Related Experiment Video
Updated: Aug 5, 2026

A Semi-high-throughput Imaging Method and Data Visualization Toolkit to Analyze C. elegans Embryonic Development
Published on: October 29, 2019
Transcriptomic Profiling of Developmental Stages and Screening of Candidate Genes in Pholiota nameko
Yao Zhu1, Tingting Ma1, Yichu Wang1
1Shaanxi Key Laboratory of Research and Utilization of Resource Plants on the Loess Plateau, Engineering Research Center of Microbial Resources Development and Green Recycling of Shaanxi Province, College of Life Sciences, Yan'an Medical College Yan'an University, Yan'an 716000, China.
Abstract:
The developmental cycle of Pholiota nameko can be divided into four stages: the mycelial stage (JS), the primordium stage (FH), the growth stage (SZ), and the maturity stage (CS). In this study, transcriptome sequencing was performed on P. nameko at these four stages, followed by the screening of differentially expressed genes and functional annotation via Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) analyses. By integrating the annotation results of all differentially expressed genes (DEGs), we screened for candidate genes potentially correlated with the growth and development of P. nameko. The expression levels of these candidate genes were then compared using real-time quantitative PCR (RT-qPCR) to identify those with the highest expression. The results showed that in the FH vs. CS and SZ vs. CS comparisons, DEGs were mainly enriched in pathways related to protein processing, fatty acid metabolism, and linoleic acid metabolism, suggesting that alterations in these specific metabolic pathways may be closely associated with the growth and development of P. nameko. Through analysis based on upregulation and log2 fold change (log2FC) values, further screening identified 13 candidate genes, and the gene Cluster-7415.13 with the highest expression level was preliminarily screened out through RT-qPCR analysis. This gene may be potentially involved in processes such as rapid cell expansion, cell wall synthesis, nutrient absorption, and active growth-stage metabolism.

