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Analysis of Protein Import into Chloroplasts Isolated from Stressed Plants
Published on: November 1, 2016
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Phytaspase Does Not Require Proteolytic Activity for Its Stress-Induced Internalization
Tatevik A Torosian1, Anastasia I Barsukova1, Nina V Chichkova2
1Faculty of Bioengineering and Bioinformatics, Lomonosov Moscow State University, Moscow 199991, Russia.
International Journal of Molecular Sciences
|June 27, 2024
Summary
Proteolytic activity is not required for phytaspase re-internalization in plant cells during stress. This finding reveals that the enzyme
Area of Science:
- Plant molecular biology
- Protease function and regulation
- Cellular stress responses
Background:
- Phytaspases, a unique plant subtilisin-like protease family, exhibit aspartate cleavage specificity and dynamic localization.
- These proteases are secreted by healthy plant cells but re-internalize upon stress perception.
Purpose of the Study:
- To investigate whether the proteolytic activity of phytaspases is essential for their stress-induced retrograde transport.
- To elucidate the mechanism of phytaspase re-localization in response to cellular stress.
Main Methods:
- Utilized an in trans complementation approach in *Nicotiana benthamiana* leaf cells.
- Expressed a prodomain-less phytaspase (NtPhyt) with a free prodomain to achieve active enzyme generation and secretion.
- Generated a catalytically inactive mutant (Ser537Ala) of NtPhyt to assess the role of proteolytic activity in transport.
Main Results:
- Successfully generated proteolytically active NtPhyt and achieved extracellular transport comparable to native phytaspase.
- The inactive NtPhyt Ser537Ala mutant was secreted but retained its ability for retrograde transport upon oxidative stress induction.
- Demonstrated that processed, but inactive, phytaspase can be re-internalized into plant cells.
Conclusions:
- Proteolytic activity of phytaspase is dispensable for its stress-induced retrograde transport.
- The re-internalization mechanism of phytaspase during stress does not rely on its enzymatic function.
- This study clarifies a key aspect of phytaspase localization dynamics and stress response in plants.
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