Conversion of Germ Cells to Somatic Cell Types in C. elegans

被引:3
作者
ul Fatima, Nida [1 ,2 ]
Tursun, Baris [1 ,2 ]
机构
[1] Berlin Inst Med Syst Biol, D-10115 Berlin, Germany
[2] Helmholtz Assoc, Max Delbruck Ctr Mol Med, D-13125 Berlin, Germany
关键词
germline; germ cell; reprogramming; C; elegans; epigenetics; chromatin; CAENORHABDITIS-ELEGANS; CHROMODOMAIN PROTEIN; COMPLEX; MRG-1; DIFFERENTIATION; INITIATE; PROMOTES; FAMILY; SPT16; MRG15;
D O I
10.3390/jdb8040024
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The potential of a cell to produce all types of differentiated cells in an organism is termed totipotency. Totipotency is an essential property of germ cells, which constitute the germline and pass on the parental genetic material to the progeny. The potential of germ cells to give rise to a whole organism has been the subject of intense research for decades and remains important in order to better understand the molecular mechanisms underlying totipotency. A better understanding of the principles of totipotency in germ cells could also help to generate this potential in somatic cell lineages. Strategies such as transcription factor-mediated reprogramming of differentiated cells to stem cell-like states could benefit from this knowledge. Ensuring pluripotency or even totipotency of reprogrammed stem cells are critical improvements for future regenerative medicine applications. The C. elegans germline provides a unique possibility to study molecular mechanisms that maintain totipotency and the germ cell fate with its unique property of giving rise to meiotic cells Studies that focused on these aspects led to the identification of prominent chromatin-repressing factors such as the C. elegans members of the Polycomb Repressive Complex 2 (PRC2). In this review, we summarize different factors that were recently identified, which use molecular mechanisms such as control of protein translation or chromatin repression to ensure maintenance of totipotency and the germline fate. Additionally, we focus on recently identified factors involved in preventing transcription-factor-mediated conversion of germ cells to somatic lineages. These so-called reprogramming barriers have been shown in some instances to be conserved with regard to their function as a cell fate safeguarding factor in mammals. Overall, continued studies assessing the different aspects of molecular pathways involved in maintaining the germ cell fate in C. elegans may provide more insight into cell fate safeguarding mechanisms also in other species.
引用
收藏
页码:1 / 12
页数:12
相关论文
共 41 条
[1]   Sequential Establishment of Marks on Soluble Histones H3 and H4 [J].
Alvarez, Francisca ;
Munoz, Francisca ;
Schilcher, Pierre ;
Imhof, Axel ;
Almouzni, Genevieve ;
Loyola, Alejandra .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2011, 286 (20) :17714-17721
[2]  
Berry LW, 1997, DEVELOPMENT, V124, P925
[3]   Physical and functional interaction between SET1/COMPASS complex component CFP-1 and a Sin3S HDAC complex in C. elegans [J].
Beurton, Fiore ;
Stempor, Przemyslaw ;
Caron, Matthieu ;
Appert, Alex ;
Dong, Yan ;
Chen, Ron A-J ;
Cluet, David ;
Coute, Yohann ;
Herbette, Marion ;
Huang, Ni ;
Polveche, Helene ;
Spichty, Martin ;
Bedet, Cecile ;
Ahringer, Julie ;
Palladino, Francesca .
NUCLEIC ACIDS RESEARCH, 2019, 47 (21) :11164-11180
[4]   A nuclear Argonaute promotes multigenerational epigenetic inheritance and germline immortality [J].
Buckley, Bethany A. ;
Burkhart, Kirk B. ;
Gu, Sam Guoping ;
Spracklin, George ;
Kershner, Aaron ;
Fritz, Heidi ;
Kimble, Judith ;
Fire, Andrew ;
Kennedy, Scott .
NATURE, 2012, 489 (7416) :447-451
[5]  
Buenrostro Jason D, 2015, Curr Protoc Mol Biol, V109, DOI 10.1002/0471142727.mb2129s109
[6]   The histone chaperone CAF-1 safeguards somatic cell identity [J].
Cheloufi, Sihem ;
Elling, Ulrich ;
Hopfgartner, Barbara ;
Jung, Youngsook L. ;
Murn, Jernej ;
Ninova, Maria ;
Hubmann, Maria ;
Badeaux, Aimee I. ;
Ang, Cheen Euong ;
Tenen, Danielle ;
Wesche, Daniel J. ;
Abazova, Nadezhda ;
Hogue, Max ;
Tasdemir, Nilgun ;
Brumbaugh, Justin ;
Rathert, Philipp ;
Jude, Julian ;
Ferrari, Francesco ;
Blanco, Andres ;
Fellner, Michaela ;
Wenzel, Daniel ;
Zinner, Marietta ;
Vidal, Simon E. ;
Bell, Oliver ;
Stadtfeld, Matthias ;
Chang, Howard Y. ;
Almouzni, Genevieve ;
Lowe, Scott W. ;
Rinn, John ;
Wernig, Marius ;
Aravin, Alexei ;
Shi, Yang ;
Park, Peter J. ;
Penninger, Josef M. ;
Zuber, Johannes ;
Hochedlinger, Konrad .
NATURE, 2015, 528 (7581) :218-+
[7]   Translational regulators maintain totipotency in the Caenorhabditis elegans germline [J].
Ciosk, R ;
DePalma, M ;
Priess, JR .
SCIENCE, 2006, 311 (5762) :851-853
[8]   The molecular signature and cis-regulatory architecture of a C-elegans gustatory neuron [J].
Etchberger, John F. ;
Lorch, Adam ;
Sleumer, Monica C. ;
Zapf, Richard ;
Jones, Steven J. ;
Marra, Marco A. ;
Holt, Robert A. ;
Moerman, Donald G. ;
Hobert, Oliver .
GENES & DEVELOPMENT, 2007, 21 (13) :1653-1674
[9]   MRG-1, a mortality factor-related chromodomain protein, is required maternally for primordial germ cells to initiate mitotic proliferation in C-elegans [J].
Fujita, M ;
Takasaki, T ;
Nakajima, N ;
Kawano, T ;
Shimura, Y ;
Sakamoto, H .
MECHANISMS OF DEVELOPMENT, 2002, 114 (1-2) :61-69
[10]   A critical perspective of the diverse roles of O-GlcNAc transferase in chromatin [J].
Gambetta, Maria Cristina ;
Mueller, Juerg .
CHROMOSOMA, 2015, 124 (04) :429-442