
Monoclonal antibody-based therapies are widely used in chronic immune-mediated diseases, but their periodontal effects, dentoalveolar safety signals, and exposure characteristics remain incompletely characterized. This scoping review mapped periodontal clinical outcomes, biomarkers, microbiological and imaging findings, dentoalveolar safety, administration, treatment exposure, and pharmaceutical-context reporting. PubMed, Scopus, and Web of Science were searched in July 2026 without publication-year or language restrictions. Twenty-one reports representing 20 studies or cohort families were included. Evidence mainly concerned rheumatoid arthritis and therapies targeting tumor necrosis factor, interleukin-6 receptor, and cluster of differentiation 20. Evidence for interleukin-17A inhibition was insufficient and derived from one confounded five-patient case series. Tocilizumab showed the most consistent reductions in gingival inflammation and bleeding on probing, while structural changes were smaller and inconsistent. Tumor necrosis factor-directed findings were heterogeneous. Small rituximab studies showed favorable clinical or biomarker signals, whereas pharmacovigilance identified infectious and destructive dentoalveolar signals. Exposure reporting was incomplete, and no included periodontal study evaluated formulation stability, storage, cold-chain integrity, or handling deviations. This review integrates treatment-effect evidence, safety signals, and exposure variables across antibody targets and identifies a pharmaceutical–periodontal reporting gap requiring prospective investigation.
This study aimed to investigate the physical properties of native tapioca starch (TS) ag-glomerated using its gelatinized dispersion as an agglomerating agent and to evaluate the performance of the resulting agglomerate tablets. The results demonstrate that TS agglomerated with gelatinized tapioca starch (GTS) exhibited increased particle strength as GTS content increased. Moreover, particle flowability was enhanced compared with that of native TS. The compressibility of TS agglomerates increased with higher GTS content, thereby reducing resistance to volume reduction and enhancing the plasticity of particle deformation under pressure, resulting in the greater tensile strength of the tablets. GTS showed superior performance to polyvinylpyrrolidone and sodium alginate at the concentration of 2% w/w in terms of Carr’s index and tablet hardness. Propranolol HCl (PNL) tablets prepared from agglomerates with GTS exhibited higher hardness than those without GTS, with tablet hardness increasing proportionally to GTS content. Additionally, GTS facilitated faster tablet disintegration, thereby accelerating PNL dissolution. In drug-loading tests, agglomerate tablets containing 3% GTS maintained acceptable physical properties when the PNL content did not exceed 20% w/w. Higher PNL loading may be achievable by increasing compression pressure. These findings indicate that native TS agglomerated with GTS is a promising tablet diluent for direct compression.
Cancer is still one of the major causes of death globally. While there are many cancer therapies, they often come with significant adverse effects and limitations. A lot of studies have shown that using natural products can improve the efficacy of conventional therapies and decrease their toxicity. Natural products and their derivatives encompassing unmodified molecules, semi-synthetic analogs, and synthetic structures featuring natural pharmacophores, represent a major foundation for approved anticancer agents. Phenolic compounds are a large family of naturally occurring compounds found in plants and have attracted a lot of attention for their potential anticancer properties. Preclinical studies have shown that phenolic compounds have anticancer activity through different mechanisms, mainly by modulating inflammation, which plays a critical role in cancer development. Inflammatory processes in cancer involve complex molecular mechanisms regulated by both oncogenic and tumor-suppressing transcription factors. This review focuses on how phenolic compounds regulate transcription factors, such as nuclear factor kappa-light-chain-enhancer of activated B-cells (NF-κB), nuclear factor erythroid 2-related factor 2 (Nrf2), and signal transducer and activator of transcription 3 (STAT3), which are critical in cancer-related gene expression, ultimately leading to the inhibition of cancer cell proliferation, invasion, and metastasis. Furthermore, phenolic compounds have been shown to synergize with conventional anticancer drugs, enhancing their efficacy and reducing side effects. This review investigates the role of phenolic compounds in regulating transcription factors in cancer animal models, highlighting both the therapeutic potential and limitations of these compounds in cancer prevention and treatment.
