Rajan Sankaranarayanan
Centre for Cellular and Molecular Biology
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Publication
Featured researches published by Rajan Sankaranarayanan.
Cell | 1999
Rajan Sankaranarayanan; Anne-Catherine Dock-Bregeon; Pascale Romby; Joel Caillet; Mathias Springer; Bernard Rees; Chantal Ehresmann; Bernard Ehresmann; Dino Moras
E. coli threonyl-tRNA synthetase (ThrRS) is a class II enzyme that represses the translation of its own mRNA. We report the crystal structure at 2.9 A resolution of the complex between tRNA(Thr) and ThrRS, whose structural features reveal novel strategies for providing specificity in tRNA selection. These include an amino-terminal domain containing a novel protein fold that makes minor groove contacts with the tRNA acceptor stem. The enzyme induces a large deformation of the anticodon loop, resulting in an interaction between two adjacent anticodon bases, which accounts for their prominent role in tRNA identity and translational regulation. A zinc ion found in the active site is implicated in amino acid recognition/discrimination.
Nature Structural & Molecular Biology | 1996
Rajan Sankaranarayanan; Kanakaraj Sekar; Rahul Banerjee; Vivek Sharma; Avadhesha Surolia; M. Vijayan
Jacalin, a tetrameric two-chain lectin (66,000 Mr) from jackfruit seeds, is highly specific for the tumour associated T-antigenic disaccharide. The crystal structure of jacalin with methyl-α-D-galactose reveals that each subunit has a three-fold symmetric β-prism fold made up of three four-stranded β-sheets. The lectin exhibits a novel carbohydrate-binding site involving the N terminus of the α-chain which is generated through a post-translational modification involving proteolysis, the first known instance where such a modification has been used to confer carbohydrate specificity. This new lectin fold may be characteristic of the Moraceae plant family. The structure provides an explanation for the relative affinities of the lectin for galactose derivatives and provides insights into the structural basis of its T-antigen specificity.
Cell | 2000
Anne-Catherine Dock-Bregeon; Rajan Sankaranarayanan; Pascale Romby; Joel Caillet; Mathias Springer; Bernard Rees; Christopher S. Francklyn; Chantal Ehresmann; Dino Moras
Threonyl-tRNA synthetase, a class II synthetase, uses a unique zinc ion to discriminate against the isosteric valine at the activation step. The crystal structure of the enzyme with an analog of seryl adenylate shows that the noncognate serine cannot be fully discriminated at that step. We show that hydrolysis of the incorrectly formed ser-tRNA(Thr) is performed at a specific site in the N-terminal domain of the enzyme. The present study suggests that both classes of synthetases use effectively the ability of the CCA end of tRNA to switch between a hairpin and a helical conformation for aminoacylation and editing. As a consequence, the editing mechanism of both classes of synthetases can be described as mirror images, as already seen for tRNA binding and amino acid activation.
Journal of Molecular Biology | 2008
Shoeb Ahmad; Md. Zahid Kamal; Rajan Sankaranarayanan; Nalam Madhusudhana Rao
In vitro evolution methods are now being routinely used to identify protein variants with novel and enhanced properties that are difficult to achieve using rational design. However, one of the limitations is in screening for beneficial mutants through several generations due to the occurrence of neutral/negative mutations occurring in the background of positive ones. While evolving a lipase in vitro from mesophilic Bacillus subtilis to generate thermostable variants, we have designed protocols that combine stringent three-tier testing, sequencing and stability assessments on the protein at the end of each generation. This strategy resulted in a total of six stabilizing mutations in just two generations with three mutations per generation. Each of the six mutants when evaluated individually contributed additively to thermostability. A combination of all of them resulted in the best variant that shows a remarkable 15 degrees C shift in melting temperature and a millionfold decrease in the thermal inactivation rate with only a marginal increase of 3 kcal mol(-1) in free energy of stabilization. Notably, in addition to the dramatic shift in optimum temperature by 20 degrees C, the activity has increased two- to fivefold in the temperature range 25-65 degrees C. High-resolution crystal structures of three of the mutants, each with 5 degrees increments in melting temperature, reveal the structural basis of these mutations in attaining higher thermostability. The structures highlight the importance of water-mediated ionic networks on the protein surface in imparting thermostability. Saturation mutagenesis at each of the six positions did not result in enhanced thermostability in almost all the cases, confirming the crucial role played by each mutation as revealed through the structural study. Overall, our study presents an efficient strategy that can be employed in directed evolution approaches employed for obtaining improved properties of proteins.
