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Clostridium septicum alpha-toxin is active against the parasitic protozoan Toxoplasma gondii and targets members of the SAG family of glycosylphosphatidylinositol-anchored surface proteins.

As is the case with many other protozoan parasites, glycosylphosphatidylinositol (GPI)-anchored proteins dominate the surface of Toxoplasma gondii tachyzoites. The mechanisms by which T. gondii GPI-anchored proteins are synthesized and transported through the unusual triple-membrane structure of the parasite pellicle to the plasma membrane remain largely unknown. As a first step in developing tools to study these processes, we show here that Clostridium septicum alpha-toxin, a pore-forming toxin that targets GPI-anchored protein receptors on the surface of mammalian cells, is active against T. gondii tachyzoites (50% effective concentration, 0.2 nM). Ultrastructural studies reveal that a tight physical connection between the plasma membrane and the underlying membranes of the inner membrane complex is locally disrupted by toxin treatment, resulting in a massive outward extension of the plasma membrane and ultimately lysis of the parasite. Toxin treatment also causes swelling of the parasite endoplasmic reticulum, providing the first direct evidence that alpha-toxin is a vacuolating toxin. Alpha-toxin binds to several parasite GPI-anchored proteins, including surface antigen 3 (SAG3) and SAG1. Interestingly, differences in the toxin-binding profiles between the virulent RH and avirulent P strain were observed. Alpha-toxin may prove to be a powerful experimental tool for molecular genetic analysis of GPI anchor biosynthesis and GPI-anchored protein trafficking in T. gondii and other susceptible protozoa.

Animals↗

Posttranslational control of the algT (algU)-encoded sigma22 for expression of the alginate regulon in Pseudomonas aeruginosa and localization of its antagonist proteins MucA and MucB (AlgN).

Pseudomonas aeruginosa strains associated with cystic fibrosis are often mucoid due to the copious production of alginate, an exopolysaccharide and virulence factor. Alginate gene expression is transcriptionally controlled by a gene cluster at 68 min on the chromosome: algT (algU)-mucA-mucB (algN)-mucC (algM)-mucD (algY). The algT gene encodes a 22-kDa alternative sigma factor (sigma22) that autoregulates its own promoter (PalgT) as well as the promoters of algR, algB, and algD. The other genes in the algT cluster appear to regulate the expression or activity of sigma22. The goal of this study was to better understand the functional interactions between sigma22 and its antagonist regulators during alginate production. Nonmucoid strain PAO1 was made to overproduce alginate (indicating high algD promoter activity) through increasing sigma22 in the cell by introducing a plasmid clone containing algT from mucA22(Def) strain FRD1. However, the bacterial cells remained nonmucoid if the transcriptionally coupled mucB on the clone remained intact. This suggested that a stoichiometric relationship between sigma22 and MucB may be required to control sigma factor activity. When the transcription and translational initiation of algT were measured with lacZ fusions, alginate production correlated with only about a 1.2- to 1.7-fold increase in algT-lacZ activity, respectively. An algR-lacZ transcriptional fusion showed a 2.8-fold increase in transcription with alginate production under the same conditions. A Western blot analysis of total cell extracts showed that sigma22 was approximately 10-fold higher in strains that overproduced alginate, even though algT expression increased less than 2-fold. This suggested that a post-transcriptional mechanism may exist to destabilize sigma22 in order to control certain sigma22-dependent promoters like algD. By Western blotting and phoA fusion analyses, the MucB antagonist of sigma22 was found to localize to the periplasm of the cell. Similar experiments suggest that MucA localizes to the inner membrane via one transmembrane domain with amino- and carboxy-terminal domains in the cytoplasm and periplasm, respectively. These data were used to propose a model in which MucB-MucA-sigma22 interact via an inner membrane complex that controls the stability of sigma22 protein in order to control alginate biosynthesis.

Alginates↗

Interactions between the outer membrane ferric citrate transporter FecA and TonB: studies of the FecA TonB box.

