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Biology subjects

Nayem, R. I.

Publications and source records attributed to Nayem, R. I..

2 recordsLinked to original sources

In Silico Screening of Neem-Derived Phytochemicals Targeting the Avr1 (SIX4) Effector Protein of Fusarium oxysporum for Fusarium Wilt Management

Fusarium wilt, caused by Fusarium oxysporum, is a destructive soil-borne disease that severely limits crop productivity worldwide. Its effector protein Avr1 plays a key role in suppressing host immune responses. In this study, an integrated in silico approach was employed to identify potential natural inhibitors of Avr1 using neem (Azadirachta indica) derived phytochemicals. Ten compounds were screened through molecular docking, ADME profiling, and toxicity prediction. Docking results revealed binding affinities ranging from -6.3 to -5.5 kcal/mol, with nimbiol showing the strongest interaction (-6.3 kcal/mol). The highest-ranking protein-ligand complex was stabilized by hydrophobic and electrostatic interactions involving key residues such as ARG180, VAL158, LYS182, and TYR134, indicating a favorable binding environment. ADME analysis demonstrated acceptable pharmacokinetic properties and drug-likeness for several compounds, specially nimbiol and gedunin, with high gastrointestinal absorption and compliance with Lipinskis rule of five. Toxicity prediction indicated moderate hepatotoxicity and low carcinogenic potential, although elevated immunotoxicity was observed across most ligands. Overall, the findings align with existing studies on neems antifungal potential and highlight nimbiol and gedunin as promising lead compounds for further experimental validation against Fusarium wilt.

plant biology↗

Structural Characterization and Functional Assessment of the Alpha-Expansin Precursor in Oryza sativa

Expansins are vital proteins that facilitate cell wall loosening, playing a crucial role in plant growth and development. This study investigates the structural and functional characteristics of the alpha-expansin precursor (GenBank ID: AAL79710.1) in Oryza sativa (Japanese rice). Through bioinformatics analyses, including ProtParam, CELLO, and conserved domain identification, we identified key biochemical properties, such as a molecular weight of approximately 28 kDa, a basic isoelectric point (pI 9.40), and significant levels of alanine and glycine. The CELLO analysis predicted the proteins localization primarily in the extracellular space, consistent with its role in modifying the cell wall. Homology searches revealed high similarity to expansin-A29 proteins in related species, while phylogenetic analysis indicated a close evolutionary relationship among monocots. Structural modeling predicted a well-folded protein, though refinement is necessary to address certain discrepancies highlighted in the QMEANDisCo analysis. Our findings underscore the evolutionary conservation of alpha-expansins and their integral role in plant physiology, particularly in cell wall dynamics and stress responses. This research enhances our understanding of alpha-expansins in rice and lays the groundwork for future studies aimed at manipulating these proteins to improve crop resilience and yield under changing environmental conditions.

plant biology↗