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Protein Isoprenylation in Yeast Targets COOH-Terminal Sequences Not Adhering to the CaaX Consensus
Brittany M Berger1, June H Kim1, Emily R Hildebrandt1
1Department of Biochemistry and Molecular Biology, University of Georgia, Athens, Georgia 30602.
Abstract:
Protein isoprenylation targets a subset of COOH-terminal Cxxx tetrapeptide sequences that has been operationally defined as a CaaX motif. The specificity of the farnesyl transferase toward each of the possible 8000 combinations of Cxxx sequences, however, remains largely unresolved. In part, it has been difficult to consolidate results stemming from in vitro and in silico approaches that yield a wider array of prenylatable sequences relative to those known in vivo We have investigated whether this disconnect results from the multistep complexity of post-translational modification that occurs in vivo to CaaX proteins. For example, the Ras GTPases undergo isoprenylation followed by additional proteolysis and carboxymethylation events at the COOH-terminus. By contrast, Saccharomyces cerevisiae Hsp40 Ydj1p is isoprenylated but not subject to additional modification. In fact, additional modifications are detrimental to Ydj1p activity in vivo We have taken advantage of the properties of Ydj1p and a Ydj1p-dependent growth assay to identify sequences that permit Ydj1p isoprenylation in vivo while simultaneously selecting against nonprenylatable and more extensively modified sequences. The recovered sequences are largely nonoverlapping with those previously identified using an in vivo Ras-based yeast reporter. Moreover, most of the sequences are not readily predicted as isoprenylation targets by existing prediction algorithms. Our results reveal that the yeast CaaX-type prenyltransferases can utilize a range of sequence combinations that extend beyond the traditional constraints for CaaX proteins, which implies that more proteins may be isoprenylated than previously considered.
Insights
This study reveals that yeast prenyltransferases can modify more CaaX proteins than previously thought, expanding the known targets for protein isoprenylation.
Area of Science:
- Biochemistry
- Molecular Biology
- Proteomics
Background:
- Protein isoprenylation is a post-translational modification targeting CaaX motifs.
- Existing methods struggle to reconcile in vitro/in silico findings with in vivo prenylation targets.
- Post-translational modifications beyond isoprenylation can affect CaaX protein function.
Purpose of the Study:
- To investigate the disconnect between predicted and experimentally verified in vivo CaaX protein isoprenylation targets.
- To identify novel CaaX sequences amenable to isoprenylation in vivo.
- To leverage a yeast growth assay for Ydj1p to discover new prenylation substrates.
Main Methods:
- Utilized a Saccharomyces cerevisiae Hsp40 Ydj1p-dependent growth assay.
- Identified CaaX sequences that permit Ydj1p isoprenylation in vivo.
- Selected against nonprenylatable and extensively modified sequences.
Main Results:
- Discovered novel CaaX sequences for Ydj1p isoprenylation, largely distinct from those identified using Ras-based reporters.
- Identified sequences not predicted by current isoprenylation algorithms.
- Demonstrated that yeast CaaX-type prenyltransferases recognize a broader range of sequences than previously understood.
Conclusions:
- The specificity of CaaX-type prenyltransferases is broader than traditionally defined.
- A larger set of proteins may be subject to isoprenylation.
- This expands our understanding of protein modification and potential targets in yeast and potentially other organisms.
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