Both induction of transcription of the ferric citrate transport genes and transport of ferric citrate by the Escherichia coli outer membrane receptor FecA require energy derived from the proton motive force (PMF) of the inner membrane. The energy is transduced to FecA by the inner membrane complex, TonB, ExbB, and ExbD. Region 160 of TonB and the conserved TonB box of other TonB-dependent receptors are implicated as sites of interaction. In the present study, the postulated TonB box (D(80)A(81)L(82)T(83)V(84)) of FecA was deleted in frame, with a subsequent loss of both FecA functions. DALTV of FecA could be functionally replaced with the core TonB boxes of FhuA (DTITV) and FepA (DTIVV). Each residue of the TonB box of FecA was sequentially replaced with cysteine residues, and only the D80C replacement showed a loss (reduction) of both FecA functions. A physical interaction between TonB and FecA was demonstrated using both in vivo site-specific disulfide bond cross-linking and nonspecific formaldehyde (FA) cross-linking. Pairwise combinations of FecA (DALTV)/Cys substitutions were cross-linked via disulfide bond formation with TonBQ160C, TonBQ162C, and TonBY163C. Unexpectedly, this cross-linking was not enhanced by substrate (ferric citrate). In contrast, the TonB-FecA interaction was enhanced by ferric citrate in the FA-cross-linking assay. Energy derived from the PMF was not required for the TonB-FecA interaction in either the disulfide- or FA-cross-linking assay. TonB/CysExbB/ExbD(D25N) was still able to cross-link with the FecA (DALTV)/Cys derivatives in a tonB tolQ background, even though ExbD25N renders the TonB/ExbBD complex nonfunctional (V. Braun, S. Gaisser, C. Herrmann, K. Kampfenkel, H. Killmann, and I. Traub, J. Bacteriol. 178:2836-2845, 1996). TonB cross-linked to FecA via FA was not inhibited by either carbonylcyanide-m-chlorophenylhydrazone or 1 mM 2,4-dinitrophenol, which dissipate the electrochemical potential of the cytoplasmic membrane and disrupt both FecA functions. The studies shown here demonstrate the significance of the TonB box for FecA functions and are consistent with the view that it is the structure and not the sequence of the TonB box that is important for activity. Demonstrated here for the first time is the physical interaction of TonB and FecA, which is enhanced by ferric citrate.

Bacterial Proteins↗

Microtubules, but not actin filaments, drive daughter cell budding and cell division in Toxoplasma gondii.

We have used drugs to examine the role(s) of the actin and microtubule cytoskeletons in the intracellular growth and replication of the intracellular protozoan parasite, Toxoplasma gondii. By using a 5 minute infection period and adding the drugs shortly after entry we can treat parasites at the start of intracellular development and 6-8 hours prior to the onset of daughter cell budding. Using this approach we found, somewhat surprisingly, that reagents that perturb the actin cytoskeleton in different ways (cytochalasin D, latrunculin A and jasplakinolide) had little effect on parasite replication although they had the expected effects on the host cells. These actin inhibitors did, however, disrupt the orderly turnover of the mother cell organelles leading to the formation of a large residual body at the posterior end of each pair of budding parasites. Treating established parasite cultures with the actin inhibitors blocked ionophore-induced egression of tachyzoites from the host cells, demonstrating that intracellular parasites were susceptible to the effects of these inhibitors. In contrast, the anti-microtubule drugs oryzalin and taxol, and to a much lesser extent nocodazole, which affect microtubule dynamics in different ways, blocked parasite replication by disrupting the normal assembly of the apical conoid and the microtubule inner membrane complex (IMC) in the budding daughter parasites. Centrosome replication and assembly of intranuclear spindles, however, occurred normally. Thus, daughter cell budding per se is dependent primarily on the parasite microtubule system and does not require a dynamic actin cytoskeleton, although disruption of actin dynamics causes problems in the turnover of parasite organelles.

Actins↗

[The role of the sarcocyst surface apparatus in utilizing the host cell muscle structures].

The participation of the sarcocyst surface apparatus (SSA) of two sarcosporidian species, Sarcocystis muris and S. ovifelis (Coccidia, Sporozoa, Apicomplexa), in degradation of disrupted host cell substances was investigated. After degradation, these substances are transported through the membrane of the SSA to the sarcocyst ground substance (GS), but this process cannot be regarded as endocytosis. At first, the transported substances were found in SSA pits in the form of fibrillar structures. Later on, these were seen as twisted up granules. In some cases, such granules restore their fibrillar shape, penetrate through the SSA membrane and appear in the sarcocyst GS. In other cases, the small granules may be released from SSA pits directly to the sarcocyst GS. Besides, two SSA primembrane layers were seen to disappear during the transportation of host cell substances. In addition, multimembrane structures (membranous whorls) were first demonstrated between the plasmalemma and inner membrane complex of the zoite pellicle. Multimembrane structures were found, in addition, in the zoite cytoplasm in connection with micronemes. These structures resembling chloroplast granae of thylakoids may presumably fill the gap in membrane pool of the SSA contributing to its renewal.

Animals↗

Ditercalinium, a nucleic acid binder, inhibits the respiratory chain of isolated mammalian mitochondria.

