embryonal carcinoma cells
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Development ◽  
2021 ◽  
Vol 148 (9) ◽  
Author(s):  
Nicholas J. Webster ◽  
Rebecca L. Maywald ◽  
Susan M. Benton ◽  
Emily P. Dawson ◽  
Oscar D. Murillo ◽  
...  

ABSTRACT In response to signals from the embryonic testis, the germ cell intrinsic factor NANOS2 coordinates a transcriptional program necessary for the differentiation of pluripotent-like primordial germ cells toward a unipotent spermatogonial stem cell fate. Emerging evidence indicates that genetic risk factors contribute to testicular germ cell tumor initiation by disrupting sex-specific differentiation. Here, using the 129.MOLF-Chr19 mouse model of testicular teratomas and a NANOS2 reporter allele, we report that the developmental phenotypes required for tumorigenesis, including failure to enter mitotic arrest, retention of pluripotency and delayed sex-specific differentiation, were exclusive to a subpopulation of germ cells failing to express NANOS2. Single-cell RNA sequencing revealed that embryonic day 15.5 NANOS2-deficient germ cells and embryonal carcinoma cells developed a transcriptional profile enriched for MYC signaling, NODAL signaling and primed pluripotency. Moreover, lineage-tracing experiments demonstrated that embryonal carcinoma cells arose exclusively from germ cells failing to express NANOS2. Our results indicate that NANOS2 is the nexus through which several genetic risk factors influence tumor susceptibility. We propose that, in the absence of sex specification, signals native to the developing testis drive germ cell transformation.


Andrology ◽  
2020 ◽  
Vol 8 (6) ◽  
pp. 1844-1858
Author(s):  
Kasit Chatsirisupachai ◽  
Sarunya Kitdumrongthum ◽  
Wittaya Panvongsa ◽  
Keatdamrong Janpipatkul ◽  
Wittawin Worakitchanon ◽  
...  

RNA Biology ◽  
2020 ◽  
Vol 17 (11) ◽  
pp. 1613-1624
Author(s):  
Charannya Sozheesvari Subhramanyam ◽  
Qiong Cao ◽  
Cheng Wang ◽  
Zealyn Shi Lin Heng ◽  
Zhihong Zhou ◽  
...  

2019 ◽  
Vol 12 (1) ◽  
Author(s):  
Sylvia Garza-Manero ◽  
Abdulmajeed Abdulghani A. Sindi ◽  
Gokula Mohan ◽  
Ohoud Rehbini ◽  
Valentine H. M. Jeantet ◽  
...  

Abstract Background Members of the HMGN protein family modulate chromatin structure and influence epigenetic modifications. HMGN1 and HMGN2 are highly expressed during early development and in the neural stem/progenitor cells of the developing and adult brain. Here, we investigate whether HMGN proteins contribute to the chromatin plasticity and epigenetic regulation that is essential for maintaining pluripotency in stem cells. Results We show that loss of Hmgn1 or Hmgn2 in pluripotent embryonal carcinoma cells leads to increased levels of spontaneous neuronal differentiation. This is accompanied by the loss of pluripotency markers Nanog and Ssea1, and increased expression of the pro-neural transcription factors Neurog1 and Ascl1. Neural stem cells derived from these Hmgn-knockout lines also show increased spontaneous neuronal differentiation and Neurog1 expression. The loss of HMGN2 leads to a global reduction in H3K9 acetylation, and disrupts the profile of H3K4me3, H3K9ac, H3K27ac and H3K122ac at the Nanog and Oct4 loci. At endodermal/mesodermal genes, Hmgn2-knockout cells show a switch from a bivalent to a repressive chromatin configuration. However, at neuronal lineage genes whose expression is increased, no epigenetic changes are observed and their bivalent states are retained following the loss of HMGN2. Conclusions We conclude that HMGN1 and HMGN2 maintain the identity of pluripotent embryonal carcinoma cells by optimising the pluripotency transcription factor network and protecting the cells from precocious differentiation. Our evidence suggests that HMGN2 regulates active and bivalent genes by promoting an epigenetic landscape of active histone modifications at promoters and enhancers.


2019 ◽  
Vol 9 (1) ◽  
Author(s):  
Yaser Atlasi ◽  
Rebecca T. van Dorsten ◽  
Andrea Sacchetti ◽  
Rosalie Joosten ◽  
J. Wolter Oosterhuis ◽  
...  

Author(s):  
Paweł Leszczyński ◽  
Magdalena Śmiech ◽  
Aamir S. Teeli ◽  
Aleksandra Zołocińska ◽  
Anna Słysz ◽  
...  

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