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Biology subjects

Hoque, H.

Publications and source records attributed to Hoque, H..

2 recordsLinked to original sources

Streptococcus Phage Genomes Reveal Extensive Diversity, New Taxonomic Insights, and Novel Endolysin-Derived Antimicrobial Peptides

The global rise of antibiotic-resistant bacteria, particularly among Streptococcus species, poses an escalating public health threat. Traditional antibiotic development has proven inadequate, making innovative approaches such as bacteriophage-based therapies promising alternatives. A deep understanding of phage biology at the genomic level is essential for advancing therapeutic applications. Here, we analyzed 709 Streptococcus phage genomes to bridge gaps in genomic diversity and propose revisions to Streptococcus phage taxonomy. The phage genomes were clustered based on shared proteins, resulting in 66 clusters and 35 singletons with significant variation in genome characteristics. Through proteome phylogeny, average nucleotide identity, and inter-cluster core genes, we propose 21 new family-level classifications and 296 genus-level subclusters, providing an updated framework for Streptococcus phage taxonomy. Further analysis revealed diverse domain architectures in Streptococcus phage endolysins, including previously unreported structures. Specific domains were associated with distinct streptococcal hosts, suggesting adaptive evolution. We also observed variation in endolysin gene organization, with purifying selection acting on most sites, though some were subject to diversifying selection. Additionally, 182 novel endolysin-derived antimicrobial peptides (AMPs) were identified, some exhibiting antifungal, antiviral, cell-penetrating and non-toxic properties. Molecular dynamics and docking simulations demonstrated high stability and strong binding affinity of peptides EP-39 and EP-121 to the Streptococcus pneumoniae virulence factor autolysin. This is the first comprehensive comparative study of Streptococcus phage genomes, providing critical insights into phage diversity and taxonomy. It also highlights the therapeutic potential of endolysin-derived AMPs against multidrug-resistant Streptococcus strains. Further experimental validation is required to assess their clinical potential.

genomics↗

Identification, characterization of Apyrase (APY) gene family in rice (Oryza sativa) and analysis of the expression pattern under various stress conditions

Apyrase (APY) is a nucleoside triphosphate (NTP) diphosphohydrolase (NTPDase) which is a member of the superfamily of guanosine diphosphatase 1 (GDA1) - cluster of differentiation 39 (CD39) nucleoside phosphatase. Under various circumstances like stress, cell growth, the extracellular adenosine triphosphate (eATP) level increases, causing a detrimental influence on cells such as cell growth retardation, ROS production, NO burst, and apoptosis. Apyrase hydrolyses eATP accumulated in the extracellular membrane during stress, wounds, into adenosine diphosphate (ADP) and adenosine monophosphate (AMP) and regulates the stress- responsive pathway in plants. This study was designed for the identification, characterization, and for analysis of APY gene expression in Oryza sativa. This investigation discovered nine APYs in rice, including both endo- and ecto-apyrase. According to duplication event analysis, in the evolution of OsAPYs, a significant role is performed by segmental duplication. Their role in stress control, hormonal responsiveness, and the development of cells is supported by the corresponding cis-elements present in their promoter regions. According to expression profiling by RNA-seq data, the genes were expressed in various tissues. Upon exposure to a variety of biotic as well as abiotic stimuli, including anoxia, drought, submergence, alkali, heat, dehydration, salt, and cold, they showed a differential expression pattern. The expression analysis from the RT-qPCR data also showed expression under various abiotic stress conditions, comprising cold, salinity, cadmium, drought, submergence, and especially heat stress. This finding will pave the way for future in-vivo analysis, unveil the molecular mechanisms of APY genes in stress response, and contribute to the development of stress- tolerant rice varieties.

bioinformatics↗