Ditercalinium (a 7H-pyridocarbazole dimer) has been designed to bisintercalate into double-stranded DNA with high affinity. In this paper we provide evidence for inhibitory interactions of ditercalinium with electron transport in isolated rat liver mitochondria. It is shown that ditercalinium probably inhibits the electron transfer between membrane cytochrome c and oxygen (cytochrome c oxidase activity) and the electron transfer between the matrix side of inner membrane (Complexes II and III) and membrane cytochrome c. The level of inhibition of the last oxidation step of the respiratory chain appears to be highly dependent on the drug/membrane diphosphatidylglycerol ratio. It is suggested that the mechanism of cytochrome c oxidase inhibition by ditercalinium could be due to the complexation with the diphosphatidylglycerol environment essential for its activity rather than to a drug-enzyme direct interaction. This hypothesis is strengthened by experiments with pure cytochrome oxidase. Therefore, the interaction of ditercalinium with diphosphatidylglycerol may be envisaged as one factor, among others, responsible for its hepatotoxicity.

Animals↗

The "microassembly" of integral membrane proteins: applications & implications.

We summarize some evidence in favor of the view that the transmembrane region of many, perhaps most integral membrane proteins is made up of an aggregate of hydrophobic alpha-helices, each of which behaves as an autonomous folding domain. Folding of these proteins is seen as a two-stage process during which individual transmembrane helices first form in response to local interactions between the polypeptide and the aqueous and lipid phases, and then pack without extensive rearrangement to yield the three-dimensional structure. This two-stage model is supported by examination of those few structures that are known to a sufficient resolution, by experiments in which functional integral membrane proteins are "microassembled" from separately folded fragments, and by the existence in the inner membranes of organelles of a large number of very small integral subunits, often barely longer than a single transmembrane alpha-helix. We describe application of microassembly to establishing the path of the polypeptide in the tertiary structure of bacteriorhodopsin by neutron diffraction and we briefly discuss its possible role in the biosynthesis of organelle inner membrane complexes and its implications for model building from sequence data.

Amino Acid Sequence↗

An ultrastructural study of the asexual development of a presumed Isospora sp. in mononuclear, phagocytic cells of the evening grosbeak (Hesperiphona vespertina).

Merozoites of a presumed Isospora species were invested by a close-fitting vacuole of host-cell origin following their entry into mononuclear, phagocytic cells of the evening grosbeak (Hesperiphona vespertina). Here, the merozoites transformed into trophozoites that were bound by a plasmalemma, beneath which lay short segments of the inner membrane complex from the pellicle of the former merozoite. Nuclear division followed and in schizonts of various sizes (probably representing several asexual generations), merozoite buds appeared around the peripheral cytoplasm. Merozoites also were seen forming within the internal cytoplasm of some schizonts. A conical, anterior projection of the nucleus containing microtubules (the centrocone) and an adjacent pair of centrioles often were seen in forming merozoites. Some maturing merozoites lay singly within distended parasitophorous vacuoles in the cytoplasm of the phagocytic cells, whereas in other vacuoles, groups of merozoites were seen. In addition to the well-documented "standard" apicomplexan features, merozoites of the Isospora sp. contained two spheroidal vesicles closely invested by several layers of membrane, which lay anterior to the nucleus near a Golgi complex. The merozoites possessed about 26 pellicular microtubules, three polar rings, two or three rhoptries, and two or more micropores. Two types of merozoites were seen; one, electron-dense and the second, considerably less so. In certain of their ultrastructural features, the merozoites of the Isospora sp. in the grosbeak resemble more closely the bradyzoites of many of the heteroxenous, isosporoid species than the merozoites of the conventional, gut-based species of Isospora and Eimeria.

Animals↗

[The possible pathways of substance transport in the muscle cysts of 2 species of Sarcosporidia (Sarcocystis, Apicomplexa, Sporozoa)].

The present work is a sequel of our previous cytological investigations of the cyst-forming coccidia of the genus Sarcocystis (reported elsewhere), now performed on two species from different hosts: S. muris (mouse) and Sarcocystis sp. (water buffalo). Acid phosphatase is synthesized in the endoplasmic reticulum of cystic zoites, its activity being seen in particular in the microenemes. As was established earlier (Radchenko, 1991b), these organelles are extended regions of the smooth endoplasmic reticulum channels and are capable of separating from the latter to be aligned eventually along the pellicle of the parasite. Further on, micronemes are seen to attach to the inner membrane complex of the cystic zoites, so that the ductula of micronemes get into contact with the complex membranes. Just after this, the membranes are seen disassembled in the sites around this contact. The ductula of micronemes appear to be connected with the plasmalemma, i.e, the outer pellicle membrane, and protrusions of the plasmalemma appeared in the sites of these connections. Acid phosphatase (and presumably other substances contained in the micronemes) are poured into the plasmalemmal protrusions to form vesicles. In their turn, these vesicles are separated outside from the plasmalemma to move towards the sarcocyst subwall layer along the filamentous structures found in the septae of the sarcocyst ground substance. Then the membranes of the vesicles disappear, and phosphatase activity is observed in the cyst wall.

