Related Experiment Video
Updated: May 13, 2026

High Resolution Quantification of Crystalline Cellulose Accumulation in Arabidopsis Roots to Monitor Tissue-specific Cell Wall Modifications
Published on: May 10, 2016
Accumulation of noncrystalline cellulose in Physarum microplasmodia
Kyoko Ogawa1, Hisae Maki, Mamiko Sato
1Department of Chemical and Biological Sciences, Faculty of Science, Japan Women's University, Mejirodai, Bunkyo-ku, Tokyo, 112-8681, Japan, ogawa-k@fc.jwu.ac.jp.
Abstract:
Physarum plasmodium lives as a slimy mass of protoplast in the dark fragments into small multinucleated microplasmodia (mPL) in a liquid medium. When mPL are exposed to several unfavorable environments, they transform into "spherules" with a cell wall. Using a synchronous spherule-induction system for mPL, we examined the effect of 2,6-dichlorobenzonitrile on the synthesis of cellulose in mPL, by observing mPL under a fluorescence microscope, and isolated cellulose from mPL to identify them morphologically under scanning electron microscopy. Moreover, we examined in vivo labeling to determine when cellulose synthesis is activated in step 2. We found that the nourishment medium in step 2 was essential for mPL prior to spherulation and that the conversion starts at 48 h in step 2 of our system. From the experiments using Updegraff reagent for the sedimentation of cellulose in the cell wall fraction from mPL, we propose that cellulose produced in mPL is likely noncrystalline cellulose. We conclude that mPL of multinucleated protoplasts without the cell wall structure synthesize cellulose under constitutive condition and accumulate abundantly noncrystalline cellulose, in preparation for unfavorable environments that may occur in the future in which mPL must initiate the program to form the cell wall of spherules.
Insights
Physarum microplasmodia (mPL) synthesize abundant noncrystalline cellulose, even without a cell wall. This stockpiling prepares them for future environmental challenges, like forming protective spherules.
Area of Science:
- Cell Biology
- Biochemistry
- Mycology
Background:
- Physarum plasmodium, a multinucleated protoplast, exists as microplasmodia (mPL) in liquid media.
- Under unfavorable conditions, mPL transform into cell-walled spherules.
Purpose of the Study:
- To investigate the effect of 2,6-dichlorobenzonitrile on cellulose synthesis in mPL.
- To determine the timing of cellulose synthesis activation during spherule formation.
- To characterize the type of cellulose synthesized by mPL.
Main Methods:
- Utilized a synchronous spherule-induction system for mPL.
- Observed mPL using fluorescence microscopy.
- Isolated and identified cellulose via scanning electron microscopy.
- Performed in vivo labeling and Updegraff reagent assays.
Main Results:
- Nourishment medium in step 2 is crucial for mPL prior to spherulation.
- Cellulose synthesis conversion begins at 48 hours in step 2.
- Synthesized cellulose is likely noncrystalline.
- mPL constitutively synthesize and accumulate noncrystalline cellulose.
Conclusions:
- Multinucleated microplasmodia (mPL) synthesize noncrystalline cellulose under constitutive conditions.
- This cellulose accumulation serves as a preparation for future spherule formation in response to environmental stress.
- The study elucidates a novel aspect of Physarum's adaptive strategy.
Related Concept Videos
Cellulose and Pectic Polysaccharides
As a cell matures, its cell wall specializes according to its type. For example, the parenchyma cells of...
Role of Microtubules in Cell Wall Deposition
Diversity of Protists IV
The Phragmoplast
The...
Plasmodesmata
Intercellular junctions are a feature of fungal, plant, and animal cells. However, different types of junctions are found in different kinds of cells. Intercellular junctions found in animal cells include tight junctions, gap junctions, and...
Plasmodesmata

