Mechanism of Protein Targeting to the Chlorarachniophyte Plastids and the Evolution of Complex Plastids with Four Membranes — A Hypothesis
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[1] Y Van de Peer,et al. Substitution rate calibration of small subunit ribosomal RNA identifies chlorarachniophyte endosymbionts as remnants of green algae. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[2] J. Rothman,et al. Protein Sorting by Transport Vesicles , 1996, Science.
[3] S. Schwartzbach,et al. A soluble protein is imported into Euglena chloroplasts as a membrane-bound precursor. , 1996, The Plant cell.
[4] W. Martin,et al. A nuclear gene of eubacterial origin in Euglena gracilis reflects cryptic endosymbioses during protist evolution. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[5] D. Bhattacharya,et al. THE PHYLOGENY OF PLASTIDS: A REVIEW BASED ON COMPARISONS OF SMALL‐SUBUNIT RIBOSOMAL RNA CODING REGIONS , 1995 .
[6] S. Schwartzbach,et al. The Polyprotein Precursor to the Euglena Light-harvesting Chlorophyll a/b-binding Protein Is Transported to the Golgi Apparatus Prior to Chloroplast Import and Polyprotein Processing (*) , 1995, The Journal of Biological Chemistry.
[7] M. Melkonian,et al. Comparisons of nuclear-encoded small-subunit ribosomal RNAs reveal the evolutionary position of the Glaucocystophyta. , 1995, Molecular biology and evolution.
[8] G. McFadden,et al. Molecular phylogeny of Chlorarachniophytes based on plastid rRNA and rbcL sequences , 1995 .
[9] M. Melkonian,et al. Molecular Evolutionary Analyses of Nuclear‐Encoded Small Subunit Ribosomal RNA Identify an Independent Rhizopod Lineage Containing the Euglyphina and the Chlorarachniophyta , 1995, The Journal of eukaryotic microbiology.
[10] M. Reith. Molecular Biology of Rhodophyte and Chromophyte Plastids , 1995 .
[11] U. Maier,et al. How to Evolve a Complex Plastid? ‐ A Hypothesis , 1994 .
[12] T. Cavalier-smith,et al. Chimeric conundra: are nucleomorphs and chromists monophyletic or polyphyletic? , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[13] Detlef D. Leipe,et al. The stramenopiles from a molecular perspective 16S-like rRNA sequences from Labyrinthuloides minuta and Cafeteria roenbergensis , 1994 .
[14] G. McFadden,et al. Evidence that an amoeba acquired a chloroplast by retaining part of an engulfed eukaryotic alga. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[15] L. Spremulli,et al. Isolation and characterization of cDNA clones for chloroplast translational initiation factor-3 from Euglena gracilis. , 1994, The Journal of biological chemistry.
[16] S. Schwartzbach,et al. The presequence of Euglena LHCPII, a cytoplasmically synthesized chloroplast protein, contains a functional endoplasmic reticulum-targeting domain. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[17] P. Sitte. Symbiogenetic evolution of complex cells and complex plastids. , 1993, European journal of protistology.
[18] H. Strotmann,et al. Structure of the nuclear encoded γ subunit of CF0CF1 of the diatom Odontella sinensis including its presequence , 1993, FEBS letters.
[19] G. McFadden. Second-hand Chloroplasts: Evolution of Cryptomonad Algae , 1993 .
[20] J. M. Whatley. The endosymbiotic origin of chloroplasts , 1993 .
[21] T. Cavalier-smith. The number of symbiotic origins of organelles. , 1992, Bio Systems.
[22] S. P. Gibbs,et al. EVIDENCE THAT THE NUCLEOMORPHS OF CHLORARACHNION REPTANS (CHLORARACHNIOPHYCEAE) ARE VESTIGIAL NUCLEI: MORPHOLOGY, DIVISION AND DNA‐DAPI FLUORESCENCE 1 , 1989 .
[23] D. Hibberd,et al. CYTOLOGY AND ULTRASTRUCTURE OF CHLORARACHNION REPTANS (CHLORARACHNIOPHYTA DIVISIO NOVA, CHLORARACHNIOPHYCEAE CLASSIS NOVA) 1 , 1984 .
[24] T. Cavalier-smith. The origins of plastids , 1982 .
[25] S. P. Gibbs. The Chloroplast Endoplasmic Reticulum: Structure, Function, and Evolutionary Significance , 1981 .
[26] J. M. Whatley,et al. From extracellular to intracellular: the establishment of mitochondria and chloroplasts , 1979, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[27] S. P. Gibbs,et al. The chloroplasts of Euglena may have evolved from symbiotic green algae , 1978 .