Aug 2026· Advancement of science· 0 citations· 116 references
Medicine
TL;DR
A lncRNA‐mRNA co‐expression network associated with lignin biosynthesis was established and the regulatory role of lncRNA‐pys within this network was functionally validated through transgenic experiments, demonstrating that overexpressing lncRNA‐pys led to an increase in lignin content in pear.
Abstract
ABSTRACT Long non‐coding RNAs (lncRNAs) play essential roles in plant growth and development. However, their expression variability and contribution to phenotypic changes during the domestication of fruit crops remain unclear. Here, we generated approximately 3.5T of strand‐specific RNA sequencing data from wild, landrace, and improved pear varieties and identified 12 422 lncRNAs that exhibited higher tissue specificity and lower sequence conservation than protein‐coding genes. Roughly 74% of lncRNAs overlapped with transposable elements (TEs) and significantly impacted sequence diversity, expression variation, and tissue‐specific expression. DNA methylation explained approximately 32% of the expression variation of lncRNAs across accessions. Selective sweeps revealed 857 and 519 lncRNAs under domestication and improvement, respectively. These selected lncRNAs were associated with traits such as fruit size, sugar content, and stone cell content. Metabolome profiling revealed a consistent reduction in lignin‐related metabolites during pear domestication and improvement. Integrating transcriptome and metabolome analyses, we established a lncRNA‐mRNA co‐expression network associated with lignin biosynthesis. The regulatory role of lncRNA‐pys within this network was functionally validated through transgenic experiments, demonstrating that overexpressing lncRNA‐pys led to an increase in lignin content in pear. This study represents the first effort to unveil the contributions of lncRNAs under human selection to the domestication traits of fruit crops.
This chapter outlines a comprehensive protocol for identifying and functionally characterizing wheat lncRNAs under stem rust infection, and presents a comprehensive pipeline for identification and functional interpretation of novel regulatory lncRNAs, making it applicable for exploring ncRNA-mediated regulations in rus...
S. Jyothsna, M. Alagu· Methods in molecular biology· 0 citations
It is demonstrated that lncRNAs constitute an important regulatory layer controlling specialized metabolism in tea plants and reveal a transposon-derived lncRNA that modulates catechin biosynthesis.
Yong-Dong Yu, Tong-Biao Wu, Yi-Ran Liu et al.· Horticulture Research· 0 citations
SUMMARY Apricot (Prunus armeniaca L.) is an economically significant fruit crop worldwide with remarkable germplasm diversity, and its fruit quality is primarily determined by key metabolites (e.g., sugars, organic acids, and flavonoids). However, current apricot genome assemblies remain incomplete, with substantial un...
Xu Qiang, Ting-Ting Zhang, Meng Wang et al.· The Plant Journal· 0 citations
This study provides a candidate lncRNA resource and prioritizes lncRNA-associated gene pairs potentially related to life-cycle reversal in T. dohrnii as a candidate lncRNA resource.
Current knowledge on AS and lncRNAs is summarized and their integrated roles in improving abiotic stress tolerance in plants are highlighted, enabling regulatory flexibility and stress resilience.