Transit peptide diversity and divergence: A global analysis of plastid targeting signals
- 17 September 2007
- Vol. 29 (10), 1048-1058
- https://doi.org/10.1002/bies.20638
Abstract
Proteins are targeted to plastids by N-terminal transit peptides, which are recognized by protein import complexes in the organelle membranes. Historically, transit peptide properties have been defined from vascular plant sequences, but recent large-scale genome sequencing from the many plastid-containing lineages across the tree of life has provided a much broader representation of targeted proteins. This includes the three lineages containing primary plastids (plants and green algae, rhodophytes and glaucophytes) and also the seven major lineages that contain secondary plastids, “secondhand” plastids derived through eukaryotic endosymbiosis. Despite this extensive spread of plastids throughout Eukaryota, an N-terminal transit peptide has been maintained as an essential plastid-targeting motif. This article provides the first global comparison of transit peptide composition and summarizes conservation of some features, the loss of an ancestral motif from the green lineages including plants, and modifications to transit peptides that have occurred in secondary and even tertiary plastids. BioEssays 29:1048–1058, 2007.Keywords
This publication has 93 references indexed in Scilit:
- Protein targeting into complex diatom plastids: functional characterisation of a specific targeting motifPlant Molecular Biology, 2007
- Analysis of Euglena gracilis Plastid-Targeted Proteins Reveals Different Classes of Transit SequencesEukaryotic Cell, 2006
- Complete nucleotide sequence of the chlorarachniophyte nucleomorph: Nature’s smallest nucleusProceedings of the National Academy of Sciences, 2006
- The molecular chaperone Hsp90 delivers precursor proteins to the chloroplast import receptor Toc64The EMBO Journal, 2006
- A Tertiary Plastid Uses Genes from Two EndosymbiontsJournal of Molecular Biology, 2006
- Evaluating Support for the Current Classification of Eukaryotic DiversityPLoS Genetics, 2006
- Complex Protein Targeting to Dinoflagellate PlastidsJournal of Molecular Biology, 2005
- WebLogo: A Sequence Logo Generator: Figure 1Genome Research, 2004
- Genome sequence of the human malaria parasite Plasmodium falciparumNature, 2002
- ChloroP, a neural network‐based method for predicting chloroplast transit peptides and their cleavage sitesProtein Science, 1999