Search PubMedSearch

Biomedical subjects

O L Frick

Publications and source records attributed to O L Frick.

At least 19 recordsLinked to original sources

Hypersensitivity reaction in an infant fed hydrolyzed lactalbumin contained in a semielemental formula.

Following introduction of milk protein formula feedings, a 6-month-old male developed profuse, watery diarrhea progressing to shock, requiring cardiopulmonary resuscitation. Reinstitution of enteral feedings with a formula containing hydrolyzed lactalbumin (Travasorb STD) resulted in recurrence of diarrhea with fever. Intestinal and rectal biopsies showed only nonspecific inflammatory changes. He was discharged on an elemental formula (Vivonex). Twenty-three months later, while admitted for evaluation of hypophosphatemic rickets, immunologic testing using the lymphocyte migration inhibition factor (LIF) test demonstrated positive reactions, especially to alpha-lactalbumin (56% inhibition) and whole cow's milk (22%, normal of less than 20% inhibition). Skin tests revealed sensitivity to cow's milk and eggs. Soy formula also produced diarrhea and bloody stools. Protein hydrolysate formulas, touted as hypoallergenic diets, are useful in infants with intolerance to milk protein. This is the first documented case of an immunological reaction to the hydrolyzed whey protein, lactalbumin. Although protein hydrolysate formulas are effective treatment in most infants with milk protein intolerance, allergic reactions are possible. Caution and close observation should be exercised in immunologically sensitized infants rechallenged with any formula.

Food Hypersensitivity

Neuropeptides, mast cells and allergy: novel mechanisms and therapeutic possibilities.

Diverse neuropeptides are released by neuroendocrine and immune cells at the sites of allergic and inflammatory reactions. The neuropeptides and other neuromediators affect functions of smooth muscle, microvasculature and secretory cells, and are potent stimuli of mast cell, lymphocyte and other leucocyte contributions to such reactions. The distinctive immune sources, structures and cellular receptors for neuromediators suggest the possibility of novel pathogenetic mechanisms and levels of pharmacological intervention specific for neuroregulation of immunity and hypersensitivity.

Humans

[Delayed reaction in asthma].

IgE mediated type 1 hypersensitivity induces an immediate phase, during the minutes that follow contact with the allergen and is very often associated with a late phase that occurs during the hours that follow contact. The late phase of asthma induced by an IgE--dependent mechanism is linked with a cellular activation (lymphocytes, eosinophils) and release of different mediators (Paf Acether, LTB4, ECFA, MBP, EcP) from those of the immediate phase. Corticosteroids are well known as inhibitors of the late phase. Like cromoglycate, AZELASTINE inhibits both the immediate and late phases.

Adrenal Cortex Hormones

Inhibition of the cutaneous response to antigen by a thromboxane-synthetase inhibitor (OKY-046) in allergic dogs.

We studied the effect of a selective thromboxane-synthetase inhibitor, sodium (E)-3-[4-(1-imidazolymethyl)-phenyl]-2-propanoate) (OKY-046) on the late-phase response to antigen in ragweed-sensitized dogs. Skin biopsies were performed before and 1, 6, and 24 hours after ragweed injection. OKY-046 was infused (100 micrograms.kg-1.min) from 1 hour before until 6 hours after intracutaneous ragweed in five dogs. The early clinical response to ragweed (wheal at 20 minutes) was not changed by OKY-046. A late-phase response (induration at 6 hours) was not observed in any of the OKY-046-treated dogs but was present at 6 hours in 4/5 dogs without OKY-046. Typical mast cells responded similarly in both groups with progressive degranulation during 24 hours. Maximal degranulation of atypical mast cells was delayed to 6 hours with OKY-046, whereas these cells responded completely at 1 hour without OKY-046. The inflammatory response to ragweed followed the same pattern in both groups, but the numbers of each cell type were decreased with OKY-046. With OKY-046, the cutaneous response to histamine was not changed significantly from baseline at 6 hours but was increased (p less than 0.05) at 24 hours, whereas without OKY-046, histamine response was significantly increased at 6 hours (p less than 0.001) and 24 hours (p less than 0.01). We conclude that OKY-046 alters the antigen-induced response of atypical mast cells, the subsequent cellular and clinical late-phase response, and prevents the increase in histamine response.