Acid Phosphatase↗

[The localization and functional significance of arylsulfatases in parasitic sarcosporidian protozoa in the tissue-cyst life cycle phase].

The hydrolytic enzymes arylsulphatases (AS) were detected in developing tissue cysts of Sarcocystis ovifelis, using two methods: the Goldfischer lead technique, with two different pH values-5.5 (AS-A) and 4.2 (AS-B), and the Hopsu-Havu barium technique (Gayer, 1974). The enzymatic activity was identified by the presence of an electron dense finely granulated precipitation. In cyst cells, lead sulphate precipitation was spotted only in the inner membrane complex (IC) of the pellicle, whereas barium sulphate marked, in addition, the plasma membrane. Besides, AS activity was detected in the endoplasmic reticulum, Golgi complex, lysosomes and micronemes of cyst cells. Of interest is the finding of AS in the outer membrane of IC and matrix of pellicular evaginations. In the cyst ground substance (CGS) of S. ovifelis AS activity is confined to the membrane and matrix of transport vesicles, originating from cyst cell pellicle evaginations. These cystic vesicles carry enzymes from the places of their synthesis, in the cyst cells, to the tissue cyst periphery near the cyst wall. In the CGS, the obvious precipitations of lead and barium sulphate, respectively, are seen around some cyst cells being in the state of destroying due to natural death, and around so-called apoptotic-like bodies made from the destroyed cells. AS activity is seen both in the cyst wall and in vesicles separating from the wall ("wall vesicles") that find eventually their way in the cytoplasm of infected muscle cells, the granulation being observed around destroyed organelles of such cells. The investigated dynamics of AS movement, by means of the transport cystic and wall vesicles, extends general knowledge of the distant metabolic interaction between cells of the host and the parasite in tissue cysts of Sarcocystis spp.

Animals↗

Mature DIABLO/Smac is produced by the IMP protease complex on the mitochondrial inner membrane.

DIABLO/Smac is a mitochondrial protein that can promote apoptosis by promoting the release and activation of caspases. To do so, DIABLO/Smac must first be processed by a mitochondrial protease and then released into the cytosol, and we show this in an intact cellular system. We propose that the precursor form of DIABLO/Smac enters the mitochondria through a stop-transfer pathway and is processed to its active form by the inner membrane peptidase (IMP) complex. Catalytic subunits of the mammalian IMP complex were identified based on sequence conservation and functional complementation, and the novel sequence motif RX(5)P in Imp1 and NX(5)S in Imp2 distinguish the two catalytic subunits. DIABLO/Smac is one of only a few specific proteins identified as substrates for the IMP complex in the mitochondrial intermembrane space.

Amino Acid Motifs↗

Insertion of proteins into the inner membrane of mitochondria: the role of the Oxa1 complex.

The inner mitochondrial membrane harbors a large number of proteins that display a wide range of topological arrangements. The majority of these proteins are encoded in the cell's nucleus, but a few polytopic proteins, all subunits of respiratory chain complexes are encoded by the mitochondrial genome. A number of distinct sorting mechanisms exist to direct these proteins into the mitochondrial inner membrane. One of these pathways involves the export of proteins from the matrix into the inner membrane and is used by both proteins synthesized within the mitochondria, as well as by a subset of nuclear encoded proteins. Prior to embarking on the export pathway, nuclear encoded proteins using this sorting route are initially imported into the mitochondrial matrix from the cytosol, their site of synthesis. Protein export from the matrix into the inner membrane bears similarities to Sec-independent protein export in bacteria and requires the function of the Oxa1 protein. Oxa1 is a component of a general protein insertion site in yeast mitochondrial inner membrane used by both nuclear and mitochondrial DNA encoded proteins. Oxa1 is a member of the conserved Oxa1/YidC/Alb3 protein family found throughout prokaryotes throughout eukaryotes (where it is found in mitochondria and chloroplasts). The evidence to demonstrate that the Oxa1/YidC/Alb3 protein family represents a novel evolutionarily conserved membrane insertion machinery is reviewed here.

