MicroRNAs (miRNAs) are increasingly recognized as central regulators of gene expression, cellular adaptation, and disease progression. This is fundamentally reshaping current understanding of disease molecular pathogenesis and therapeutic intervention. Beyond their established roles in development and metabolism, miRNAs actively participate in oncogenesis, metabolic dysfunction, inflammation, and redox homeostasis. Emerging evidence shows that phytochemicals can modulate miRNA-mediated regulatory networks by influencing miRNA biogenesis, expression, stability, and functional activity through transcriptional, epigenetic, and post-transcriptional mechanisms. Among these pathways, the thioredoxin-interacting protein (TXNIP) axis has attracted considerable attention because of its critical involvement in oxidative stress, inflammation, metabolic reprogramming, apoptosis, and cancer-associated signalling. For instance, dysregulated TXNIP expression is strongly associated with metabolic dysfunction-associated fatty liver disease (MAFLD), diabetes, cardiovascular diseases, neurodegenerative disorders, and multiple cancers, making it an attractive therapeutic target. This narrative review discussed emerging trends on phytochemical-mediated regulation of TXNIP-associated miRNAs, including miR-148b, miR-33a/b, miR-17-5p, miR-224, and miR-20a. Particular emphasis was placed on the conserved miRNA seed region as the principal determinant of target recognition, while discussing the emerging hypothesis that phytochemicals may allosterically modulate structurally accessible RNA motifs to influence miRNA conformation, stability, RNA-induced silencing complex loading, and target accessibility without disrupting canonical Watson-Crick base pairing. We further discussed molecular docking, RNA-specific molecular dynamics simulations, and complementary structural validation approaches as emerging tools for investigating RNA-ligand interactions. Therefore, this review has provided a mechanistic and translational framework integrating RNA biology, redox signalling, and precision medicine to guide future development of RNA-targeted phytochemical therapeutics for cancer, metabolic disorders, and other chronic diseases.
P. C. Agu, P. Aja, C.O. Ofor, et al.· Frontiers in Oncology· 0 citations
This study systematically reviewed research on heavy metal contamination in environmental and food systems in Uganda using the PRISMA 2020 data reporting method and the PICOS framework. An extensive literature search of published papers on heavy metal contamination in Uganda's environment and food systems was conducted in PubMed, Web of Science, and Scopus databases up to May 21, 2024. Boolean operators (AND/OR/NOT) were applied to develop search strategies tailored to each database. Following duplicate removal, title and abstract screening, and full-text assessment using the Rayyan platform, 39 articles were included in the final review. Data were extracted from each study using a standardized template that captured metal type, contamination source, concentration levels, affected food or environmental matrix, geographic location, and toxicological impact. Data were synthesized using a descriptive and narrative approach. Key sources of contamination include industrial and municipal waste, agricultural practices, and emissions from transport and manufacturing. Among the metals, lead was the most mentioned across studies. Regional analysis revealed that Central Uganda had the highest reports on heavy metals, while Northern Uganda remains critically understudied. Ecologically, heavy metals threaten soil fertility, aquatic biodiversity, and agricultural sustainability. Contamination of staple foods with lead, cadmium, and mercury poses significant public health risks, particularly for children and pregnant women. Strengthened environmental monitoring, targeted regional investigations, and improved food safety surveillance within a One Health framework are urgently recommended.
Sandra Etumah Ifie, B. A. Ale, I. Fasogbon et al.· Discover Environment· 0 citations