Acrylates

Distinctive patterns of release of neuroendocrine peptides after nasal challenge of allergic subjects with ryegrass antigen.

The concentrations of the neuropeptides substance P, somatostatin, and calcitonin gene-related peptide in human nasal secretions were quantified by radioimmunoassays, concurrently with that of histamine, in the course of nasal challenge of allergic and control subjects with ryegrass antigen to examine contributions of neuromediation of the tissue response. Each of the neuropeptides and histamine were detected in nasal lavage fluid prior to challenge. In allergic patients, but not normal controls, antigen evoked significant increases of 3-fold in histamine at 15-60 min, 1.5- to 4-fold in calcitonin gene-related peptide at 15 min-24 hr, and more than 2-fold in somatostatin at 6 hr, without altering the concentration of substance P in nasal lavage fluid. The identity of the neuropeptides was confirmed chromatographically. Thus calcitonin gene-related peptide may mediate nasal congestion directly and somatostatin may be one of the factors regulating the late involvement of basophils and mast cells in allergic rhinitis.

Administration, Intranasal

Cutaneous allergic response in atopic dogs: relationship of cellular and histamine responses.

We studied the cutaneous response to intradermal antigen using clinical, histologic, and physiologic criteria in ragweed-sensitized dogs. The clinical response was measured early (the wheal at 20 minutes) and late (induration at 6 hours). We assessed cutaneous responsiveness to histamine before and 6 hours after injection (intradermally) of ragweed (n = 5, antigen group) and diluent (n = 4, 10% glycerin in 0.9% NaCl, sham group); we measured the wheal in response to histamine (1.0 ng to 0.1 mg, intradermally), constructed a dose-response curve, and interpolated the provocative dose (milligrams) of histamine required to create a wheal 10 mm larger than the response to saline control. Skin biopsy specimens were obtained before and after injection of either ragweed or diluent. Consistent with the human late-phase response, neutrophils and eosinophils were present in the dermis at 1 hour, maximal at 6 hours, and decreased at 24 hours. Mononuclear cells increased significantly at 6 hours and were the predominant cells present at 24 hours after antigen. The late clinical response correlated only with influx of eosinophils (rs = 0.85; p less than 0.005). Histamine responsiveness increased markedly after antigen (p less than 0.0001), did not change after glycerin diluent (sham), and was correlated with the intensity of neutrophil influx at 6 hours (rs = 0.69; p less than 0.05), and to a much greater degree with mononuclear cell influx at 6 hours (rs = 0.85; p less than 0.005).

Animals

Histamine release and circulating cells after antigen inhalation in allergic dogs.

Histamine can be recovered from the blood of ragweed-sensitized dogs after aerosol antigen challenge, although its source is unknown. Neutrophils and eosinophils have been recovered from bronchoalveolar lavage fluid (BALF) obtained under identical conditions. We investigated the time course of changes in histamine levels in plasma and BALF taken from ragweed-sensitized dogs after aerosol challenge. Changes in the numbers of circulating neutrophils, eosinophils, lymphocytes, monocytes, and platelets were also studied. After 3 min, total pulmonary resistance (RL) was maximally increased and systolic blood pressure was maximally decreased. Histamine levels in plasma and BALF were increased and circulating eosinophils and neutrophils were decreased. After 15 min, platelet numbers were reduced. By 90 min, changes in RL, blood pressure, plasma and BALF histamine concentrations, and circulating neutrophils and eosinophils had returned to base-line values, but platelet numbers remained significantly decreased. Sham challenge caused no significant changes in any of these variables. Intravenous administration of histamine in doses large enough to attain plasma levels comparable with those achieved after aerosol antigen challenge resulted in no concomitant rise in BALF histamine levels. We conclude that antigen challenge in sensitized dogs causes increases in BALF and plasma histamine levels and is associated with a reduction in circulating neutrophils, eosinophils, and platelets. It is likely that antigen causes airway mast cells to release mediators that move down a concentration gradient from the airways to the pulmonary circulation.

