Javascript must be enabled to continue!
Unusual domain architecture of aminoacyl tRNA synthetases and their paralogs from Leishmania major
View through CrossRef
AbstractBackgroundLeishmania major, a protozoan parasite, is the causative agent of cutaneous leishmaniasis. Due to the development of resistance against the currently available anti-leishmanial drugs, there is a growing need for specific inhibitors and novel drug targets. In this regards, aminoacyl tRNA synthetases, the linchpins of protein synthesis, have received recent attention among the kinetoplastid research community. This is the first comprehensive survey of the aminoacyl tRNA synthetases, their paralogs and other associated proteins fromL. major.ResultsA total of 26 aminoacyl tRNA synthetases were identified using various computational and bioinformatics tools. Phylogenetic analysis and domain architectures of theL. majoraminoacyl tRNA synthetases suggest a probable archaeal/eukaryotic origin. Presence of additional domains or N- or C-terminal extensions in 11 aminoacyl tRNA synthetases fromL. majorsuggests possibilities such as additional tRNA binding or oligomerization or editing activity. Five freestanding editing domains were identified inL. major. Domain assignment revealed a novel asparagine tRNA synthetase paralog, asparagine synthetase A which has been so far reported from prokaryotes and archaea.ConclusionsA comprehensive bioinformatic analysis revealed 26 aminoacyl tRNA synthetases and five freestanding editing domains inL. major. Identification of two EMAP (endothelial monocyte-activating polypeptide) II-like proteins similar to human EMAP II-like proteins suggests their participation in multisynthetase complex formation. While the phylogeny of tRNA synthetases suggests a probable archaeal/eukaryotic origin, phylogeny of asparagine synthetase A strongly suggests a bacterial origin. The unique features identified in this work provide rationale for designing inhibitors against parasite aminoacyl tRNA synthetases and their paralogs.
Springer Science and Business Media LLC
Title: Unusual domain architecture of aminoacyl tRNA synthetases and their paralogs from Leishmania major
Description:
AbstractBackgroundLeishmania major, a protozoan parasite, is the causative agent of cutaneous leishmaniasis.
Due to the development of resistance against the currently available anti-leishmanial drugs, there is a growing need for specific inhibitors and novel drug targets.
In this regards, aminoacyl tRNA synthetases, the linchpins of protein synthesis, have received recent attention among the kinetoplastid research community.
This is the first comprehensive survey of the aminoacyl tRNA synthetases, their paralogs and other associated proteins fromL.
major.
ResultsA total of 26 aminoacyl tRNA synthetases were identified using various computational and bioinformatics tools.
Phylogenetic analysis and domain architectures of theL.
majoraminoacyl tRNA synthetases suggest a probable archaeal/eukaryotic origin.
Presence of additional domains or N- or C-terminal extensions in 11 aminoacyl tRNA synthetases fromL.
majorsuggests possibilities such as additional tRNA binding or oligomerization or editing activity.
Five freestanding editing domains were identified inL.
major.
Domain assignment revealed a novel asparagine tRNA synthetase paralog, asparagine synthetase A which has been so far reported from prokaryotes and archaea.
ConclusionsA comprehensive bioinformatic analysis revealed 26 aminoacyl tRNA synthetases and five freestanding editing domains inL.
major.
Identification of two EMAP (endothelial monocyte-activating polypeptide) II-like proteins similar to human EMAP II-like proteins suggests their participation in multisynthetase complex formation.
While the phylogeny of tRNA synthetases suggests a probable archaeal/eukaryotic origin, phylogeny of asparagine synthetase A strongly suggests a bacterial origin.
The unique features identified in this work provide rationale for designing inhibitors against parasite aminoacyl tRNA synthetases and their paralogs.
Related Results
Transfer
RNA
Recognition and Aminoacylation by Synthetases
Transfer
RNA
Recognition and Aminoacylation by Synthetases
Abstract
Fidelity of
transfer ribonucleic acid (tRNA)
charging by amino acids ensures correct transla...
Transfer RNA Recognition and Aminoacylation by Synthetases
Transfer RNA Recognition and Aminoacylation by Synthetases
AbstractFidelity of transfer ribonucleic acid (tRNA) charging by amino acids ensures correct translation of the genetic code into proteins. Charging is catalysed by a set of enzyme...
Multienzyme complexes of eukaryotic aminoacyl-tRNA synthetases
Multienzyme complexes of eukaryotic aminoacyl-tRNA synthetases
The high-molecular-mass aminoacyl-tRNA synthetase complexes in higher eukaryotes are discrete non-artifactual multienzyme complexes of similar composition which can be purified fro...
A novel pathway for the conversion of homocysteine to methionine in eukaryotes
A novel pathway for the conversion of homocysteine to methionine in eukaryotes
Activation of amino acid homocysteine was compared with that of methionine in rabbit crude liver extracts and purified multi-enzyme complex of aminoacyl-tRNA synthetases. Activatio...
Identification of tRNAs incorporated into wild-type and mutant human immunodeficiency virus type 1
Identification of tRNAs incorporated into wild-type and mutant human immunodeficiency virus type 1
We have identified the tRNAs which are incorporated into both wild-type human immunodeficiency virus type 1 strain IIIB (HIV-1IIIB) produced in COS-7 cells transfected with HIV-1 p...
Surveying the landscape of tRNA modifications by combining tRNA sequencing and RNA mass spectrometry
Surveying the landscape of tRNA modifications by combining tRNA sequencing and RNA mass spectrometry
Abstract
Chemical modification of the nucleosides that comprise tRNAs are diverse
1-3
. Such modifications im...
A eukaryote without tRNA introns
A eukaryote without tRNA introns
One of the striking characteristics of eukaryotic genomes is the presence of three types of introns: spliceosomal introns, tRNA introns, and a unique intron in the XBP1 mRNA. Excep...
A tRNA modification in Mycobacterium tuberculosis facilitates optimal intracellular growth
A tRNA modification in Mycobacterium tuberculosis facilitates optimal intracellular growth
Abstract
Diverse chemical modifications fine-tune the function and metabolism of tRNA. Although tRNA modification is universal in all kingdoms of life, profiles of ...

