Published: Vol 6, Iss 6, Mar 20, 2016 DOI: 10.21769/BioProtoc.1764 Views: 9083
Reviewed by: Zhaohui LiuDušan VeličkovićAgnieszka Zienkiewicz
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Abstract
Root is a perfect model for studying the mechanisms of plant cell growth. Along the root length, several zones where cells are at different stages of development can be visualized (Figure 1). The dissection of the root on these zones allows the investigation of biochemical and genetic aspects of different growth steps. Maize primary root is much more massive than the root of other Monocots and thus more convenient for such type of research. Plant cell wall, mainly consisting of polysaccharides, plays an important role in plant life. Therefore, measurement of plant carbohydrate content and glycoside-modifying enzyme activity in plant cells has become an important aspect in plant physiology. One of the well-documented changes of hemicelluloses molecules during elongation growth of monocots cells is the decrease of arabinose substitution of glucuronoarabinoxylans. This might be caused by changes in synthesis of this polysaccharide or by the action of arabinofuranosidases. Here, we describe the protocol of spectrophotometric measuring of arabinofuranosidase activity in maize root by the rate of hydrolysis of chromogenic substrate (4-nitrophenyl α-L-arabinofuranoside).
Figure 1. Scheme of plant material collection for further arabinofuranosidase assay. Four-day-old dark-grown maize seedling (left panel). Different zones of primary maize root and corresponding stages of cell development, according to Kozlova et al. (2012) (right panel).
Materials and Reagents
Equipment
Software
Procedure
Principal scheme of the experiment is shown in Figure 2.
Figure 2. Scheme of the experiment
Notes
Recipes
Note: The recipes that are given below let to produce the amount of solutions that is sufficient for calibration and four repeating of the experiments with five samples in each replica.
NP concentration, mM | Amount of NP matter in reaction volume (1 ml), μmol | Volume of 1 mM NP solution, μl | 0.03% (w/w) NaN3 solution volume, μl |
0.25 | 0.125 | 250 | 750 |
0.1 | 0.05 | 100 | 900 |
0.05 | 0.025 | 50 | 950 |
0.025 | 0.0125 | 25 | 975 |
0.02 | 0.01 | 20 | 980 |
0.0125 | 0.00625 | 12.5 | 987.5 |
0.01 | 0.005 | 10 | 990 |
0.005 | 0.0025 | 5 | 995 |
0.0025 | 0.00125 | 2.5 | 997.5 |
Arabinose concentration, μg/ml | Volume of 1 mg/ml arabinose solution, μl | Volume of MilliQ, μl |
2 | 2 | 998 |
3 | 3 | 997 |
5 | 5 | 995 |
8 | 8 | 992 |
10 | 10 | 990 |
Acknowledgments
This protocol was adapted from the previously published study (Kozlova et al., 2015). This work was partially supported by Russian Foundation for Basic Research (project ## 14-04-01002 and 15-04-02560).
References
Article Information
Copyright
© 2016 The Authors; exclusive licensee Bio-protocol LLC.
How to cite
Kozlova, L. V., Mikshina, P. V. and Gorshkova, T. A. (2016). Assay of Arabinofuranosidase Activity in Maize Roots. Bio-protocol 6(6): e1764. DOI: 10.21769/BioProtoc.1764.
Category
Plant Science > Plant biochemistry > Carbohydrate
Biochemistry > Carbohydrate > Polysaccharide
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