Introduction: Heavily exuding wounds can macerate perilesional skin and favour infection. Information on the properties and use time of dressings should be clear and available to healthcare providers. Methods: Our aim was to evaluate the updated series of the AQUACEL® dressing family, because their evolution from a single layer of carboxymethylcellulose (NaCMC) to a multicomponent antiseptic or its combination with polyurethane covered with a silicon layer has developed the technology beyond simple exudate absorption. Using gravimetric analysis, we evaluated the porosity, water uptake, and water vapour transmission rate (WVTR) of AQUACEL® Ag+Extra, AQUACEL® Foam, and Foam Pro. By modifying the method of measuring WVTR, we assessed this outcome during the progressive saturation of the dressings. We also performed a disc diffusion assay on agar to determine the antimicrobial effects of the dressings. Results: Independently of porosity, a second layer of cellulose in AQUACEL® Ag+Extra doubles water uptake and quadruples WVTR compared to foam forms. When the different dressings were evaluated for WVTR under progressive saturation, we did not observe any statistically significant changes, indicating that retained liquids do not alter dressing properties, which is a more biologically suitable approach. Despite the acidic character of the cellulose hydrofibre contained in the three dressings, the lack of any antiseptics in the foam forms makes them unsuitable for use in colonised or infected wounds, although they can act as a physical barrier for microorganisms and mechanical damage. The opposite results were observed for the AQUACEL® Ag+Extra dressing, which contains silver, EDTA, and benzethonium chloride. Discussion: Data on the physicochemical composition of dressings can enable healthcare providers to choose the appropriate dressing series to use during wound bed preparation and beyond.
Elymus repens (L.) Gould has a long history of use in traditional medicine across the British Isles, particularly among Gaelic and Anglo-Saxon communities, where it has been employed as a diuretic and anti-inflammatory agent. Despite its ethnopharmacological significance, comprehensive insights into its phytochemical composition and biological activities remain limited. The present study aimed to provide an integrated characterization of E. repens through macro- and microscopic analyses, advanced phytochemical profiling, and evaluation of the biological activities of the rhizome part. Microscopic examination revealed distinct anatomical features differentiating rhizome and stem, leaf tissues, supporting accurate identification and pharmacognostic standardization. Chemical profiling using Liquid Chromatography-Quadrupole Time-of-Flight Mass Spectrometry (LC-QToF-MS) enabled the tentative identification of 93 metabolites, including amino acids, in aerial and rhizome extracts. These compounds were primarily classified into polyamines (e.g., feruloylputrescine, hydroxycoumaroylagmatine), phenolic acids (gallic, vanillic, and ferulic acids), flavonoids (apigenin, tricin, saponarin analogues), amino acids (arginine, tyrosine, tryptophan), organic acids (malic, succinic acids), nucleosides (adenosine, thymidine), and phospholipids. Biological evaluation demonstrated that the hydroethanolic rhizome extract exhibited notable antifungal activity against Aspergillus fumigatus (IC50 = 34.9 µg/mL). Additionally, hydroethanolic extracts of both the aerial and rhizome parts showed no cytotoxicity in the Artemia salina lethality assay at concentrations up to 10 mg/mL, indicating a favorable preliminary safety profile. Of particular interest is tricin, which possesses anti-inflammatory, antioxidant, antimicrobial, and potential nephroprotective therapeutic effects; its mechanism of action is associated with the suppression of oxidative stress, the inhibition of pro-inflammatory mediators, and the disruption of metabolic processes in microbial cells. Overall, this study provides a comprehensive phytochemical and pharmacognostic characterization of E. repens, highlighting its potential as a source of bioactive compounds. The metabolite profile obtained directly from the biologically active extract, combined with its proven antifungal activity, serves as direct confirmation of the antimicrobial aspect of this plant’s traditional use, while its broader applications in ethnomedicine require targeted pharmacological testing. These findings contribute valuable data for chemotaxonomic classification and future pharmacological investigations.
