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Biology subjects

Nath, D.

Publications and source records attributed to Nath, D..

2 recordsLinked to original sources

An ab initio information-theoretic approach to proteins and protein-ligand interactions

Differing conformational structure of a protein, associated with two distinct signaling states or between ligand-free and ligand-bound states, leads to differing inter-residue interactions and consequently different biological function. We propose a fresh first-principles information-theoretic approach for studying such proteins and their interactions. A de novo measure called protein residue information (PRI), which incorporates details of interactions between all pairs of atoms within and across all residues of the protein, is introduced herein. We formulate a method to calculate the intrastate and inter-state entropy of every residue, needed to determine PRI across any two states of a protein. The intra-state entropy can be determined for every state of a protein possessing one or more states. The inter-state entropy can be calculated pairwise for proteins possessing more than one state. We analyze twenty eight distinct pairs of protein structures from ten different classes. PRI successfully identifies important residues displaying significant conformational changes bearing influence with respect to itself and all other residues. Furthermore, it also successfully identifies important residues displaying rather subtle conformational changes. The identified residues exhibit influential roles in diverse performative features of proteins like stability, allostery, signaling, etc. PRI successfully recovers known experimental results from literature and predicts important roles for many hitherto unstudied residues.

biophysics↗

Assessing combinatorial diversity of aureochrome bZIPs through genome-wide screening

Aureochromes are unique blue light-responsive LOV (Light Oxygen Voltage) photoreceptors cum basic leucine zipper (bZIP) transcription factors (TFs), present exclusively in photosynthetic marine stramenopiles. Considering the availability of the complete genome sequence, this study focuses particularly on aureochromes from Ectocaupus siliculosus. Aureochromes mediate light-regulated developmental responses in this brown photosynthetic algae. Both the LOV sensor and the bZIP effector shows sequence-structure conservation. The LOV+bZIP modules of aureochrome homologs/ paralogs are not only structurally similar but also show an identical oligomeric state -- preferably dimeric. Aureochromes execute diverse cellular responses in different photosynthetic stramenopiles-- though their activities can vary even within a given algal species. Besides a heterogeneous linker connecting the sensor-effector and a flexible N-terminal region, the sequence composition of both the domains is vital. Therefore, it is important to understand whether aureochromes select dimerization partners from the same family or interact with other bZIPs as well. To regulate multifarious bio-logical activities, it is possible that aureochromes activate the global TF interaction network. Following homo/heterodimer modeling, we address the compatibility of dimerization partners by screening through heptad repeats. We evaluate the dimer interface area in terms of gain in solvation energy as well as the number of hydrogen bonds/salt bridge interactions. We further explore the relative stability of these structures from a graph-theoretic perspective through well-studied measures such as the energy of the graph and average participation coefficient. Furthermore, we also conduct an information-theoretic analysis using network information centrality and Kullback-Leibler divergence. We find that all our investigations into the relative stability of these dimers using diverse methods from bioinformatics, network science, and, information theory are in harmonious agreement. Our approach and findings should facilitate the design of experiments.

bioinformatics↗