPS) cells by defined factors, which provide a powerful basis for personalized stem-cell based therapies. However, cellular reprogramming is an inefficient and metabolically demanding process commonly associated with obstacles that hamper further use of this technology. Spontaneous differentiation of iPS cells cultures represents a significant hurdle that hinder obtaining high quality iPS cells for further downstream experimentation. In this study, we found that a natural compound, vitamin C, augmented pluripotency in iPS cells and reduced unwanted spontaneous differentiation during iPS cells maintenance. Gene expression analysis showed that Vitamin C increased the expression of the histone demethylase JARID1A. Furthermore, through gain- and loss-of-function approaches, we show that JARID1A is a key effector in promoting pluripotency and reducing differentiation downstream of vitamin C. Our results therefore highlight a straightforward method for improving the pluripotency and quality of iPS cells; it also shows a possible role for H3K4me2/3 in cell fate determination and establishes a link between vitamin C and epigenetic regulation.

We use cookies on our website. Some of them are essential for the operation of the site, while others help us to improve this site and the user experience (tracking cookies). You can decide for yourself whether you want to allow cookies or not. Please note that if you reject them, you may not be able to use all the functionalities of the site.