Cytokines are produced by immune and other cells and work as cellular messengers to regulate an immune response and other biological processes. As the main components of the tumor microenvironment (TME), cytokines are involved in the major events of cancer development, including cancer and cancer stem cell proliferation, angiogenesis, invasion, and metastasis. They also modulate immune functions and inhibit tumor progression and resistance to conventional therapies and thus have been regarded as promising targets for cancer treatment. Recently, tumor reversibility has attracted wide interest, for which the TME plays a critical role. Many plant-derived products exhibit potential tumor-inhibitory and cytokine-modulatory activities, including andrographolide, artemisinin, berberine, camptothecin, capsaicin, curcumin, digoxin, morphine, paclitaxel, and vinblastine, indicating their possible use in cancer reversal. Thus, in the present review, correlations among cytokines, the TME, tumor immunity, and tumor reversibility have been discussed, and the potential effects of selected plant-derived natural products on these issues have been addressed.
Azelaic acid (AZA) and salicylic acid (SA) are widely used active ingredients in pharmaceutical and cosmetic formulations for the treatment of acne, rosacea, hyperpigmentation, and other dermatological conditions. Despite their frequent co-administration, analytical methods for their simultaneous determination remain limited. In the present study, a capillary electrophoresis (CE) method with indirect UV detection was developed and validated for the simultaneous determination of AZA and SA in pharmaceutical and cosmetic preparations. Preliminary experiments demonstrated that direct UV detection was unsuitable because of the weak UV absorbance of AZA; therefore, indirect UV detection based on a sodium benzoate background electrolyte (BGE) was used. Following an initial one-factor-at-a-time (OFAT) screening, method optimization was performed using a face-centered central composite design (CCD) to evaluate the effects of BGE concentration, BGE pH, and separation voltage on the separation. The optimum separation was achieved using a 30 mM sodium benzoate BGE at pH 6.5 containing 5% (v/v) methanol, a separation voltage of +18 kV, a capillary temperature of 20 °C, and indirect UV detection at 230 nm. Baseline separation of both analytes was achieved within 5 min. The method was validated according to the ICH Q2(R2) guideline and demonstrated satisfactory accuracy, linearity, precision, selectivity, sensitivity, and robustness. The developed procedure was successfully applied to the analysis of commercial cosmetic formulations containing AZA, SA, or both active ingredients, providing assay results consistent with the declared contents. The proposed CE method provides a simple, rapid, cost-effective, and environmentally friendly alternative for the routine quality control of pharmaceutical and cosmetic formulations containing AZA and SA.
Mistletoes of the genus Tristerix, native to South America, represent a unique group of mostly hemiparasitic plants with potential medicinal applications. This review synthesizes existing knowledge on their biological and phytochemical properties, focusing on three main species endemic to Chile: Tristerix aphyllus, T. corymbosus, and T. verticillatus. These species exhibit diverse interactions with host plants, animal pollinators, and seed dispersers, where host identity can influence their chemical profile. Around 17 metabolites have been found in flowers, fruits, and leaves from Tristerix spp., including flavonoids (e.g., quercetin, apigenin, luteolin), phenolic acids (e.g., caffeic acid; gallic acid), and alkaloids (e.g., pronuciferine and glaucine). Those have demonstrated antioxidant, anti-inflammatory, antimicrobial, and anti-tumoral properties. Despite their traditional uses in Chilean medicine for ailments such as gastric ulcers and throat infections, experimental research on Tristerix spp. remains scarce. This review highlights their bioactive potential, emphasizing the need for further investigation into their pharmacological applications, including in vivo and clinical studies.