Nature Chemical Biology | 2009
Pooja Arora; Aneesh Goyal; Vivek T. Natarajan; Eerappa Rajakumara; Priyanka Verma; Radhika Gupta; Malikmohamed Yousuf; Omita A. Trivedi; Debasisa Mohanty; Anil K. Tyagi; Rajan Sankaranarayanan; Rajesh S. Gokhale
The recent discovery of fatty acyl-AMP ligases (FAALs) in Mycobacterium tuberculosis (Mtb) provided a new perspective to fatty acid activation dogma. These proteins convert fatty acids to corresponding adenylates, which is an intermediate of acyl-CoA-synthesizing fatty acyl-CoA ligases (FACLs). Presently, it is not evident how obligate pathogens like Mtb have evolved such new themes of functional versatility and whether the activation of fatty acids to acyl-adenylates could indeed be a general mechanism. Here, based on elucidation of the first structure of a FAAL protein and by generating loss- as well as gain-of-function mutants that interconvert FAAL and FACL activities, we demonstrate that an insertion motif dictates formation of acyl-adenylate. Since FAALs in Mtb are crucial nodes in biosynthetic network of virulent lipids, inhibitors directed against these proteins provide a unique multi-pronged approach of simultaneously disrupting several pathways.
Nature Structural & Molecular Biology | 2004
Rajan Sankaranarayanan; Priti Saxena; Uttara Marathe; Rajesh S. Gokhale; Vellaiah M. Shanmugam; Raju Rukmini
The superfamily of plant and bacterial type III polyketide synthases (PKSs) produces diverse metabolites with distinct biological functions. PKS18, a type III PKS from Mycobacterium tuberculosis, displays an unusual broad specificity for aliphatic long-chain acyl-coenzyme A (acyl-CoA) starter units (C6–C20) to produce tri- and tetraketide pyrones. The crystal structure of PKS18 reveals a 20 Å substrate binding tunnel, hitherto unidentified in this superfamily of enzymes. This remarkable tunnel extends from the active site to the surface of the protein and is primarily generated by subtle changes of backbone dihedral angles in the core of the protein. Mutagenic studies combined with structure determination provide molecular insights into the structural elements that contribute to the chain length specificity of the enzyme. This first bacterial type III PKS structure underlines a fascinating example of the way in which subtle changes in protein architecture can generate metabolite diversity in nature.
Nature Structural & Molecular Biology | 2002
Anne-Catherine Dock-Bregeon; Pascale Romby; Bernard Rees; Rajan Sankaranarayanan; Joel Caillet; Mathias Springer; Chantal Ehresmann; Bernard Ehresmann; Dino Moras
Escherichia coli threonyl-tRNA synthetase (ThrRS) represses the translation of its own messenger RNA by binding to an operator located upstream of the initiation codon. The crystal structure of the complex between the core of ThrRS and the essential domain of the operator shows that the mRNA uses the recognition mode of the tRNA anticodon loop to initiate binding. The final positioning of the operator, upon which the control mechanism is based, relies on a characteristic RNA motif adapted to the enzyme surface. The finding of other thrS operators that have this conserved motif leads to a generalization of this regulatory mechanism to a subset of Gram-negative bacteria.
