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Vasomotor rhinitis--atrophic rhinitis: two ends of an autonomic spectrum.

A hypothesis is put forward based on clinical observations and treatment modalities in vasomotor non-allergic rhinitis (V.M.R.) and primary atrophic rhinitis (P.A.R.). The hypothesis postulates that (1) V.M.R. and P.A.R. are two diseases at the ends of an autonomic spectrum (2) The anterior nasal aperture, its dimensions and sensory receptors play a vital role in the etiopathogenesis of both the conditions through reflex autonomic action.

Humans

Investigation into the pathogenesis of atrophic rhinitis in pigs. I. Atrophic rhinitis caused by Bordetella bronchiseptica and Pasteurella multocida and the meaning of a thermolabile toxin of P. multocida.

In two groups of swine herds, herds with and without clinical AR the presence of Atrophic Rhinitis (AR) correlated with the presence of toxinogenic Pasteurella multocida (PM) and not with the Bordetella bronchiseptica (BB) infection. Six BB- and eighteen PM-strains have been investigated for AR pathogenicity. Broth cultures were injected intradermally in guinea-pigs (GPST) or intranasally in 3-week-old colostrum deprived specific pathogen free (SPF) piglets. The average atrophy of the ventral conchae (AVC) correlated with the GPST in 4 BB-and 7 PM-strains. One BB- and 2 PM-strains were qualified as doubtful, the others as non-AR pathogenic. With AR pathogenic BB-and PM-strains clinical AR could be induced in 3-and 6-week-old piglets. AVC lesions (gradation greater than 1) could be induced with BB in piglets of 6 and with pathogenic PM in 16-week-old piglets. Six of seven AR pathogenic PM-strains resembled Carter-type D and one resembled type A. No significance was found between AR pathogenicity and somatic serotypes. Intranasal instillations of cell-free broth culture filtrates of AR pathogenic PM-strains also caused AR in piglets. These filtrates also caused lethality in piglets and in mice lethalitytest (MLT) and induced a positive GPST. After heating the pathogenic effects of the filtrates disappeared. The name AR toxin has been introduced for this thermolabile, haemorrhagic dermonecrotic (HDNT) fraction of the AR inducing filtrates. The severity of the AR lesions depended on the amount of the AR toxin intranasally instilled in pigs. Cross protecting antibodies obtained in rabbits against the AR toxins of two PM strains could be demonstrated by a toxin neutralisation test in the MLT and the GPST. Broth cultures were injected intradermally in guinea-pigs (GPST) or intranasally in 3-week-old colostrum deprived specific pathogen free (SPF) piglets.

Age Factors

Dominant inheritance in a family with primary atrophic rhinitis.

Primary atrophic rhinitis is an uncommon condition which presents with crusts in the nose. The nasal mucosa is dry and atrophied and the nasal cavities are abnormally wide. We report a large London Irish family with an affected father with fifteen children. Eight of these have primary atrophic rhinitis. Symptoms appear around puberty, and there was one case in the third generation with an affected mother. The nasal appearances of the affected members varied considerably and many hid their disease well. The family fits well with dominant inheritance. A familial aetiology for primary atrophic rhinitis is a more attractive theory than those previously postulated.

Adolescent

Fibre-optic endoscopy in atrophic rhinitis.

Primary atrophic rhinitis seems to have a high prevalence in the arid regions bordering the great deserts of Saudi-Arabia. Fibre-optic endoscopy was performed on 42 patients treated surgically. Fibre-optic endoscopy demonstrated the presence of crusts in the nasal cavities and their subsequent reduction following surgery. It also demonstrated ulceration of the cartilaginous nasal septum in some cases and this may explain the pathogenesis of septal perforation noted in a high number of our patients. Fibre-optic nasendoscopy was also helpful in demonstrating the reappearance of free mucus in the nasal cavity and helped to determine the optimal time for reversing Young's procedure. Fibre-optic nasendoscopy is a reliable tool for verifying the results of surgery and comparing the efficacy of various treatment modalities.

Endoscopy

[Genetic nature of atrophic rhinitis in swine. I. The results of a test cross and bacteriological study in atrophic rhinitis in swine].

It is well established that the swine atrophic rhinitis (AR) is controlled by the only gene with two alleles, R and r, the former being a dominant. Our study was designed to determine the role of these factors in appearance of AR of swine among the offspring. Normal and diseased pairs of animals were mated. The heterozygotic (Rr) phenotypically normal but potentially ill hogs and sows were revealed at the farm where AR was spread. The phenotypically normal hogs and sows (RR, Rr) were mated with diseased (rr) or potentially diseased ones, and phenotypically normal heterozygotic (Rr) hogs and sows (control). The diseased sucking-pigs revealed in the litter were removed. It has been established that the sucking-pigs were normal when mating normal homozygotic animals. These sucking-pigs were used to replace the live-stock of sows. When mating normal homozygotic animals with recessive ones, the sucking-pigs were also normal, the normal alleles being dominant. In matings of heterozygotic animals 27.3% of the litter were wry-snouted. However, even healthy heterozygotic animals should not be used for replacing the live-stock, because they have both the normal and recessive alleles. When recessive animals were mated, all sucking-pigs proved to have the symptoms of AR. Such sucking-pigs, together with their parents were necessarily removed.

