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A highly conserved family of domains related to the DNA-glycosylase fold helps predict multiple novel pathways for RNA modifications
被引:23
作者:
Burroughs, A. Maxwell
[1
]
Aravind, L.
[1
]
机构:
[1] NIH, Natl Ctr Biotechnol Informat, Natl Lib Med, Bethesda, MD 20892 USA
来源:
关键词:
DNA glycosylase;
NEMF;
Tae2;
caliban;
FbpA;
fibronectin-binding;
tRNA;
4-thiouridylation;
IscS;
TusA;
base modification;
FIBRONECTIN-BINDING PROTEIN;
IRES-MEDIATED TRANSLATION;
ESCHERICHIA-COLI;
PSEUDOURIDINE SYNTHASES;
CRYSTAL-STRUCTURE;
GUANINE TRANSGLYCOSYLASE;
CATALYTIC MECHANISM;
TUMOR-SUPPRESSOR;
REPAIR ENZYME;
FPG;
D O I:
10.4161/rna.28302
中图分类号:
Q5 [生物化学];
Q7 [分子生物学];
学科分类号:
071010 ;
081704 ;
摘要:
A protein family including mammalian NEMF, Drosophila caliban, yeast Tae2, and bacterial FpbA-like proteins was first defined over a decade ago and found to be universally distributed across the three domains/superkingdoms of life. Since its initial characterization, this family of proteins has been tantalizingly linked to a wide range of biochemical functions. Tapping the enormous wealth of genome information that has accumulated since the initial characterization of these proteins, we perform a detailed computational analysis of the family, identifying multiple conserved domains. Domains identified include an enzymatic domain related to the formamidopyrimidine (Fpg), MutM, and Nei/EndoVIII family of DNA glycosylases, a novel, predicted RNA-binding domain, and a domain potentially mediating protein-protein interactions. Through this characterization, we predict that the DNA glycosylase-like domain catalytically operates on double-stranded RNA, as part of a hitherto unknown base modification mechanism that probably targets rRNAs. At least in archaea, and possibly eukaryotes, this pathway might additionally include the AMMECR1 family of proteins. The predicted RNA-binding domain associated with this family is also observed in distinct architectural contexts in other proteins across phylogenetically diverse prokaryotes. Here it is predicted to play a key role in a new pathway for tRNA 4-thiouridylation along with TusA-like sulfur transfer proteins.
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页码:360 / 372
页数:13
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