Unusual evolution of a catalytic core element in CCA-adding enzymes

被引:18
|
作者
Hoffmeier, Andrea [1 ]
Betat, Heike [1 ]
Bluschke, Alexander [1 ]
Guenther, Robert [1 ]
Junghanns, Sandy [1 ]
Hofmann, Hans-Joerg [1 ]
Moerl, Mario [1 ]
机构
[1] Univ Leipzig, Inst Biochem, D-04103 Leipzig, Germany
关键词
TRANSFER-RNA NUCLEOTIDYLTRANSFERASE; BACTERIAL POLY(A) POLYMERASE; MOLECULAR-DYNAMICS; FLEXIBLE LOOP; SEQUENCE; COLI; POLYMERIZATION; MECHANISM; BINDING; MOTIFS;
D O I
10.1093/nar/gkq176
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
CCA-adding enzymes are polymerases existing in two distinct enzyme classes that both synthesize the C-C-A triplet at tRNA 3'-ends. Class II enzymes (found in bacteria and eukaryotes) carry a flexible loop in their catalytic core required for switching the specificity of the nucleotide binding pocket from CTP- to ATP-recognition. Despite this important function, the loop sequence varies strongly between individual class II CCA-adding enzymes. To investigate whether this loop operates as a discrete functional entity or whether it depends on the sequence context of the enzyme, we introduced reciprocal loop replacements in several enzymes. Surprisingly, many of these replacements are incompatible with enzymatic activity and inhibit ATP-incorporation. A phylogenetic analysis revealed the existence of conserved loop families. Loop replacements within families did not interfere with enzymatic activity, indicating that the loop function depends on a sequence context specific for individual enzyme families. Accordingly, modeling experiments suggest specific interactions of loop positions with important elements of the protein, forming a lever-like structure. Hence, although being part of the enzyme's catalytic core, the loop region follows an extraordinary evolutionary path, independent of other highly conserved catalytic core elements, but depending on specific sequence features in the context of the individual enzymes.
引用
收藏
页码:4436 / 4447
页数:12
相关论文
共 50 条
  • [41] The ancestor of modern Holozoa acquired the CCA-adding enzyme from Alphaproteobacteria by horizontal gene transfer
    Betat, Heike
    Mede, Tobias
    Tretbar, Sandy
    Steiner, Lydia
    Stadler, Peter F.
    Moerl, Mario
    Prohaska, Sonja J.
    NUCLEIC ACIDS RESEARCH, 2015, 43 (14) : 6739 - 6746
  • [42] Depletion of tRNA CCA-adding enzyme in Mycobacterium tuberculosis leads to polyadenylation of transcripts and precursor tRNAs
    Blaszczyk, Ewelina
    Plocinski, Przemyslaw
    Lechowicz, Ewelina
    Brzostek, Anna
    Dziadek, Bozena
    Korycka-Machala, Malgorzata
    Slomka, Marcin
    Dziadek, Jaroslaw
    SCIENTIFIC REPORTS, 2023, 13 (01)
  • [43] 2′-5′ oligoadenylate synthetase shares active site architecture with the archaeal CCA-adding enzyme
    Torralba, S.
    Sojat, J.
    Hartmann, R.
    CELLULAR AND MOLECULAR LIFE SCIENCES, 2008, 65 (16) : 2613 - 2620
  • [44] Erratum to: Genotyping bacterial and fungal pathogens using sequence variation in the gene for the CCA-adding enzyme
    Paul Franz
    Heike Betat
    Mario Mörl
    BMC Microbiology, 16
  • [45] 2’-5’ Oligoadenylate synthetase shares active site architecture with the archaeal CCA-adding enzyme
    S. Torralba
    J. Sojat
    R. Hartmann
    Cellular and Molecular Life Sciences, 2008, 65 : 2613 - 2620
  • [46] Sulfolobus shibatae CCA-adding enzyme forms a tetramer upon binding two tRNA molecules:: A scrunching-shuttling model of CCA specificity
    Li, F
    Wang, JM
    Steitz, TA
    JOURNAL OF MOLECULAR BIOLOGY, 2000, 304 (03) : 483 - 492
  • [47] A single catalytically active subunit in the multimeric Sulfolobus shibatae CCA-adding enzyme can carry out all three steps of CCA addition
    Cho, HDD
    Weiner, AM
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2004, 279 (38) : 40130 - 40136
  • [48] An RNA-Binding Complex Involved in Ribosome Biogenesis Contains a Protein with Homology to tRNA CCA-Adding Enzyme
    Lin, Jinzhong
    Lu, Jing
    Feng, Yingang
    Sun, Mengyi
    Ye, Keqiong
    PLOS BIOLOGY, 2013, 11 (10)
  • [49] Genotyping bacterial and fungal pathogens using sequence variation in the gene for the CCA-adding enzyme (vol 16, 47, 2016)
    Franz, Paul
    Betat, Heike
    Moerl, Mario
    BMC MICROBIOLOGY, 2016, 16
  • [50] Examining tRNA 3′-ends in Escherichia coli: teamwork between CCA-adding enzyme, RNase T, and RNase R
    Wellner, Karolin
    Czech, Andreas
    Ignatova, Zoya
    Betat, Heike
    Moerl, Mario
    RNA, 2018, 24 (03) : 361 - 370