Animals

Development of turbinate lesions and nasal colonization by Bordetella bronchiseptica and Pasteurella multocida during long-term exposure of healthy pigs to pigs affected by atrophic rhinitis.

Natural transmission of atrophic rhinitis from pigs from a herd with an endemic atrophic rhinitis problem to pigs from a herd free of atrophic rhinitis was demonstrated. Six replicates each with five pigs from the endemic atrophic rhinitis herd (Group A) and five pigs from the atrophic rhinitis-free herd (Group B) were housed together from 5 wk of age, with each replicate kept in isolation rooms maintained at optimal and controlled environmental conditions. Three replicates each with six pigs/room from the atrophic rhinitis-free herd (Group C), served as nonexposed controls. Group C pigs remained healthy and had no turbinate atrophy at either 10 or 17 wk of study (atrophic rhinitis score = 0 on a 0 to 3 scale). Group A pigs had a mean atrophic rhinitis score of 1.85 +/- 0.84, and group B pigs developed atrophic rhinitis to a mean score of 1.57 +/- 0.70. The isolation rate and quantity of Pasteurella multocida found on nasal swabs was directly related to lesions while those for Bordetella bronchiseptica were inversely related to turbinate atrophy. Of the various types of P. multocida evaluated, nontoxigenic type A and toxigenic type D were both directly related to atrophic rhinitis while nontoxigenic type D strains were not. No toxigenic type A P. multocida strains were isolated.

Animals

[Forensic aspects of atrophic rhinitis of swine].

Atrophic rhinitis in swine is presented by means of recently published research work. Thereby it is emphasized as a significant forensic matter, that a reliable diagnosis could only be produced by combined application of clinical, pathoanatomical and bacteriological investigations and that the isolation of toxin-producing strains of Pasteurella multocida in a herd without clinical symptoms of atrophic rhinitis is to be considered as a proof of latent atrophic rhinitis.

Animals

Atrophic rhinitis: antibiotic treatment.

Atrophic rhinitis is a term used to describe a rare nasal infection. Although it does not have a fatal outcome, cause osteomyelitis, or produce pain, it does induce bilateral nasal obstruction and a persistent foul odor of which the subject and others are painfully aware. The organism most often associated with atrophic rhinitis is Klebsiella ozenae. Antibiotic susceptibility patterns of this microorganism have made treatment with orally administered antibiotics difficult. K ozenae was cultured from the nasal cavity of three patients. Two patients were treated for two weeks with tobramycin (MIC, 4 micrograms/ml; 4 mg/kg/day). Odor decreased in one patient, but K ozenae failed to clear. In the second patient both odor and K ozenae disappeared. The third patient was treated for 1 week with tobramycin (MIC, 4 micrograms/ml; 4 mg/kg/day); odor decreased, but K ozenae could still be cultured. She was treated for an additional 2 weeks with topical gentamicin (MIC, 0.5 micrograms/ml) with disappearance of both odor and K ozenae. Intravenous aminoglycoside may be helpful in treating atrophic rhinitis, but topical aminoglycoside may provide an effective and cheaper form of treatment.

Administration, Topical

Quantitative observations on Bordetella bronchiseptica infection in atrophic rhinitis of pigs.

Clinical atrophic rhinitis in seven pig herds could not be associated with the infection rate or higher numbers of B bronchiseptica in nasal swabs when compared with unaffected herds. B bronchiseptica isolates from herds with atrophic rhinitis and receiving sulphonamide medication were resistant to sulphonamides in vitro and there was a beneficial clinical response after changing to oxytetracycline medication. In an unaffected herd three piglets naturally infected with B bronchiseptica but possessing low levels of passive antibody showed marked turbinate hypoplasia when killed at seven weeks, the lesions had resolved in four of six litter mates by 21 weeks and did not occur in another litter of nine piglets which had a high level of passive antibody. The results indicate that although B bronchiseptica can produce non-progressive turbinate changes in pigs that have inadequate antibody protection, the relationship between these lesions and the chronic progressive field disease needs further investigation.

Animals

Treatment with oxytetracycline hydrochloride in the prevention of atrophic rhinitis in baby pigs.