Administration, Inhalation

Cutaneous mast cell heterogeneity: response to antigen in atopic dogs.

Because mast cells (MCs) in skin of atopic dogs are heterogeneous with respect to tissue fixation and staining properties, we determined the effect of antigen on each type of MC in vivo. Skin biopsies were done in anesthetized, ragweed-sensitized dogs before and at 1, 3, 6, and 24 hours after intradermal injections of ragweed antigen (n = 5) or glycerin diluent (n = 4). In each case, one biopsy specimen was fixed with formalin, and a second specimen from an adjacent abdominal site was fixed with basic lead acetate. In sections stained with Alcian blue, 49.7% more MCs (p less than 0.05) were detected in tissue fixed with basic lead acetate ("typical" plus "atypical" MCs: 2916 +/- 581/mm3; mean +/- SEM) than in tissue fixed with formalin ("typical" MCs: 1955 +/- 537/mm3). After antigen, the number of "typical" MCs detectable in tissue sections progressively decreased during the 24-hour period, whereas the number of "atypical" MCs was lowest at 1 hour and had increased at 24 hours. After diluent, MC numbers did not change significantly over time. A late-phase response (LPR), detected clinically as induration and edema, was present 6 hours after antigen in four of five dogs, but LPR was not detected after diluent. The size of LPR was correlated (r = 0.85; p less than 0.05) with the decrease in the number of "typical" MCs at 6 hours. We conclude that the response of the "typical" and "atypical" MC to antigen in vivo differs markedly. The "atypical" MCs participate in the early, acute response to antigen, and the "typical" MCs may be associated with the development of the LPR.

Animals

Immunologic and nonimmunologic responsiveness in ragweed-sensitized dogs.

The relationship between airway responsiveness to inhaled antigen and histamine, immunologic release of lung histamine, immunologic responsiveness of skin, and specific immunoglobulin E (IgE) antibodies were examined in 11 inbred allergic dogs immunized with extracts of ragweed and grass and 5 nonimmunized control dogs from the same colony. Airway responsiveness to antigen and histamine was characterized by the doses that increased the airflow resistance of the total respiratory system to twice the control values (ED200). Highly significant correlations were found between airway responsiveness and cutaneous responsiveness to antigen and other immunologic characteristics (e.g., IgE and histamine released from lung by inhaled antigen) in all dogs. In ragweed-sensitized dogs, there was an inverse correlation between immunologic responsiveness (reflected by the cutaneous response to antigen and histamine released from lung by inhaled antigen) and nonimmunologic responsiveness of airways (histamine ED200: r = 0.73, P less than 0.05 and r = 0.75, P less than 0.01, respectively). Antigen ED200 was also correlated with histamine release from lung after antigen inhalation (r = 0.74; P less than 0.01). We conclude that airway reactions to inhaled antigen in allergic dogs are dependent not only on immunologic factors but also on the degree of nonimmunologic airway responsiveness to histamine and that these factors are correlated inversely.

Animals

Mast cell heterogeneity in dog skin.

The degree of metachromasia of mast cell granules is known to vary with the type of tissue fixation and among different tissues and species. The present study sought to determine whether mast cells in dog skin are heterogeneous with respect to fixation and staining properties. We performed skin biopsies in six anesthetized, atopic dogs and one mongrel dog. One biopsy was fixed in formalin and a second, from a parallel abdominal site, was fixed in basic lead acetate (Mota's solution). Adjacent sections from each biopsy were stained with alcian blue (1%, pH 0.5) or for chloroacetate esterase activity. In alcian blue-stained sections, one-third fewer mast cells were detected in skin fixed in formalin (1,836 +/- 454 mast cells/mm3, mean +/- SEM) than in skin fixed in basic lead acetate (2,684 +/- 527 mast cells/mm3) (P less than 0.05). The chloroacetate esterase reaction detected the larger number of mast cells regardless of the fixative used. We conclude that mast cell heterogeneity, as demonstrated by metachromatic staining following different types of tissue fixation, exists in dog skin. "Typical" mast cells stain with alcian blue regardless of fixation; however, "atypical" mast cells exhibit metachromasia only after fixation in basic lead acetate. Both the typical and atypical types of mast cells have chloroacetate esterase activity.

