The occurrence of flagellated protozoa as internal parasites in plants was first reported by Lafont in 1909 who found them in the latex of Euphorbia pilulifera in Mauritius (78). From the start, hemipterans were suspected of transmitting these plant parasites. However, as described in this chapter, only in a few instances the vector role of phytophagous bugs has been experimentally evidenced.
ABSTRACTMorphological, cultural, and biochemical criteria that have been used in describing lower trypanosomatids, genera Blastocrithidia, Crithidia, Leptomonas, Herpetomonas, Rhynchoidomonas, and Phytomonas are reviewed. Kinetoplast structure, carbohydrate utilization, electrophoretic mobilities of isoenzymes, and kDNA fingerprinting are among the recommended criteria for species differentiation. Temperature, pH, and osmolarity tolerance are useful growth parameters. Generic placement may be assisted by the determination of nitrogenous excretion products and ornithine‐arginine cycle enzymes.
ABSTRACT. Flagellar cysts of Blastocrithidia triatomae form from active flagellates by diminution in size. The pellicular microtubules disappear. The inner layer of the cell membrane thickens progressively as the organism shrinks. The fully formed cyst has an electrondense layer that corresponds to the outer layer of the unit membrane. An electron‐lucent layer is approximately twice the thickness of the middle layer of the unit membrane. Inside that is a 92 nm layer that may represent the cytoplasm. The nuclear content is in the form of whorled bundles of 10–15 nm fibrils. The kinetoplast was not seen in electron micrographs of cysts.
ABSTRACT. Flagellar cysts of Blastocrithidia triatomae form from active flagellates by diminution in size. The pellicular microtubules disappear. The inner layer of the cell membrane thickens progressively as the organism shrinks. The fully formed cyst has an electrondense layer that corresponds to the outer layer of the unit membrane. An electron‐lucent layer is approximately twice the thickness of the middle layer of the unit membrane. Inside that is a 92 nm layer that may represent the cytoplasm. The nuclear content is in the form of whorled bundles of 10–15 nm fibrils. The kinetoplast was not seen in electron micrographs of cysts.
ABSTRACTBlastocrithidia triatomae, a species very resistant to cultivation in conventional media, was successfully grown in association with cultured lepidopteran cells. The cultured flagellates were identical to those in the insect host, including the presence of characteristic cysts on the flagellum. Growth rate was better for cultures in the Heliothis zea medium than in IPL‐45 medium or modified McConnell's medium.
The subkingdom Protozoa now inclues over 65,000 named species, of which over half are fossil and approximately 10,000 are parasitic. Among living species, this includes approximately 250 parasitic and 11,300 free-living sarcodines (of which approximately 4,600 are foraminiferids); approximately 1,8000 parasitic and 5,100 free-living flagellates; approximately 5,600 parasitic "Sporozoa" (including Apicomplexa, Microspora, Myxospora, and Ascetospora); and approximately 2,5000 parasitic and 4,700 free-living ciliates. There are undoubtedly thousands more still unnamed. Seven phyla of PROTOZOA are accepted in this classification--SARCOMASTIGOPHORA, LABYRINTHOMORPHA, APICOMPLEXA, MICROSPORA, ASCETOSPORA, MYXOSPORA, and CILIOPHORA. Diagnoses are given for these and for all higher taxa through suborders, and reporesentative genera of each are named. The present scheme is a considerable revision of the Society's 1964 classification, which was prepared at a time when perhaps 48,000 species had been named. It has been necessitated by the acquisition of a great deal of nex taxonomic information, much of it through electron microscopy. It is hoped that the present classification incorporatesmost of the major changes that will be made for some time, and that it will be used for many years by both protozoologist and non-protozoologists.
SYNOPSIS. A trypanosomatid flagellate was isolated from the musciod fly Muscina stabulans (Fallén). Cloned cultures of this organism contained promastigotes, opisthomastigotes, and froms containing a long flagellum doubled or coiled within the cell but not protruding outside. These latter forms we are designating endomastigotes. The presence of these hitherto underscribed endomastigotes along with other morphologic and growth characteristics suggest that this is a new species for which the name Herpetomonas mariadeanei is proposed.
SYNOPSIS. Leptomonas seymouri sp. n., isolated from Dysdercus suturellus (Hemiptera: Pyrrhocoridae) from Florida, is described and distinguished from other species of Leptomonas from closely related hosts.
SYNOPSIS. The kinetoplast nucleoid of Herpetomonas muscarum muscarum is a disk‐shaped mass of filaments with sharply delimited anterior and posterior margins. The kinetoplast nucleoid of Herpetomonas muscarum ingenoplastis is elongate, tapered, and made up of long, helically arranged filaments. Possible explanations of these structures on the basis of work by others on isolated kinetoplast DNA are given. The double flagellum of Herpetomonas is seen by electron microscope to be two complete flagella in close contact but with no visible connection to each other.
SYNOPSIS. Herpetomonas muscarum muscarum n. subsp. was isolated from Musca domestica L. In culture at 20 C it assumed the opisthomastigote (up to 15%), double‐flagellate and flagellate promastigote forms. At 30 C or with 4% urea added to cultures at 20 C, the proportion of opisthomastigotes was greater (up to 40%). In experimentally infected flies only transient infections, which included both opisthomastigotes and promastigotes, occurred. The promastigotes were 15–30 μ long and the kinetoplast was small and subspherical or transversely elongate. H. muscarum ingenoplastis n. subsp. was isolated from Phormia regina (Meigen). In culture at 20 C almost all individuals were double‐flagellate promastigotes 20–40 μ long and less than 1% were opisthomastigotes. At 30 C or with added urea there was no increase in the proportion of opisthomastigotes and the cultures were not vigorous. In experimentally infected flies opisthomastigotes were 5–39% of the population depending on the part of the gut sampled. In all stages the kinetoplast was large (1.5–2.5 μ long) and tear‐drop‐shaped with the point directed posteriorly. In artificially mixed cultures of H. m. muscarum and H. m. ingenoplastis the former predominated after a short time and eventually survived alone. A mixed culture that was about 98% H. m. muscarum was fed to Phormia regina and produced heavy pure infections of H. m. ingenoplastis , which lasted for 22 days with no indication of decline. No evidence of cyst formation was found in either subspecies.
Trypanosoma lewisi that had been exposed to an X-ray dosage of 49,600 roentgens remained motile and multiplied in culture but did not produce infection in rats. Rats that had been given 3 × 106 or more irradiated trypanosomes were immune to a challenge inoculation with normal trypanosomes 15–28 days later.