Epigenetic regulation-The guardian of cellular homeostasis and lineage commitment

被引:2
作者
Govarthanan, Kavitha [1 ]
Gupta, Piyush Kumar [2 ]
Zipporahe, Binita [1 ]
Gahtori, Rekha [3 ]
Pandit, Soumya [2 ]
Prasad, Ram [4 ]
机构
[1] Indian Inst Technol Madras, Dept Biotechnol, Chennai 600036, Tamil Nadu, India
[2] Sharda Univ, Dept Life Sci, Greater Noida 201310, Uttar Pradesh, India
[3] Kumaun Univ, Dept Biotechnol, Campus Bhimtal, Naini Tal 263136, Uttarakhand, India
[4] Mahatma Gandhi Cent Univ, Dept Bot, Motihari 845401, Bihar, India
关键词
Epigenetics; Chromatin Genome; Methylation; Inheritance; Modulation; CANCER STEM-CELLS; CHROMATIN REMODELING COMPLEX; DNA METHYLATION PATTERNS; POLYCOMB GROUP PROTEIN; GENE PROMOTER REGIONS; MARROW STROMAL CELLS; SELF-RENEWAL; OSTEOGENIC DIFFERENTIATION; METHYLTRANSFERASE ACTIVITY; HEPATIC DIFFERENTIATION;
D O I
10.32604/biocell.2021.014441
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Stem cells constitute the source of cells that replenishes the worn out or damaged cells in our tissue and enable the tissue to carry out the destined function. Tissue-specific stem cells are compartmentalized in a niche, which keeps the stem cells under quiescent condition. Thus, understanding the molecular events driving the successful differentiation of stem cells into several lineages is essential for its better manipulation of human applications. Given the developmental aspects of the cell, the cellular function is greatly dependent on the epigenomics signature that in turn governs the expression profile of the cell. The stable inheritance of the epigenome is crucial for the development, modulation, and maintenance of the cell and its complex tissue-specific function. Emerging evidence suggesting that stem cell chromatin comprises a specialized state in which self-renewing genes and its downstream lineage-specific genes are kept paralleled poised for activation. Thus, the epigenetic regulatory network and pathway dictate lineage commitment and differentiation. It mainly modifies the chromatin landscape to facilitate euchromatin and heterochromatin architecture, which in turn alters the accessibility of transcription factors to the gene loci. DNA methylation and histone marks are the two widely studied epigenetic modifications regulating the transcriptome profile of a specific lineage. Abnormalities in the epigenetic landscape lead to diseases or disorders. Here, we emphasize the prominence of the epigenetic network and its regulation in normal tissue functioning and in the diseased state. Furthermore, we highlighted the emerging role of epigenetic modifiers in lineage differentiation and epigenetic markers as novel druggable targets for cancer therapy.
引用
收藏
页码:501 / 515
页数:15
相关论文
共 50 条
[41]   Epigenetic regulation of the lineage specificity of primary human dermal lymphatic and blood vascular endothelial cells [J].
Carlotta Tacconi ;
Yuliang He ;
Luca Ducoli ;
Michael Detmar .
Angiogenesis, 2021, 24 :67-82
[42]   Epigenetic regulation of the lineage specificity of primary human dermal lymphatic and blood vascular endothelial cells [J].
Tacconi, Carlotta ;
He, Yuliang ;
Ducoli, Luca ;
Detmar, Michael .
ANGIOGENESIS, 2021, 24 (01) :67-82
[43]   Nicotinamide N-methyltransferase: At the crossroads between cellular metabolism and epigenetic regulation [J].
Roberti, Annalisa ;
Fernandez, Agustin F. ;
Fraga, Mario F. .
MOLECULAR METABOLISM, 2021, 45
[44]   New Insights in CaVβ Subunits: Role in the Regulation of Gene Expression and Cellular Homeostasis [J].
Vergnol, Amelie ;
Traore, Massire ;
Pietri-Rouxel, France ;
Falcone, Sestina .
FRONTIERS IN CELL AND DEVELOPMENTAL BIOLOGY, 2022, 10
[45]   Epigenetic regulation of intracellular branched-chain amino acid homeostasis maintains a normal lifespan [J].
Park, Sejung ;
Liu, Yan ;
Lim, Suji ;
Ryu, Hong-Yeoul ;
Ahn, Seong Hoon .
ISCIENCE, 2025, 28 (07)
[46]   Epigenetic regulation of human FOXP3+Tregs: from homeostasis maintenance to pathogen defense [J].
Yue, Yi ;
Ren, Yuqing ;
Lu, Chunya ;
Li, Ping ;
Zhang, Guojun .
FRONTIERS IN IMMUNOLOGY, 2024, 15
[47]   Variations in the epigenetic regulation of lineage-specific genes among human pluripotent stem cell lines [J].
Kim, Hyemin ;
Kim, Dongkyu ;
Jang, Mi-Jin ;
Han, Yong-Mahn .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2012, 424 (02) :331-337
[48]   Genetic and Epigenetic Control of CDKN1C Expression: Importance in Cell Commitment and Differentiation, Tissue Homeostasis and Human Diseases [J].
Stampone, Emanuela ;
Caldarelli, Ilaria ;
Zullo, Alberto ;
Bencivenga, Debora ;
Mancini, Francesco Paolo ;
Della Ragione, Fulvio ;
Borriello, Adriana .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2018, 19 (04)
[49]   Setd1a and NURF mediate chromatin dynamics and gene regulation during erythroid lineage commitment and differentiation [J].
Li, Ying ;
Schulz, Vincent P. ;
Deng, Changwang ;
Li, Guangyao ;
Shen, Yong ;
Tusi, Betsabeh K. ;
Ma, Gina ;
Stees, Jared ;
Qiu, Yi ;
Steiner, Laurie A. ;
Zhou, Lei ;
Zhao, Keji ;
Bungert, Jorg ;
Gallagher, Patrick G. ;
Huang, Suming .
NUCLEIC ACIDS RESEARCH, 2016, 44 (15) :7173-7188
[50]   Epigenetic modifiers influence lineage commitment of human bone marrow stromal cells: Differential effects of 5-aza-deoxycytidine and trichostatin A [J].
El-Serafi, Ahmed T. ;
Oreffo, Richard O. C. ;
Roach, Helmtrud I. .
DIFFERENTIATION, 2011, 81 (01) :35-41