Although the acute phase of the SARS-CoV-2 pandemic has subsided, the continued emergence of viral variants underscores the need for structurally diverse antiviral inhibitors. In this study, molecular docking followed by molecular dynamics (300 ns) simulations and binding free energy calculations using the Molecular Mechanics Poisson–Boltzmann Surface Area (MM-PBSA) method were employed to evaluate substituted flavonoids derived from Taraxacum officinale and Urtica dioica as potential inhibitors of the SARS-CoV-2 main protease (Mpro/3CLpro). Docking analysis identified several derivatives with favorable binding scores; however, dynamic refinement revealed differential stability among the ligand–protein complexes. Among the evaluated compounds, the luteolin derivative LND-17 showed the most consistent performance, exhibiting binding free energy estimates approaching those obtained for the reference inhibitors nirmatrelvir and ensitrelvir, sustained catalytic pocket occupancy, and energetic contributions involving the catalytic dyad (His41 and Cys145). Additional derivatives, including LNG-04, QND-07, and QNG-20, showed moderate stabilization but lower overall consistency. These findings highlight glycosylated flavonoids as promising scaffolds for future structure-based optimization and provide structural insights to guide experimental validation.
Drug discovery is a complex and resource-intensive process, with lead identification representing a major bottleneck due to high attrition rates. Natural products have long served as a valuable source of structurally diverse and biologically active compounds, offering advantages such as evolutionary optimization, target specificity, and unique chemical diversity. This review provides a comprehensive and mechanistic overview of natural products as lead compounds, emphasizing their chemical characteristics, biological relevance, sources, mechanisms of action, and integration into modern drug discovery pipelines. A narrative review was conducted using major scientific databases (PubMed, Scopus, Web of Science, and Google Scholar), covering literature from 2000 to 2026. Relevant studies were selected based on scientific rigor and contribution to key themes, including natural product diversity, discovery strategies, and technological advancements. Natural products exhibit superior structural complexity and occupy unique chemical space compared to synthetic compounds, enabling effective interaction with diverse biological targets and supporting polypharmacological activity. Key sources include plants, microorganisms, and marine organisms, which have yielded numerous clinically important drugs. Advances in analytical techniques, genome mining, metabolomics, synthetic biology, and artificial intelligence have significantly improved discovery and optimization processes. Despite challenges related to complexity and scalability, natural products remain indispensable in drug discovery, with emerging technologies enhancing their potential for addressing unmet medical needs.
In this study, we used our own prediction models to assess the antiviral potential of pyrimidin-4(3H)-one derivatives against the A/H1N1 influenza virus strain. This assessment allows us to identify promising structures. The models are based on machine learning algorithms and molecular modeling results. In general, the prediction results are consistent with experimental data. The most promising compound, namely 12 (6-amino-2-(dimethylamino)pyrimidin-4(3H)-one), inhibits the reproduction of the A/Puerto Rico/8/34 (H1N1) influenza virus strain in vitro, likely by affecting the function of the endonuclease domain of the viral polymerase complex. Compound 12 can be used to create new PAN inhibitors by modifying its structure.
Recently, the Quality by Design (QbD) principle has been implemented in the pharmaceutical industry to enhance product and process understanding through a science- and risk-based approach. This study aimed to apply QbD principles to the formulation development of felodipine push–pull osmotic pump (PPOP) capsules. The quality target product profile (QTPP) and critical quality attributes (CQAs) were established. A Box–Behnken experimental design was employed to optimize the formulation variables, including the amounts of Polyox WSR N80, Polyox WSR Coagulant, and sodium chloride, selected based on the initial risk assessment. Four responses were monitored: lag time, release rate and R2 based on zero-order release kinetics, and drug release at 24 h. Results indicated that the optimal formulation consisted of 125 mg Polyox WSR N80, 26 mg Polyox WSR Coagulant, and 30 mg sodium chloride. This formulation met the predefined criteria for lag time (≤6 h) and release kinetics (R2 ≥ 0.95), while drug release at 24 h remained below the target value (≥80%). Because most fitted response surface models were not statistically significant, the generated regression equations and response surfaces were interpreted qualitatively to identify formulation trends rather than as predictive models. Experimental verification showed reasonable consistency in overall response trends, although substantial deviations between predicted and observed values were observed for some responses, particularly drug release at 24 h. Therefore, the present work should be considered a formulation-development and QbD feasibility study rather than a definitive optimization study. These findings demonstrate that the QbD-based approach enabled systematic, multivariate optimization and design space establishment, providing a more structured framework for formulation refinement compared with prior exploratory development and supporting controlled drug release characteristics of felodipine PPOP capsules.