The EMBO Journal | 2006
Tanweer Hussain; Shobha P Kruparani; Biswajit Pal; Anne-Catherine Dock-Bregeon; Shweta Dwivedi; Megala R Shekar; Kotini Sureshbabu; Rajan Sankaranarayanan
To ensure a high fidelity during translation, threonyl‐tRNA synthetases (ThrRSs) harbor an editing domain that removes noncognate L‐serine attached to tRNAThr. Most archaeal ThrRSs possess a unique editing domain structurally similar to D‐aminoacyl‐tRNA deacylases (DTDs) found in eubacteria and eukaryotes that specifically removes D‐amino acids attached to tRNA. Here, we provide mechanistic insights into the removal of noncognate L‐serine from tRNAThr by a DTD‐like editing module from Pyrococcus abyssi ThrRS (Pab‐NTD). High‐resolution crystal structures of Pab‐NTD with pre‐ and post‐transfer substrate analogs and with L‐serine show mutually nonoverlapping binding sites for the seryl moiety. Although the pre‐transfer editing is excluded, the analysis reveals the importance of main chain atoms in proper positioning of the post‐transfer substrate for its hydrolysis. A single residue has been shown to play a pivotal role in the inversion of enantioselectivity both in Pab‐NTD and DTD. The study identifies an enantioselectivity checkpoint that filters opposite chiral molecules and thus provides a fascinating example of how nature has subtly engineered this domain for the selection of chiral molecules during translation.
Journal of Bacteriology | 2005
Chaithanya Madhurantakam; Eerappa Rajakumara; Pooja Anjali Mazumdar; Baisakhee Saha; Devrani Mitra; Harald G. Wiker; Rajan Sankaranarayanan; Amit Kumar Das
The low-molecular-weight protein tyrosine phosphatase (LMWPTPase) belongs to a distinctive class of phosphotyrosine phosphatases widely distributed among prokaryotes and eukaryotes. We report here the crystal structure of LMWPTPase of microbial origin, the first of its kind from Mycobacterium tuberculosis. The structure was determined to be two crystal forms at 1.9- and 2.5-A resolutions. These structural forms are compared with those of the LMWPTPases of eukaryotes. Though the overall structure resembles that of the eukaryotic LMWPTPases, there are significant changes around the active site and the protein tyrosine phosphatase (PTP) loop. The variable loop forming the wall of the crevice leading to the active site is conformationally unchanged from that of mammalian LMWPTPase; however, differences are observed in the residues involved, suggesting that they have a role in influencing different substrate specificities. The single amino acid substitution (Leu12Thr [underlined below]) in the consensus sequence of the PTP loop, CTGNICRS, has a major role in the stabilization of the PTP loop, unlike what occurs in mammalian LMWPTPases. A chloride ion and a glycerol molecule were modeled in the active site where the chloride ion interacts in a manner similar to that of phosphate with the main chain nitrogens of the PTP loop. This structural study, in addition to identifying specific mycobacterial features, may also form the basis for exploring the mechanism of the substrate specificities of bacterial LMWPTPases.
Journal of Molecular Biology | 2010
Navneet Matharu; Tanweer Hussain; Rajan Sankaranarayanan; Rakesh K. Mishra
Polycomb group (PcG) and trithorax group (trxG) proteins are chromatin-mediated regulators of a number of developmentally important genes including the homeotic genes. In Drosophila melanogaster, one of the trxG members, Trithorax like (Trl), encodes the essential multifunctional DNA binding protein called GAGA factor (GAF). While most of the PcG and trxG genes are conserved from flies to humans, a Trl-GAF homologue has been conspicuously missing in vertebrates. Here, we report the first identification of c-Krox/Th-POK as the vertebrate homologue of GAF on the basis of sequence similarity and comparative structural analysis. The in silico structural analysis of the zinc finger region showed preferential interaction of vertebrate GAF with GAGA sites similar to that of fly GAF. We also show by cross-immunoreactivity studies that both fly and vertebrate GAFs are highly conserved and share a high degree of structural similarity. Electrophoretic mobility shift assays show that vertebrate GAF binds to GAGA sites in vitro. Finally, in vivo studies by chromatin immunoprecipitation confirmed that vertebrate GAF binds to GAGA-rich DNA sequences present in hox clusters. Identification of vertebrate GAF and the presence of its target sites at various developmentally regulated loci, including hox complexes, highlight the evolutionarily conserved components involved in developmental mechanisms across the evolutionary lineage and answer a long-standing question of the presence of vertebrate GAF.