Related Experiment Video
Updated: Jan 8, 2026

Use of Arabidopsis eceriferum Mutants to Explore Plant Cuticle Biosynthesis
Published on: May 31, 2008
Metabolic and Starch Biosynthetic Networks Underlying Yam Waxiness Formation Revealed by Integrated Transcriptomics
Ye Li1, Peiting Li2, Duoyong Zhao3
1College of Biosystems Engineering and Food Science, Key Laboratory for Quality Evaluation and Health Benefit of Agro-Products of Ministry of Agriculture and Rural Affairs, Key Laboratory for Quality and Safety Risk Assessment of Agro-Products Storage and Preservation of Ministry of Agriculture and Rural Affairs, Zhejiang University, Hangzhou 310058, China.
None:
Waxiness, a key starch-related texture determining yam eating quality, remains poorly understood at the genetic and molecular levels, requiring further study for targeted quality improvement. Nine yam varieties with contrasting waxiness were analyzed using integrated transcriptomic and proteomic approaches to elucidate starch structure and metabolism. The results revealed that high-waxiness yam showed elevated expression of sucrose transport and starch precursor genes associated with higher starch content. Starch synthases (SSIII and SSIV) in yam regulated short and intermediate (6 < X ≤ 24) amylopectin chains. Starch branching enzyme (SBE), enriched in high-waxiness samples, catalyzed α-1,6 bond formation to promote long-chain amylopectin (36 < X ≤ 100) synthesis, thereby increasing starch molecular size and enhancing starch stability and rheology, contributing to waxiness formation. Upregulated GBSSII may contribute to a higher starch content in high-waxiness yam. These findings provide a mechanistic basis for waxiness and highlight key gene targets for improving the tuber texture quality.
More Related Videos
11:17A Simple Fractionated Extraction Method for the Comprehensive Analysis of Metabolites, Lipids, and Proteins from a Single Sample
Published on: June 1, 2017
09:27High Resolution Quantification of Crystalline Cellulose Accumulation in Arabidopsis Roots to Monitor Tissue-specific Cell Wall Modifications
Published on: May 10, 2016
Related Concept Videos
Biosynthesis of Polysaccharides
Biosynthesis of Lipids