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1.
Nat Plants ; 5(8): 879-889, 2019 08.
Article in English | MEDLINE | ID: mdl-31332310

ABSTRACT

Prochlorococcus is a major contributor to primary production, and globally the most abundant photosynthetic genus of picocyanobacteria because it can adapt to highly stratified low-nutrient conditions that are characteristic of the surface ocean. Here, we examine the structural adaptations of the photosynthetic thylakoid membrane that enable different Prochlorococcus ecotypes to occupy high-light, low-light and nutrient-poor ecological niches. We used atomic force microscopy to image the different photosystem I (PSI) membrane architectures of the MED4 (high-light) Prochlorococcus ecotype grown under high-light and low-light conditions in addition to the MIT9313 (low-light) and SS120 (low-light) Prochlorococcus ecotypes grown under low-light conditions. Mass spectrometry quantified the relative abundance of PSI, photosystem II (PSII) and cytochrome b6f complexes and the various Pcb proteins in the thylakoid membrane. Atomic force microscopy topographs and structural modelling revealed a series of specialized PSI configurations, each adapted to the environmental niche occupied by a particular ecotype. MED4 PSI domains were loosely packed in the thylakoid membrane, whereas PSI in the low-light MIT9313 is organized into a tightly packed pseudo-hexagonal lattice that maximizes harvesting and trapping of light. There are approximately equal levels of PSI and PSII in MED4 and MIT9313, but nearly twofold more PSII than PSI in SS120, which also has a lower content of cytochrome b6f complexes. SS120 has a different tactic to cope with low-light levels, and SS120 thylakoids contained hundreds of closely packed Pcb-PSI supercomplexes that economize on the extra iron and nitrogen required to assemble PSI-only domains. Thus, the abundance and widespread distribution of Prochlorococcus reflect the strategies that various ecotypes employ for adapting to limitations in light and nutrient levels.


Subject(s)
Photosystem I Protein Complex/metabolism , Prochlorococcus/metabolism , Cell Membrane/chemistry , Cell Membrane/metabolism , Light , Mass Spectrometry , Microscopy, Atomic Force , Photosynthesis , Photosystem I Protein Complex/chemistry , Protein Conformation
2.
Anal Biochem ; 439(1): 47-9, 2013 Aug 01.
Article in English | MEDLINE | ID: mdl-23583819

ABSTRACT

The isolation of complex macromolecular assemblies at the concentrations required for structural analysis represents a major experimental challenge. Here we present a method that combines the genetic power of site-specific recombination in order to selectively "tag" one or more components of a protein complex with affinity-based rapid filtration and a final step of capillary-based enrichment. This modified form of tandem affinity purification produces highly purified protein complexes at high concentrations in a highly efficient manner. The application of the method is demonstrated for the yeast Arp2/3 heptameric protein complex involved in mediating reorganization of the actin cytoskeleton.


Subject(s)
Chromatography, Affinity/methods , Filtration/methods , Proteins/isolation & purification , Actin-Related Protein 2-3 Complex/isolation & purification , Saccharomyces cerevisiae Proteins/isolation & purification
3.
J Mol Biol ; 321(4): 591-9, 2002 Aug 23.
Article in English | MEDLINE | ID: mdl-12206775

ABSTRACT

Mechanism-based inhibitors of enzymes, which mimic reactive intermediates in the reaction pathway, have been deployed extensively in the analysis of metabolic pathways and as candidate drugs. The inhibition of cytosine-[C5]-specific DNA methyltransferases (C5 MTases) by oligodeoxynucleotides containing 5-azadeoxycytidine (AzadC) and 5-fluorodeoxycytidine (FdC) provides a well-documented example of mechanism-based inhibition of enzymes central to nucleic acid metabolism. Here, we describe the interaction between the C5 MTase from Haemophilus haemolyticus (M.HhaI) and an oligodeoxynucleotide duplex containing 2-H pyrimidinone, an analogue often referred to as zebularine and known to give rise to high-affinity complexes with MTases. X-ray crystallography has demonstrated the formation of a covalent bond between M.HhaI and the 2-H pyrimidinone-containing oligodeoxynucleotide. This observation enables a comparison between the mechanisms of action of 2-H pyrimidinone with other mechanism-based inhibitors such as FdC. This novel complex provides a molecular explanation for the mechanism of action of the anti-cancer drug zebularine.


Subject(s)
Antineoplastic Agents/metabolism , Antineoplastic Agents/pharmacology , DNA Methylation/drug effects , DNA-Cytosine Methylases/metabolism , Pyrimidine Nucleosides/metabolism , Pyrimidine Nucleosides/pharmacology , Antineoplastic Agents/chemistry , Base Sequence , Crystallography, X-Ray , Cytidine/analogs & derivatives , DNA/chemistry , DNA/genetics , DNA/metabolism , DNA-Cytosine Methylases/chemistry , Haemophilus/enzymology , Hydrogen Bonding , Models, Molecular , Molecular Structure , Nucleic Acid Conformation , Protein Conformation , Pyrimidine Nucleosides/chemistry
4.
Nucleic Acids Res ; 29(7): 1565-73, 2001 Apr 01.
Article in English | MEDLINE | ID: mdl-11266559

ABSTRACT

The incorporation of potentially catalytic groups in DNA is of interest for the in vitro selection of novel deoxyribozymes. A series of 10 C5-modified analogues of 2'-deoxyuridine triphosphate have been synthesised that possess side chains of differing flexibility and bearing a primary amino or imidazole functionality. For each series of nucleotide analogues differing degrees of flexibility of the C5 side chain was achieved through the use of alkynyl, alkenyl and alkyl moieties. The imidazole function was conjugated to these C5-amino-modified nucleotides using either imidazole 4-acetic acid or imidazole 4-acrylic acid (urocanic acid). The substrate properties of the nucleotides (fully replacing dTTP) with TAQ polymerase during PCR have been investigated in order to evaluate their potential applications for in vitro selection experiments. 5-(3-Aminopropynyl)dUTP and 5-(E-3-aminopropenyl)dUTP and their imidazole 4-acetic acid- and urocanic acid-modified conjugates were found to be substrates. In contrast, C5-amino-modified dUTPs with alkane or Z-alkene linkers and their corresponding conjugates were not substrates. The incorporation of these analogues during PCR has been confirmed by inhibition of restriction enzyme digestion using XBAI and by mass spectrometry of the PCR products.


Subject(s)
Catalysis , Nucleic Acids/metabolism , Deoxyuracil Nucleotides/chemistry , Deoxyuracil Nucleotides/metabolism , Deoxyuridine/chemistry , Deoxyuridine/metabolism , Nucleic Acids/chemistry , Nucleic Acids/genetics , Oligonucleotides/chemistry , Oligonucleotides/genetics , Oligonucleotides/metabolism , Polymerase Chain Reaction , Substrate Specificity , Taq Polymerase/metabolism
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