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Published on: April 26, 2017
A genetic approach reveals different modes of action of prefoldins
Noel Blanco-Touriñán1, David Esteve-Bruna1, Antonio Serrano-Mislata1
1Instituto de Biología Molecular y Celular de Plantas (CSIC-Universidad Politécnica de Valencia), 46022 Valencia, Spain.
Insights
The prefoldin complex (PFDc) is crucial for plant development and environmental responses. This study reveals PFDc
Area of Science:
- Molecular Biology
- Plant Science
- Genetics
Background:
- The prefoldin complex (PFDc) acts as a co-chaperone with TRiC/CCT, folding essential proteins like actin and tubulins.
- PFDc subunits are conserved across eukaryotes and involved in diverse cellular processes, with malfunctions linked to disease and altered growth.
- Previous studies in yeast suggest PFDs may function outside the canonical complex, but systematic analysis in plants is lacking.
Purpose of the Study:
- To investigate the role of the canonical prefoldin complex (PFDc) in Arabidopsis thaliana.
- To differentiate functions of the PFDc from individual PFD subunits in plant growth and environmental responses.
- To identify downstream genetic pathways regulated by PFDs.
Main Methods:
- Generation of an Arabidopsis sextuple mutant deficient in all six PFD subunits.
- Comparative analysis of growth and environmental responses between the sextuple mutant and individual PFD mutants.
- Coexpression and transcriptomic analyses of differentially expressed genes in the sextuple mutant.
Main Results:
- The PFDc is essential for seed germination, delayed flowering, and responses to high salt and low temperatures.
- Multiple PFD subunits redundantly regulate osmotic stress responses.
- Downstream targets include transcription factors like ABI5 and PIF4, and PFDs are involved in high-temperature responses.
Conclusions:
- The canonical PFDc plays vital roles in various plant developmental and stress-response pathways.
- PFDs exhibit both canonical complex-dependent and potentially redundant functions.
- This study elucidates novel roles for PFDs in plant abiotic stress tolerance and temperature responses.
Abstract:
The prefoldin complex (PFDc) was identified in humans as a co-chaperone of the cytosolic chaperonin T-COMPLEX PROTEIN RING COMPLEX (TRiC)/CHAPERONIN CONTAINING TCP-1 (CCT). PFDc is conserved in eukaryotes and is composed of subunits PFD1-6, and PFDc-TRiC/CCT folds actin and tubulins. PFDs also participate in a wide range of cellular processes, both in the cytoplasm and in the nucleus, and their malfunction causes developmental alterations and disease in animals and altered growth and environmental responses in yeast and plants. Genetic analyses in yeast indicate that not all of their functions require the canonical complex. The lack of systematic genetic analyses in plants and animals, however, makes it difficult to discern whether PFDs participate in a process as the canonical complex or in alternative configurations, which is necessary to understand their mode of action. To tackle this question, and on the premise that the canonical complex cannot be formed if one subunit is missing, we generated an Arabidopsis (Arabidopsis thaliana) mutant deficient in the six PFDs and compared various growth and environmental responses with those of the individual mutants. In this way, we demonstrate that the PFDc is required for seed germination, to delay flowering, or to respond to high salt stress or low temperature, whereas at least two PFDs redundantly attenuate the response to osmotic stress. A coexpression analysis of differentially expressed genes in the sextuple mutant identified several transcription factors, including ABA INSENSITIVE 5 (ABI5) and PHYTOCHROME-INTERACTING FACTOR 4, acting downstream of PFDs. Furthermore, the transcriptomic analysis allowed assigning additional roles for PFDs, for instance, in response to higher temperature.
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