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Determination of the Glycogen Content in Cyanobacteria
Published on: July 17, 2017
Glycogen phosphorylase in Acanthamoeba spp.: determining the role of the enzyme during the encystment process using
Jacob Lorenzo-Morales1, Jarmila Kliescikova, Enrique Martinez-Carretero
1University Institute of Tropical Diseases and Public Health of the Canary Islands, University of La Laguna, Avda. Astrofísico Fco. Sánchez, S/N, 38203 La Laguna, Tenerife, Canary Islands, Spain.
Abstract:
Acanthamoeba infections are difficult to treat due to often late diagnosis and the lack of effective and specific therapeutic agents. The most important reason for unsuccessful therapy seems to be the existence of a double-wall cyst stage that is highly resistant to the available treatments, causing reinfections. The major components of the Acanthamoeba cyst wall are acid-resistant proteins and cellulose. The latter has been reported to be the major component of the inner cyst wall. It has been demonstrated previously that glycogen is the main source of free glucose for the synthesis of cellulose in Acanthamoeba, partly as glycogen levels fall during the encystment process. In other lower eukaryotes (e.g., Dictyostelium discoideum), glycogen phosphorylase has been reported to be the main tool used for glycogen breakdown in order to maintain the free glucose levels during the encystment process. Therefore, it was hypothesized that the regulation of the key processes involved in the Acanthamoeba encystment may be similar to the previously reported regulation mechanisms in other lower eukaryotes. The catalytic domain of the glycogen phosphorylase was silenced using RNA interference methods, and the effect of this phenomenon was assessed by light and electron microscopy analyses, calcofluor staining, expression zymogram assays, and Northern and Western blot analyses of both small interfering RNA-treated and control cells. The present report establishes the role of glycogen phosphorylase during the encystment process of Acanthamoeba. Moreover, the obtained results demonstrate that the enzyme is required for cyst wall assembly, mainly for the formation of the cell wall inner layer.
Insights
Glycogen phosphorylase is crucial for Acanthamoeba encystment, enabling cellulose synthesis for the resistant cyst wall. Silencing this enzyme disrupts cyst formation, offering potential therapeutic targets for Acanthamoeba infections.
Area of Science:
- Microbiology
- Cell Biology
- Parasitology
Background:
- Acanthamoeba infections are challenging to treat due to late diagnosis and drug resistance.
- The resilient cyst stage of Acanthamoeba, with its double-walled structure, is a primary cause of treatment failure and reinfection.
- The cyst wall comprises acid-resistant proteins and cellulose, with cellulose being a major component of the inner layer.
Purpose of the Study:
- To investigate the role of glycogen phosphorylase in the encystment process of Acanthamoeba.
- To determine if Acanthamoeba encystment regulation mirrors mechanisms in other lower eukaryotes.
- To assess the impact of glycogen phosphorylase inhibition on cyst wall formation.
Main Methods:
- Silencing the catalytic domain of glycogen phosphorylase using RNA interference.
- Assessing encystment via light and electron microscopy.
- Analyzing cyst wall components using calcofluor staining.
- Evaluating enzyme activity and gene/protein expression through zymogram, Northern, and Western blot analyses.
Main Results:
- Glycogen phosphorylase plays a significant role in Acanthamoeba encystment.
- The enzyme is essential for the proper assembly of the cyst wall, particularly the inner layer.
- Reduced glycogen phosphorylase activity led to defects in cyst wall formation.
Conclusions:
- Glycogen phosphorylase is a key regulator of Acanthamoeba encystment.
- Targeting glycogen phosphorylase could be a novel strategy to combat Acanthamoeba infections by preventing cyst formation.

