Complete nucleotide sequence of the chlorarachniophyte nucleomorph: Nature’s smallest nucleus
- 20 June 2006
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 103 (25), 9566-9571
- https://doi.org/10.1073/pnas.0600707103
Abstract
The introduction of plastids into different heterotrophic protists created lineages of algae that diversified explosively, proliferated in marine and freshwater environments, and radically altered the biosphere. The origins of these secondary plastids are usually inferred from the presence of additional plastid membranes. However, two examples provide unique snapshots of secondary-endosymbiosis-in-action, because they retain a vestige of the endosymbiont nucleus known as the nucleomorph. These are chlorarachniophytes and cryptomonads, which acquired their plastids from a green and red alga respectively. To allow comparisons between them, we have sequenced the nucleomorph genome from the chlorarachniophyte Bigelowiella natans: at a mere 373,000 bp and with only 331 genes, the smallest nuclear genome known and a model for extreme reduction. The genome is eukaryotic in nature, with three linear chromosomes containing densely packed genes with numerous overlaps. The genome is replete with 852 introns, but these are the smallest introns known, being only 18, 19, 20, or 21 nt in length. These pygmy introns are shown to be miniaturized versions of normal-sized introns present in the endosymbiont at the time of capture. Seventeen nucleomorph genes encode proteins that function in the plastid. The other nucleomorph genes are housekeeping entities, presumably underpinning maintenance and expression of these plastid proteins. Chlorarachniophyte plastids are thus serviced by three different genomes (plastid, nucleomorph, and host nucleus) requiring remarkable coordination and targeting. Although originating by two independent endosymbioses, chlorarachniophyte and cryptomonad nucleomorph genomes have converged upon remarkably similar architectures but differ in many molecular details that reflect two distinct trajectories to hypercompaction and reduction.Keywords
This publication has 43 references indexed in Scilit:
- Genome of the Host-Cell Transforming Parasite Theileria annulata Compared with T. parvaScience, 2005
- Protein targeting to the chloroplasts of photosynthetic eukaryotes: getting there is half the funBiochimica et Biophysica Acta (BBA) - Molecular Cell Research, 2005
- Genome sequence of the ultrasmall unicellular red alga Cyanidioschyzon merolae 10DNature, 2004
- Chlamydomonas reinhardtii Genome Project. A Guide to the Generation and Use of the cDNA InformationPlant Physiology, 2003
- The function of genomes in bioenergetic organellesPhilosophical Transactions Of The Royal Society B-Biological Sciences, 2003
- Genome sequence of the human malaria parasite Plasmodium falciparumNature, 2002
- Genome sequence and gene compaction of the eukaryote parasite Encephalitozoon cuniculiNature, 2001
- Pseudogenes in yeast?Cell, 1987
- Chromosome Segregation in Mitosis and MeiosisAnnual Review of Cell Biology, 1985
- Protozoa as Hosts for Endosymbioses and the Conversion of Symbionts into Organelles1,2The Journal of Protozoology, 1985