The pharmaceutical development of cannabis-based medicinal products is challenged by significant variability in the quality, composition, and standardization of plant-derived active pharmaceutical ingredients (APIs). In Ukraine, despite recent legislative liberalization, a substantial shortage of standardized raw materials continues to limit the development of innovative dosage forms. This study analyses international practices among API manufacturers to identify technological parameters necessary to overcome domestic market barriers and support the implementation of advanced drug delivery systems. Content analysis was conducted on regulatory documentation, professional literature, and manufacturers’ technical specifications. Candidate evaluation followed predefined inclusion and exclusion criteria. The study assessed compliance with Good Manufacturing Practice (GMP) requirements, extraction and purification technologies, the extent of analytical characterization, and batch-to-batch reproducibility. Purposive sampling enabled a comparative analysis of various technological approaches. Marked heterogeneity was observed in API standardization and analytical control indicators among manufacturers. Possession of a GMP certificate was found necessary but may be insufficient to ensure the pharmaceutical equivalence of materials. Differences in extraction methods and purification levels may affect stability profiles, pharmaceutical development strategies, and risk management related to final product quality. The findings demonstrate that manufacturer selection is a critical decision point in pharmaceutical development, with substantiated supplier choice directly influencing dosage form development and regulatory compliance.
The development of novel antiepileptic agents requires early identification of pharmacokinetic limitations to mitigate risks at later stages. This study aimed to perform in silico profiling of a library containing 448 novel 2H,5H-chromeno[4’,3’:4,5]thiopyrano[2,3-d]thiazol-2-one derivatives to select lead compounds with an optimal balance of safety and efficacy. The study was conducted using the ADMET-AI platform, based on a graph neural network, to predict physicochemical, pharmacokinetic, and toxicological properties. The methodology involved calculating drug-likeness descriptors for primary screening and a comparative statistical analysis of the top 20 selected structures against 16 approved antiepileptic drugs and four reference compounds. Based on drug-likeness descriptors and predicted ADMET (absorption, distribution, metabolism, excretion, toxicity) related parameters, 20 structures were prioritized for further analysis. Their predicted profiles suggested high intestinal absorption and blood–brain barrier (BBB) permeability, which may be relevant for central nervous system (CNS) directed agents. In comparison with the reference thiazolidinones, the prioritized compounds showed comparatively more favorable predicted mutagenicity and carcinogenicity profiles. Elevated predicted risks of hepatotoxicity and cardiotoxicity were observed for several structures, indicating the need for further structural optimization. The results suggest that the thiopyranothiazolidinone scaffold merits further anticonvulsant-oriented investigation at the stage of early compound prioritization. Experimental validation will be required to confirm the actual pharmacokinetic, toxicological, and anticonvulsant properties of the prioritized compounds.
Flavone–thiazole–aryl hybrid molecules based on 6-aminoflavone and 5-arylidene-4-aminothiazol-2(5H)-ones were synthesized and subjected to physicochemical and biological studies. Microwave-assisted synthesis was performed in two steps. First, an aminolysis reaction of isorhodanine with 6-aminoflavone was carried out to achieve the corresponding hybrid flavone-thiazole 3, which was later subjected to a Knoevenagel condensation with selected aromatic aldehydes, yielding 5-arylidene derivatives 5a–5i. The resulting hybrids were purified and characterized by UV–Vis, NMR, and HR-MS (ESI). In the UV–Vis spectra of all compounds, two characteristic bands were noted. The UV–Vis spectra in DMF of the studied flavone–thiazole–aryl hybrids consist of two major bands with maxima appearing at 280–288 nm, corresponding to band II and 383–399 nm, corresponding to band I, which clearly distinguish them from the large group of modified flavonoids. Among the compounds tested on human bladder cancer 5637 cells, (5Z)-5-[(4-hydroxyphenyl)methylene]-4-[(4-oxo-2-phenyl-chromen-6-yl)amino]thiazol-2-one (5b) exhibited interesting micromolar activity (IC50 2.37 µM). In addition, four of the tested compounds (3, 5f, 5d, and 5b) presented noteworthy antiplasmodial activity against P. falciparum in the low micromolar range (IC50 1.90–4.90 µM). The obtained group of flavone–thiazole–aryl hybrid molecules constitutes valuable starting points for further structural optimisation, which could usher in future novel active pharmaceutical ingredients and pave the way for novel therapeutic strategies.