Binding Sites↗

Protein import into mitochondria.

Mitochondria import many hundreds of different proteins that are encoded by nuclear genes. These proteins are targeted to the mitochondria, translocated through the mitochondrial membranes, and sorted to the different mitochondrial subcompartments. Separate translocases in the mitochondrial outer membrane (TOM complex) and in the inner membrane (TIM complex) facilitate recognition of preproteins and transport across the two membranes. Factors in the cytosol assist in targeting of preproteins. Protein components in the matrix partake in energetically driving translocation in a reaction that depends on the membrane potential and matrix-ATP. Molecular chaperones in the matrix exert multiple functions in translocation, sorting, folding, and assembly of newly imported proteins.

Adenosine Triphosphatases↗

Functional cooperation and separation of translocators in protein import into mitochondria, the double-membrane bounded organelles.

Nearly all mitochondrial proteins are synthesized in the cytosol and subsequently imported into mitochondria with the aid of translocators: the TOM complex in the outer membrane, and the TIM23 and TIM22 complexes in the inner membrane. The TOM complex and the TIM complexes cooperate to achieve efficient transport of proteins to the matrix or into the inner membrane and several components, including Tom22, Tim23, Tim50 and small Tim proteins, mediate functional coupling of the two translocator systems. The TOM complex can be disconnected from the TIM systems and their energy sources (ATP and DeltaPsi), however, using alternative mechanisms to achieve vectorial protein translocation across the outer membrane

Adenosine Triphosphate↗

A cooperative action of the ATP-dependent import motor complex and the inner membrane potential drives mitochondrial preprotein import.

The import of mitochondrial preproteins requires an electric potential across the inner membrane and the hydrolysis of ATP in the matrix. We assessed the contributions of the two energy sources to the translocation driving force responsible for movement of the polypeptide chain through the translocation channel and the unfolding of preprotein domains. The import-driving activity was directly analyzed by the determination of the protease resistances of saturating amounts of membrane-spanning translocation intermediates. The ability to generate a strong translocation-driving force was solely dependent on the activity of the ATP-dependent import motor complex in the matrix. For a sustained import-driving activity on the preprotein in transit, an unstructured N-terminal segment of more than 70 to 80 amino acid residues was required. The electric potential of the inner membrane was required to maintain the import-driving activity at a high level. The electrophoretic force of the potential exhibited only a limited capacity to unfold preprotein domains. We conclude that the membrane potential increases the probability of a dynamic interaction of the preprotein with the import motor. Polypeptide translocation and unfolding are mainly driven by the inward-directed translocation activity based on the functional cooperation of the import motor components.

Adenosine Triphosphate↗

Crystal structure of yeast mitochondrial peripheral membrane protein Tim44p C-terminal domain.

The protein transports from the cell cytosol to the mitochondria matrix are carried out by the translocase of the outer membrane (TOM) complex and the translocase of the inner membrane (TIM) complexes. Tim44p is an essential mitochondrial peripheral membrane protein and a major component of TIM23 translocon. Tim44p can tightly associate with the inner mitochondrial membrane. To investigate the mechanism by which Tim44p functions in the TIM23 translocon to deliver the mitochondrial protein precursors, we have determined the crystal structure of the yeast Tim44p C-terminal domain to 3.2A resolution using the MAD method. The Tim44p C-terminal domain forms a monomer in the crystal structure and contains six alpha-helices and four antiparallel beta-strands. A large hydrophobic pocket was identified on the Tim44p structure surface. The N-terminal helix A1 is positively charged and the helix A1 protrudes out from the Tim44p main body.

Amino Acid Sequence↗

Preliminary crystallographic studies of yeast mitochondrial peripheral membrane protein Tim44p.

Protein translocations across mitochondrial membranes play critical roles in mitochondrion biogenesis. Protein transport from the cell cytosol to the mitochondrial matrix is carried out by the translocase of the outer membrane (TOM) complex and the translocase of the inner membrane (TIM) complexes. Tim44p is an essential mitochondrial peripheral membrane protein and a major component of the TIM23 translocon. To investigate the mechanism by which Tim44p functions in the TIM23 translocon to deliver the mitochondrial protein precursors, the yeast Tim44p was crystallized. The crystals diffract to 3.2 A using a synchrotron X-ray source and belong to space group P6(3)22, with unit-cell parameters a = 124.25, c = 77.83 A. There is one Tim44p molecule in one asymmetric unit, which corresponds to a solvent content of approximately 43%. Structure determination by MAD methods is under way.

Cloning, Molecular↗