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1.
Parasitology ; 142(2): 352-62, 2015 Feb.
Article in English | MEDLINE | ID: mdl-25160925

ABSTRACT

Certain trypanosomatids co-evolve with an endosymbiotic bacterium in a mutualistic relationship that is characterized by intense metabolic exchanges. Symbionts were able to respire for up to 4 h after isolation from Angomonas deanei. FCCP (carbonyl cyanide-4-(trifluoromethoxy)phenylhydrazone) similarly increased respiration in wild-type and aposymbiotic protozoa, though a higher maximal O2 consumption capacity was observed in the symbiont-containing cells. Rotenone, a complex I inhibitor, did not affect A. deanei respiration, whereas TTFA (thenoyltrifluoroacetone), a complex II activity inhibitor, completely blocked respiration in both strains. Antimycin A and cyanide, inhibitors of complexes III and IV, respectively, abolished O2 consumption, but the aposymbiotic protozoa were more sensitive to both compounds. Oligomycin did not affect cell respiration, whereas carboxyatractyloside (CAT), an inhibitor of the ADP-ATP translocator, slightly reduced O2 consumption. In the A. deanei genome, sequences encoding most proteins of the respiratory chain are present. The symbiont genome lost part of the electron transport system (ETS), but complex I, a cytochrome d oxidase, and FoF1-ATP synthase remain. In conclusion, this work suggests that the symbiont influences the mitochondrial respiration of the host protozoan.


Subject(s)
Bacteria/classification , Mitochondria/metabolism , Oxygen Consumption/physiology , Symbiosis/physiology , Trypanosomatina/microbiology , Trypanosomatina/physiology , Bacteria/metabolism , Biological Evolution , Electron Transport/genetics , Electron Transport/physiology , Gene Expression Regulation , Trypanosomatina/genetics
2.
Int J Parasitol ; 43(7): 571-7, 2013 Jun.
Article in English | MEDLINE | ID: mdl-23562935

ABSTRACT

Strigomonas culicis is a monoxenous trypanosomatid that co-evolves with a symbiotic bacterium in a mutualistic relationship that is characterized by intense metabolic exchanges between both partners. S. culicis infects and colonizes the Aedes aegypti mosquito midgut, reaches its hemocoel and then invades the salivary glands. An artificial aposymbiotic strain is unable to colonize insects, reinforcing the idea that the bacterium influences the protozoan surface composition and cell interaction. Here, we report the characterization of the hydrolytic activity of ecto-phosphatases evaluated in symbiont-bearing and aposymbiotic strains of S. culicis by incubating the protozoa with p-nitrophenyl phosphate (pNPP) at different pH levels, in the presence of phosphatase inhibitors, and with several divalent metals. The symbiont-bearing and aposymbiotic cells differ in their ecto-phosphatase enzymes, based on their activities and specificities. Furthermore, the ability of the protozoan to bind to the mosquito midgut and salivary glands was impaired by ecto-phosphatase inhibition. Taken together, our data suggest that the symbiont influences the host protozoan ecto-phosphatase activity and indicate a possible role of this enzyme during mosquito tissue colonization by S. culicis.


Subject(s)
Aedes/parasitology , Bacteria/growth & development , Bacterial Physiological Phenomena , Phosphoric Monoester Hydrolases/metabolism , Symbiosis , Trypanosomatina/microbiology , Trypanosomatina/physiology , Animals , Female , Gastrointestinal Tract/parasitology , Salivary Glands/parasitology , Trypanosomatina/enzymology
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