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.

Plant Physiology
|October 7, 2021
PubMed

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.

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