Alcian Blue

Antigen-induced airway hyperresponsiveness and pulmonary inflammation in allergic dogs.

We studied whether antigen-induced airway hyperresponsiveness was associated with pulmonary inflammation in 11 anesthetized ragweed-sensitized dogs. Airway responsiveness to acetylcholine aerosol was determined before and at 2, 6, and 24 h after ragweed or sham aerosol challenge. Pulmonary inflammation was assessed by bronchoalveolar lavage (BAL) performed at either 2 or 6 h. Total pulmonary resistance increased 11-fold at 5 min after ragweed. Airway responsiveness was unchanged at 2 h but was increased 6.6-fold at 6 h in 8 of 11 dogs (P less than 0.001); hyperresponsiveness persisted from 4 days to 4 mo. Airway responsiveness was unchanged by aerosols of diluent. Neutrophils in BAL fluid increased approximately sixfold at 2 h (P less than 0.02) and at 6 h (P less than 0.02) after antigen challenge. There were fewer eosinophils in fluid recovered at 6 h after antigen compared with 2 h lavages (P less than 0.05). In three nonresponders, BAL showed no significant changes in neutrophils and eosinophils after antigen. Thus antigen-induced hyperresponsiveness is associated with the presence of pulmonary inflammation, presumably arising from the airways and involving both neutrophils and eosinophils.

Acetylcholine

Airway responsiveness to inhaled antigen, histamine, and methacholine in inbred, ragweed-sensitized dogs.

We studied the responses to antigen in animals selected from a colony of inbred dogs sensitized to specific allergens to determine if they had characteristics similar to those of human asthmatics. They were immunized with ragweed and grass pollen extracts (10 micrograms in alum) immediately after routine vaccination with attenuated live virus (distemper and hepatitis) and killed bacteria (Leptospira) at 4, 8, and 12 wk of age. Subsequently, ragweed and grass injections were repeated every 2 months. Immunized dogs made specific IgE-antibodies in serum averaging 3 to 4 times that of control animals (no immunization with pollen or vaccine). They showed positive skin responses to the injection of ragweed pollen extract, whereas control dogs did not respond to ragweed pollen by quantitative skin test or inhalation challenge. In immunized dogs under barbiturate anesthesia, air-flow resistance of the total respiratory system increased from 0.60 +/- 0.07 (mean +/- SEM) before to 12.6 +/- 3.4 cm H2O/lps 5 min after the start of antigen aerosol; respiratory resistance remained increased for 20 min and was associated with 0 hypoxemia and increased arterial plasma histamine. In addition, airway responsiveness to both inhaled histamine and methacholine was greater in immunized dogs than in nonimmunized dogs of comparable age. Airway responses to each agonist were highly reproducible on repeated testing. These results indicate that physiologic responses to antigen by inbred, ragweed-sensitized dogs resemble human asthma closely and that these dogs appear suitable for a variety of experimental studies of asthma with respect to pathogenesis, diagnosis, prevention, and treatment.

Animals

Immunoglobulin E antibodies to pollens augmented in dogs by virus vaccines.

An inbred "atopic dog colony" was established to study the effect of viruses on immunoregulation of immunoglobulin (Ig) E antibodies. Dogs were selected for high skin reactivity to grass and weed pollens. Their offspring were inoculated with pollen extracts in alum immediately after routine vaccinations (attenuated live-virus vaccines for canine distemper and infectious canine hepatitis, and a killed bacterin for Leptospira). Heat labile antipollen IgE antibodies were measured by passive cutaneous anaphylaxis. Pups vaccinated for canine distemper before being given pollen extracts had many more IgE antibodies than did their control littermates who were not vaccinated until after the last pollen extract injection. This may be a natural example of the "allergic break-through phenomenon."

Adenoviruses, Canine