YTH domain-containing family protein 2
Definition:
References:
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[1]. Ryan J Ries, et al. m6A enhances the phase separation potential of mRNA. Nature. 2019 Jul;571(7765):424-428. [Content Brief]
[2]. Ye Fu, et al. m6A-binding YTHDF proteins promote stress granule formation. Nat Chem Biol. 2020 Sep;16(9):955-963. [Content Brief]
[3]. Yifei Gao, et al. Multivalent m6A motifs promote phase separation of YTHDF proteins. Cell Res. 2019 Sep;29(9):767-769. [Content Brief]
[4]. Jiahua Wang, et al. Binding to m6A RNA promotes YTHDF2-mediated phase separation. Protein Cell. 2020 Apr;11(4):304-307. [Content Brief]
[5]. Xiao Wang, et al. N(6)-methyladenosine Modulates Messenger RNA Translation Efficiency. Cell. 2015 Jun 4;161(6):1388-99. [Content Brief]
[6]. Xiao Wang, et al. N6-methyladenosine-dependent regulation of messenger RNA stability. Nature. 2014 Jan 2;505(7481):117-20. [Content Brief]
[7]. Qili Fei, et al. YTHDF2 promotes mitotic entry and is regulated by cell cycle mediators. PLoS Biol. 2020 Apr 8;18(4):e3000664. [Content Brief]
[8]. Zhenrui Li, et al. Suppression of m6A reader Ythdf2 promotes hematopoietic stem cell expansion. Cell Res. 2018 Sep;28(9):904-917. [Content Brief]
[9]. Hailing Shi, et al. YTHDF3 facilitates translation and decay of N6-methyladenosine-modified RNA. Cell Res. 2017 Mar;27(3):315-328. [Content Brief]
[10]. Dan Dominissini, et al. Topology of the human and mouse m6A RNA methylomes revealed by m6A-seq. Nature. 2012 Apr 29;485(7397):201-6. [Content Brief]
[11]. Ok Hyun Park, et al. Endoribonucleolytic Cleavage of m6A-Containing RNAs by RNase P/MRP Complex. Mol Cell. 2019 May 2;74(3):494-507.e8. [Content Brief]
[12]. Jun Zhou, et al. Dynamic m(6)A mRNA methylation directs translational control of heat shock response. Nature. 2015 Oct 22;526(7574):591-4. [Content Brief]
[13]. Sara Zaccara, et al. A Unified Model for the Function of YTHDF Proteins in Regulating m6A-Modified mRNA. Cell. 2020 Jun 25;181(7):1582-1595.e18. [Content Brief]
[14]. Xiaoxia Dai, et al. YTHDF2 Binds to 5-Methylcytosine in RNA and Modulates the Maturation of Ribosomal RNA. Anal Chem. 2020 Jan 7;92(1):1346-1354. [Content Brief]
[15]. Hao Du, et al. YTHDF2 destabilizes m(6)A-containing RNA through direct recruitment of the CCR4-NOT deadenylase complex. Nat Commun. 2016 Aug 25;7:12626. [Content Brief]
[16]. Kevin Tsai, et al. Addition of m6A to SV40 late mRNAs enhances viral structural gene expression and replication. PLoS Pathog. 2018 Feb 15;14(2):e1006919. [Content Brief]
[17]. Xiang Zhong, et al. Circadian Clock Regulation of Hepatic Lipid Metabolism by Modulation of m6A mRNA Methylation. Cell Rep. 2018 Nov 13;25(7):1816-1828.e4. [Content Brief]
[18]. Roni Winkler, et al. m6A modification controls the innate immune response to infection by targeting type I interferons. Nat Immunol. 2019 Feb;20(2):173-182. [Content Brief]
[19]. Tingting Zhu, et al. Crystal structure of the YTH domain of YTHDF2 reveals mechanism for recognition of N6-methyladenosine. Cell Res. 2014 Dec;24(12):1493-6. [Content Brief]
[20]. Adam M Heck, et al. YTHDF2 destabilizes m6A-modified neural-specific RNAs to restrain differentiation in induced pluripotent stem cells. RNA. 2020 Jun;26(6):739-755. [Content Brief]
[21]. Fudong Li, et al. Structure of the YTH domain of human YTHDF2 in complex with an m(6)A mononucleotide reveals an aromatic cage for m(6)A recognition. Cell Res. 2014 Dec;24(12):1490-2. [Content Brief]
[22]. Chao Xu, et al. Structural Basis for the Discriminative Recognition of N6-Methyladenosine RNA by the Human YT521-B Homology Domain Family of Proteins. J Biol Chem. 2015 Oct 9;290(41):24902-13. [Content Brief]
[23]. Charles R Hesser, et al. N6-methyladenosine modification and the YTHDF2 reader protein play cell type specific roles in lytic viral gene expression during Kaposi's sarcoma-associated herpesvirus infection. PLoS Pathog. 2018 Apr 16;14(4):e1006995. [Content Brief]