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Sohag, A. A. M.

Publications and source records attributed to Sohag, A. A. M..

2 recordsLinked to original sources

A Minimally Invasive, Scalable and Reproducible Neonatal Rat Model of Severe Focal Brain Injury

BackgroundNeonatal brain injuries such as stroke cause focal ischemic lesions that often result in lifelong neurological disabilities, as treatment options are limited. To speed up the discovery of potential therapies, early-phase screening with models that reliably reproduce brain injury, with scalable injury volume and minimal confounders, such as varying anaesthesia duration and painful procedures, is essential. MethodsPostnatal day 10 Sprague-Dawley rats of both sexes, with four litters per group and timepoint, were randomly allocated to delivery of intraperitoneal Rose Bengal (25, 40, or 60 mg/kg) and 10 minutes of light-emitting diode illumination through the intact scalp and skull. Infarct progression and reproducibility were assessed at 24 hours, 7 days, and 14 days post-injury. Outcomes included infarct volume and sensorimotor function, and cleaved caspase-3, glial fibrillary acidic protein (GFAP), and ionised calcium-binding adaptor molecule 1 (Iba1) immunoreactivity, with analysis of sex differences. Data were analysed using one-way or two-way ANOVA with Sidaks post-hoc tests. ResultsThere was no mortality due to the infarct, and procedure time was approximately 19 minutes across all groups; the lesion was consistent and supported scalability. The 25 mg/kg dose produced a reproducible cortical infarct (3.74 {+/-} 0.58 mm3; CV = 31%). Lesion size increased with dose and decreased over time (11.15 {+/-} 0.63 mm3 at 60 mg/kg versus 0.05 {+/-} 0.007 mm3 at 14 days; p < 0.0001). Cleaved caspase-3 and glial activation persisted for 14 days, indicating ongoing apoptosis and gliosis. No sex-dependent effects were observed in lesion volume, behaviour, or gliosis. ConclusionsThis refined neonatal photothrombotic ischaemia model is reproducible, scalable, and ethically improved, requiring no skin incision. Its minimal surgical burden, absence of mortality, consistent histopathology, and measurable functional outcomes make it an ideal platform for preclinical screening of neuroprotective and reparative interventions in the developing brain.

developmental biology↗

Identification of Therapeutic Leads from Ficus hispida Fruit Phytochemicals against Prostate Cancer Using Pharmacoinformatic and Molecular Dynamics Simulation Approach

Prostate cancer is one of the leading causes of death and the most common cancer type in men. In this study, potential leads from the phytochemicals of Ficus hispida fruit were screened using in silico tools against androgen receptor (AR), a known target for prostate cancer. PASS online and ADMET tools were used to screen specific phytochemicals that are relevant to prostate cancer treatment and have drug-like properties. Of 13, a total of 10 phytochemicals passed PASS online and ADMET screening. Next, a total of three phytochemicals, including nodakenetin (CID: 26305), isowigtheone hydrate (CID: 66728267), and 7-hydroxycoumarin (CID: 5281426) were selected based on their docking scores (-9.946 to -7.653 kcal/mol) and relevance to selective bioactivity. The MD simulation further confirmed the binding stability of these three phytochemicals with their target AR protein and determined that the main amino acid residues mainly responsible for this stability including RMSD, RMSF, and post simulation binding free energies. These findings suggest that these three phytochemicals of Ficus hispida fruit can further be developed as prospective therapeutics against prostate cancer.

bioinformatics↗