TY - JOUR
T1 - Functional role of Tet-mediated RNA hydroxymethylcytosine in mouse ES cells and during differentiation
AU - Lan, Jie
AU - Rajan, Nicholas
AU - Bizet, Martin
AU - Penning, Audrey
AU - Singh, Nitesh K.
AU - Guallar, Diana
AU - Calonne, Emilie
AU - Li Greci, Andrea
AU - Bonvin, Elise
AU - Deplus, Rachel
AU - Hsu, Phillip J.
AU - Nachtergaele, Sigrid
AU - Ma, Chengjie
AU - Song, Renhua
AU - Fuentes-Iglesias, Alejandro
AU - Hassabi, Bouchra
AU - Putmans, Pascale
AU - Mies, Frédérique
AU - Menschaert, Gerben
AU - Wong, Justin J.L.
AU - Wang, Jianlong
AU - Fidalgo, Miguel
AU - Yuan, Bifeng
AU - Fuks, François
N1 - Publisher Copyright:
© 2020, The Author(s).
PY - 2020/12/1
Y1 - 2020/12/1
N2 - Tet-enzyme-mediated 5-hydroxymethylation of cytosines in DNA plays a crucial role in mouse embryonic stem cells (ESCs). In RNA also, 5-hydroxymethylcytosine (5hmC) has recently been evidenced, but its physiological roles are still largely unknown. Here we show the contribution and function of this mark in mouse ESCs and differentiating embryoid bodies. Transcriptome-wide mapping in ESCs reveals hundreds of messenger RNAs marked by 5hmC at sites characterized by a defined unique consensus sequence and particular features. During differentiation a large number of transcripts, including many encoding key pluripotency-related factors (such as Eed and Jarid2), show decreased cytosine hydroxymethylation. Using Tet-knockout ESCs, we find Tet enzymes to be partly responsible for deposition of 5hmC in mRNA. A transcriptome-wide search further reveals mRNA targets to which Tet1 and Tet2 bind, at sites showing a topology similar to that of 5hmC sites. Tet-mediated RNA hydroxymethylation is found to reduce the stability of crucial pluripotency-promoting transcripts. We propose that RNA cytosine 5-hydroxymethylation by Tets is a mark of transcriptome flexibility, inextricably linked to the balance between pluripotency and lineage commitment.
AB - Tet-enzyme-mediated 5-hydroxymethylation of cytosines in DNA plays a crucial role in mouse embryonic stem cells (ESCs). In RNA also, 5-hydroxymethylcytosine (5hmC) has recently been evidenced, but its physiological roles are still largely unknown. Here we show the contribution and function of this mark in mouse ESCs and differentiating embryoid bodies. Transcriptome-wide mapping in ESCs reveals hundreds of messenger RNAs marked by 5hmC at sites characterized by a defined unique consensus sequence and particular features. During differentiation a large number of transcripts, including many encoding key pluripotency-related factors (such as Eed and Jarid2), show decreased cytosine hydroxymethylation. Using Tet-knockout ESCs, we find Tet enzymes to be partly responsible for deposition of 5hmC in mRNA. A transcriptome-wide search further reveals mRNA targets to which Tet1 and Tet2 bind, at sites showing a topology similar to that of 5hmC sites. Tet-mediated RNA hydroxymethylation is found to reduce the stability of crucial pluripotency-promoting transcripts. We propose that RNA cytosine 5-hydroxymethylation by Tets is a mark of transcriptome flexibility, inextricably linked to the balance between pluripotency and lineage commitment.
UR - https://www.scopus.com/pages/publications/85091838922
U2 - 10.1038/s41467-020-18729-6
DO - 10.1038/s41467-020-18729-6
M3 - Article
C2 - 33009383
AN - SCOPUS:85091838922
SN - 2041-1723
VL - 11
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 4956
ER -