The cornea and conjunctiva are particularly susceptible to injury and adverse effects, either induced by topically applied drugs or excipients used in ophthalmic formulations. Surfactants and cosurfactants are important for producing topical eye formulations of poorly water-soluble drugs, yet they have not been always used in concentrations that are nontoxic and non-irritating to the ocular surface. This study systematically compared the cytotoxicity and ocular irritation potential of commonly used ophthalmic surfactants and cosurfactants under standardized experimental conditions using complementary in vitro and ex vivo ocular safety models. The ocular irritation of Tween 80, Cremophor EL, polyethylene glycol 400 (PEG 400) and propylene glycol (PG) was examined using the HET-CAM (conjunctival) and BCOP (corneal) eye assays. The toxic effect of the four excipients after 24 h on HLE-B3 cell growth was investigated and found to be dose-dependent. The highest tolerable concentrations of Tween 80 and Cremophor EL were 0.25% (w/w), whereas PEG 400 and PG were non-toxic at 5% (w/w). Tween 80 and Cremophor EL at 0.25% (w/w) and PEG 400 and PG at 5% (w/w) were all devoid of conjunctival and corneal irritation. This study systematically compared the cytotoxicity and ocular irritation potential of commonly used ophthalmic surfactants and cosurfactants under standardized experimental conditions using complementary in vitro and ex vivo ocular safety models. Interestingly, there is strong agreement between the results obtained using the HET-CAM and BCOP assays, where both have been successfully used to evaluate the potential for ocular irritation caused by the aforementioned excipients.
Children are often underserved by adult-oriented oral medicines, leading to off-label use and dosage-form manipulation that may compromise dosing accuracy. This review summarises recent advances in paediatric orodispersible tablets (ODTs), focusing on manufacturing technologies, superdisintegrants, taste masking, and in vitro disintegration testing. Following the Preferred Reporting Items for Systematic Reviews and Meta-Analyses (PRISMA) guidance and a protocol registered with the International Platform of Registered Systematic Review and Meta-analysis Protocols (registration number INPLASY2025110022), we searched PubMed, EMBASE, MEDLINE, Scopus, and Google Scholar for experimental studies on paediatric-relevant ODT formulation and evaluation. Two reviewers screened studies and extracted data on manufacturing methods, excipients, disintegration/dissolution testing, and key outcomes. Risk of bias was assessed using a six-domain framework. Overall, 65 studies met the inclusion criteria for this review. Direct compression was the dominant method, with freeze-drying, sublimation, spray-drying, nanoparticle-in-tablet systems, and semi-solid extrusion/3D printing also reported. Crospovidone, croscarmellose sodium, and sodium starch glycolate were the most common superdisintegrants, while natural and co-processed disintegrants showed promise as cost-effective alternatives. Disintegration was usually assessed using pharmacopoeial methods, with some modified set-ups to better simulate oral conditions. Paediatric ODT development is advancing rapidly. Broader translation requires harmonised disintegration testing, age-stratified acceptability reporting, and GMP-ready workflows, alongside benchmarking of superdisintegrants and attention to dose flexibility, packaging, and affordability.
