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Biomedical subjects

B R Laurence

Publications and source records attributed to B R Laurence.

At least 19 recordsLinked to original sources

The tropical African latrine blowfly, Chrysomya putoria (Wiedemann).

The status of the tropical African latrine blowfly Chrysomya putoria (Wiedemann, 1830) is recognized as distinct from the sub-tropical African blowfly C.chloropyga (Wiedemann, 1818) (Diptera: Calliphoridae). The biology of C.putoria in laboratory culture is described briefly with emphasis on the differences in development found in three strains of this species from Tanzania, Liberia and Brazil. All three strains were reproductively compatible and there was no evidence of F1 hybrid sterility or hybrid breakdown in subsequent generations. Larval development was significantly faster in the Brazilian strain than in the strain from Tanzania. Sexual maturity was significantly faster in adults of the Liberian and Brazilian strains compared to that found in the strain from Tanzania. This latter strain was affected by the source of protein available as adult food. These differences between strains did not appear to be due to selection in laboratory culture, but rather evidence of the evolution of physiological divergence within a species occupying different geographical regions.

Animals

Incorporation of radioactive precursors into filarial larvae of Brugia developing in susceptible and refractory mosquitoes.

The incorporation of tritiated precursors injected into mosquito hosts parasitized by developing filarial larvae of Brugia patei has been studied by autoradiography in 2 species of mosquito, Aedes togoi in which filarial development was normal and Anopheles labranchiae atroparvus in which filarial development was abnormal. In both mosquito hosts there was significant incorporation into 4--5-day-old developing larvae of uridine and amino acids (isoleucine, leucine, valine, arginine, lysine, cystine, methionine, phenylalanine, tyrosine, tryptophan, histidine, and proline), although lower incorporation of methionine, tyrosine, and tryptophan was found during abnormal development. No incorporation of thymidine, hydroxytryptophan, dopa, or carbohydrate was found at this stage of larval development. Some incorporation of glucose and dopa was found in or around earlier stages of development in An. l. atroparvus. Mosquito flight muscle showed lower incorporation of glucose, but not of amino acids, around the site of filarial parasite development. The flight muscle of An. l. atroparvus showed a higher level of incorporation of lysine compared to that in A. togoi and higher levels of lysine and valine were found in the abnormally developing filarial larvae in the refractory mosquito.

Aedes

Development of the calyx and lateral oviduct during oogenesis in Aedes aegypti.

The lateral oviduct and calyx of nulliparous Aedes aegypti on a sucrose diet are both flattened sacs, lacking a well defined lumen. Both are formed of an inner epithelial and an outer muscular layer, each one cell thick. The lateral oviduct is surrounded by a circular muscle sheath which is continuous with the ovarian sheath. Each ovariolar sheath is continuous with the outer layer of the calyx. The structure of both the lateral oviduct and the calyx is greatly modified after the initial blood meal. A distinct lumen develops; there is an extensive development of the outer muscular layers, and the inner epithelial layers become invaginated forming deep crypts lined with extensive microvilli. The follicular stem, which joins the primary follicle to the calyx in each ovariole, is not hollow and does not mark the opening into the calyx through which the mature egg can pass. The eggs gain access to the oviductal system after the calyx extends around the follicular epithelium of the primary follicle, when breaks appear in the calyx wall opposed to the follicular epithelium, until the mature eggs, eventually lie in a highly distended thin-walled sac of calyx from which they have direct and easy access to the lateral oviduct. After oviposition, this sac contrasts to occupy once more a compact axial position in the ovary. Remnants of the follicular epithelium, containing many lysosomes are attached to the calyx at this time.

Aedes

Loss of filarial larvae in a natural mosquito population.

Analysis of log normal parasite densities of Wuchereria bancrofti in the mosquito Culex pipiens fatigans collected in the suburbs of Colombo, Sri Lanka, has shown a decreasing parasite load with age of infection. The median density of microfilarial intake in the natural population was 10.3, but this had decreased to 2.6 by the infective stage. Of the total microfilariae ingested, 51.9% were found in the thorax 12--17 hours after infection of the mosquitoes in the laboratory. Further decrease in parasite density during development could not be attributed to filarial mortality in the mosquito but could be accounted for by increasing mosquito mortality dependent on the density of parasite infection. Dissection of recently blood-fed house-resting mosquitoes gave a prevalence rate of 7% microfilarial carriers in the human population compared to a rate of 4% by routine blood-filming.

Animals

Flight muscle ultrastructure of susceptible and refractory mosquitoes parasitized by larval Brugia pahangi.

On parasitization with larval Brugia pahangi the infected flight muscle fibres of "resistant" Anopheles labranchiae atroparvus undergo the following ultrastructural changes. The fibres become almost totally devoid of glycogen, their sarcoplasmic reticulum becomes elongate and closely associated with muscle fibrils. These fibrils degenerate and vesicles appear both within the degenerate fibril and within elements of the sarcoplasmic reticulum. Vesicles accumulate around the worm and degenerate to a uniform mass which eventually becomes melanized from its inner edge (next to the parasite) outwards. The infected flight muscle fibres of both "resistant" Aedes aegypti and "susceptible" Aedes togoi are almost totally devoid of glycogen granules, but show no other ultrastructural change from the uninfected state.

Aedes

Micro-organisms in filarial larvae (Nematoda).

Unusual bodies have been described in the hypodermal tissues of larval Dirofilaria immitis and Brugia pahangi. Ultrastructural evidence indicates that these bodies are probably Gram-negative micro-organisms. It appears that the presence of large numbers of these bodies in an early embryo may affect development adversely. Their importance at later stages of development of filariae is not known.

Animals