Melittin exhibits antitumor activity in cervical cancer models, yet the long non-coding RNA (lncRNA) response and associated regulatory networks remain poorly understood. Here, strand-specific RNA-seq data from melittin-treated and untreated U14 murine cervical cancer cells were analyzed to characterize melittin-responsive lncRNAs and explore their potential functional associations. A total of 28,162 lncRNAs were identified, including 27,307 known and 855 novel transcripts. Differential expression analysis revealed 404 differentially expressed lncRNAs (DElncRNAs), comprising 191 upregulated and 213 downregulated lncRNAs, most of which were predicted to localize to the cytoplasm or nucleus. Cis-target analysis identified 52 neighboring mRNAs as putative targets of 46 DElncRNAs. Functional enrichment highlighted mitochondrial electron transfer and redox-related processes, including the mitochondrial electron transfer flavoprotein complex, electron-transferring-flavoprotein dehydrogenase activity, ubiquinone binding, and quinone binding. In parallel, melittin induced mitochondrial membrane depolarization and increased intracellular reactive oxygen species accumulation in U14 cells. Co-expression analysis further identified 138 lncRNAs coexpressed with 161 mRNAs, which were enriched in chromatin remodeling, DNA replication, and DNA repair. EdU incorporation decreased with increasing melittin concentrations, indicating suppression of DNA synthesis and proliferative activity. RT-qPCR analysis confirmed the expression trends of selected DElncRNAs. Collectively, these findings demonstrate extensive remodeling of the lncRNA landscape in melittin-treated U14 cells and suggest that melittin-responsive lncRNA-mRNA networks are associated with mitochondrial redox disruption and impaired DNA synthesis. This study provides a transcriptomic framework for identifying candidate lncRNA-mRNA regulatory axes underlying the antitumor response to melittin.
Ronghua Zhang, Haiwen Zhuo, Yun Yang et al.· bioRxiv· 0 citations
ABSTRACT Chalkbrood, a destructive larval disease caused by the fungal pathogen Ascosphaera apis, causes substantial losses in apiculture. Although host–pathogen interactions in Apis mellifera larvae infected with A. apis have been investigated, immune defense mechanisms in the Asian honey bee Apis cerana remain unclear. This study examined whether the lncRNA6470/ace-miR-750-y axis modulates the response of A. cerana larvae to A. apis infection. Stem-loop RT-PCR, Sanger sequencing, dual-luciferase reporter assays, RNA interference, and RT-qPCR were used to characterize ace-miR-750-y, lncRNA6470, AcPP2A, host immune genes, and selected A. apis genes associated with signal transduction, transcriptional regulation, and RNA metabolism. Larval survival and chalkbrood incidence were also evaluated after ncRNA perturbation. ace-miR-750-y was expressed in larval guts and showed infection-associated expression changes. Computational prediction identified 214 candidate mRNA targets and 143 candidate lncRNA interactors of ace-miR-750-y, from which the lncRNA6470/ace-miR-750-y/AcPP2A axis was selected for experimental validation. Modulation of ace-miR-750-y significantly affected AcPP2A expression. ace-miR-750-y overexpression increased host immune genes associated with antimicrobial peptide production and peroxidase activity, whereas its inhibition reduced their expression. Modulation of ace-miR-750-y was also associated with altered expression of selected A. apis genes and changes in larval survival and chalkbrood incidence. These findings suggest that ace-miR-750-y may play an important regulatory role in the immune response of A. cerana worker larvae to A. apis infection, and that its interaction with lncRNA6470 may contribute to ceRNA-like regulation during fungal challenge.
Xiaoxue Fan, Kaiyao Zhang, Yun Yang et al.· Virulence· 0 citations
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