The present study aimed to establish a robustness modeling framework for the determination of cannabidiol (CBD) and Δ9-tetrahydrocannabinol (THC) in cannabis extract using a multivariate approach. A two-level full factorial design was implemented to examine four critical analytical factors, including methanol concentration (80–85% v/v), flow rate (0.8–1.2 mL/min), column temperature (23–27 °C), and detection wavelength (208–212 nm). Seven analytical responses for each compound were assessed, including peak area, retention time, resolution, asymmetry factor, number of theoretical plates, capacity factor, and peak area difference relative to the reference method. Statistical analysis demonstrated that both main effects and interaction effects significantly influenced the measured responses. Design space construction was performed based on predefined acceptance criteria to ensure method robustness: resolution > 1.5, asymmetry < 1.5, number of theoretical plates > 2000, capacity factor > 2, and peak area difference within −5% to 5%. Predictive performance of the developed models was verified by comparing predicted and experimental results. Good agreement was observed under most conditions, whereas deviation was noted for THC quantification at a detection wavelength of 212 nm. Furthermore, CBD and THC contents determined under three selected operating conditions within the established design space were statistically comparable to those obtained using the reference method, except for the condition employing 212 nm detection. The Analytical GREEnness Metric Approach (AGREE) assessment indicated moderate greenness performance of the analytical procedure. Overall, the multivariate two-level full factorial design proved to be an effective tool for robustness modeling of the HPLC method for simultaneous quantification of CBD and THC.
Hypertension remains a leading cause of global morbidity and mortality, and angiotensin-converting enzyme (ACE) represents a central therapeutic target within the renin–angiotensin–aldosterone system. Marine microalgae, particularly Phaeodactylum tricornutum, provide an underexplored reservoir of structurally diverse metabolites with potential cardiovascular relevance. In this in silico study, we characterized metabolites putatively annotated by UPLC-ESI-HRMS and evaluated their predicted ACE inhibitory potential. We performed molecular docking with AutoDock 4 and assessed pharmacokinetic and toxicological properties using the SwissADME, PASS, and ProTox platforms. Several metabolites showed favorable binding orientations within the ACE catalytic pocket, including interactions with key residues and proximity to the zinc-binding motif. Lehualide G, Val–Asn–Pro, tanariflavanone B, hydroxyterbinafine, and anhydro-vitamin A exhibited the most favorable docking profiles. PASS predictions indicated vascular-related bioactivity signals for selected compounds, whereas ADMET modeling revealed heterogeneous but classifiable pharmacokinetic and safety characteristics. The convergence of predicted binding compatibility, bioactivity signals, and stratified safety margins supports P. tricornutum as a promising source of candidate molecules for further experimental validation in antihypertensive research.
Background: Cancer is a leading cause of mortality worldwide. Discovery of small molecules as anticancer agents is an active area of research, as these molecules possess the remarkable ability to interact with specific targets within cancer cells. Objectives: In vitro anticancer activity of six hit derivatives from a series of 2-phenyl-substituted 4-amino–6, 7-dihydro-5H-cyclopenta[d]pyrimidines was tested against human cancer cell lines, viz., A549 (human lung cancer) and A431 (human skin cancer). Methods: Cytotoxicity was evaluated for six hits by the standard MTT assay. Further, their effect on clonogenic potential and cell cycle was tested using colony forming assay and flow cytometric analysis, respectively. Apoptosis-inducing potential was confirmed using Caspase-3/7 Glo assay and detection of cleaved caspase-3 by immunofluorescence. The effect on cell migration was tested using a wound healing assay. Target analysis, Molecular docking and ADMET simulations were performed to identify molecular targets, interactions and assess pharmacokinetic profiles. Results: Specific derivatives showed good to moderate cytotoxicity against A549 and A431 (with average IC50 in the range of ~30 µM), and these hits led to apoptosis and G1 arrest in these cell lines, respectively. Furthermore, identified hits inhibited cell migration in A549 cells. Computational consensus target analysis identified EGFR and CDK2 as high-confidence targets. Docking studies indicated favorable interactions and stability, whereas the ADMET analysis confirmed the drug-likeness and optimal pharmacokinetic and safety profiles of the small molecules. Conclusions: Our current study demonstrates the anticancer potential of novel pyrimidine derivatives. We envisage the use of these small molecules as promising anticancer agents, particularly in skin and non-small cell lung cancer.