Atrophic rhinitis (AR) caused serious losses in a breeding herd including approximately 120 sows. The extent to which piglets were affected by AR was assessed by determining the degree of shortening of the upper jaw. Animals showing a crooked nose or grade two or more of shortening of the upper jaw were considered to be clinically positive. Grades three and four of the upper jaw were observed in those animals which were severely affected by Atrophic rhinitis. Treatment of all piglets up to about eight weeks of age by the antibiotic oxytetracycline hydrochloride directed against the bacteria Bordetella bronchisepica and Pasteurella multocida was successful in reducing the proportion of clinically affected piglets from 30 per cent to 0 per cent within eight weeks. There was found to be a positive relationship between the proportion of piglets infected with the two above bacteria at an age of about five weeks and the incidence of shortening of the upper jaw at an age of about eight weeks. The proportion of piglets with shortening of the upper jaw rose following a marked increase in the number of piglets in farrowing and flat-deck houses and as a result of the supply of inadequately medicated feed.

Animals

Epidemiological study of Pasteurella multocida and Bordetella bronchiseptica in atrophic rhinitis.

An epidemiological study of atrophic rhinitis was carried out in four pig herds. Observations were made of (i) infection with Bordetella bronchiseptica and Pasteurella multocida, (ii) the presence of brachygnathia superior (BS score), (iii) the extent (grade) of turbinate atrophy and pneumonia at slaughter and (iv) growth rates from two to 16 weeks of age and average daily weight gains to slaughter. In two of the herds with no history of atrophic rhinitis, B bronchiseptica and non-toxigenic strains of P multocida were isolated; only one of 47 pigs (2 per cent) had a BS score greater than +10 mm and the most severe turbinate atrophy observed in 21 pigs at slaughter was grade 3. In contrast, from two herds with atrophic rhinitis, toxigenic strains of P multocida were isolated as well as B bronchiseptica and non-toxigenic P multocida. BS scores of greater than +10 mm were present in six of 47 pigs (13 per cent) of which five were infected with toxigenic P multocida and had severe turbinate atrophy of grade 4 or 5. There was no significant reduction in growth rates in the affected compared with the unaffected herds nor in the affected compared with the unaffected pigs in the same herd. Neither was there a correlation between progressive disease and the extent of pneumonia found at slaughter. It was concluded that in field cases of the disease, high BS scores plus severe turbinate atrophy were associated with infection by toxigenic type-D strains of P multocida.

Animals

[Atrophic rhinitis of swine--a multifactorial disease?].

Atrophic rhinitis is caused by toxigenic Pasteurella multocida strains. The infection is supported by Bordetella bronchiseptica and other widespread agents and by non-infectious factors damaging the nasal epithelium. The term "infectious multifactorial disease" means in German, that ubiquitous low-virulent agents cause disease when intensified by non-infectious factors. Atrophic rhinitis does not belong to this group but is an infectious disease, caused by a specific agent and influenced by several factors.

Animals

Atrophic rhinitis in goats in Norway.

The spontaneous occurrence of atrophic rhinitis in 12 of 49 goat herds in one area of Norway is described. The clinical signs included nose bleeding, nasal discharge, sneezing and tender noses. Pathologically, the macroscopic and histological findings resembled those found in pigs with atrophic rhinitis. Bacteriological investigation of nasal swabs in five of the herds revealed toxigenic strains of Pasteurella multocida in three of them. In four of the herds the clinical signs were seen in two or more consecutive years. No specific source of the infection was discovered. Atrophic rhinitis was induced experimentally in kids by the nasal inoculation of toxigenic strains of P multocida and atrophic rhinitis toxin.

Animals

[Contamination and age as factors in the pathogenesis of atrophic rhinitis (author's transl)].

The relationship between contamination with Bordetella bronchiseptica or Pasteurella multocida and the age of the piglets on the one hand and the pathogenesis of atrophic rhinitis on the other, is discussed. Minimal disease-free piglets born and reared on farms on which pigs affected with clinical atrophic rhinitis were present, developed clinical atrophic rhinitis at the age of six weeks. Piglets born in the Central Veterinary Institute (CVI) of sows from herds including pigs affected with atrophic rhinitis and reared under normal CVI conditions, did not develop clinical atrophic rhinitis. These sows are believed to be factors of minor importance in the pathogenesis of clinical atrophic rhinitis in piglets. When minimal disease-free piglets were contaminated during the third or fourth week of life, a slight degree of foreshortening of the upper jaw was observed in three out of nine pigs, the carcase weights of these animals not differing markedly from those of normal swine. When they were contaminated at the age of eight weeks, clinical atrophic rhinitis did not appear. It is essential that young piglets should be protected against atrophic rhinitis during the first few weeks of life.

Age Factors