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Updated: Apr 4, 2026

High Resolution Quantification of Crystalline Cellulose Accumulation in Arabidopsis Roots to Monitor Tissue-specific Cell Wall Modifications
Published on: May 10, 2016
Differential cellulose distribution drives polarized growth of cotton fibers
Guangda Wang1, Jie Wang2, Huanhuan Yang1,3
1Department of Agri-microbiomics and Biotechnology, State Key Laboratory of Microbial Diversity and Innovative Utilization, Institute of Microbiology, Chinese Academy of Sciences, Beijing, China.
Abstract:
Plant cell morphogenesis relies on the mechanical properties of the primary cell wall, yet it remains unclear which components predominantly regulate wall extensibility. Cotton fibers, highly elongated single cells, offer a unique system to investigate polarized cell expansion. Here, by combining atomic force microscopy and cellulose labeling, we find a basipetal gradient of cellulose microfibril density from the apex to the shank that underlies cell wall heterogeneity and directed cotton fiber elongation. Live-cell imaging shows that cellulose synthase complexes accumulate more densely toward the shank, which is guided by specific microtubule organization and is supported by genetic disruption and microtubule perturbation. A mechanical model further demonstrates that a cellulose gradient is sufficient to reshape axial strain for directional growth. Collectively, our findings provide single-cell evidence for a cellulose-dependent mechanism of directional growth, expanding our understanding of primary cell wall extensibility in plant morphogenesis and offering potential strategies to improve cotton fiber quality.
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