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S R Kleeberger

Publications and source records attributed to S R Kleeberger.

At least 19 recordsLinked to original sources

Ozone-induced decrease of mouse tracheal potential is not secondary to cellular inflammation.

Acute exposure of C57BL/6J (B6) mice to ozone (O3) causes decreased in vivo tracheal electrical potential difference (PD). To investigate the role of inflammation in this response we measured O3 effects in B6 mice pretreated with indomethacin (5 mg/kg), colchicine (3 mg/kg), or cyclophosphamide (30 mg/kg x 7 days). Mice were exposed to 2 ppm O3 or air for 3 hr and allowed to recover for 0, 3, 6, 9, or 12 hr. Tracheal PD was measured under pentobarbital anesthesia using a capped agar bridge inserted into the upper trachea through a neck incision. After measurement of PD, bronchoalveolar lavage (BAL) was performed and total cells, polymorphonuclear leukocytes (PMNs), and protein were determined. As previously reported, O3 exposure decreased PD and increased BAL total cells, PMNs, and protein. O3-induced changes in PD and PMNs were maximal 6-9 hr after exposure. Indomethacin prevented the O3-induced change in PD but had no effect on BAL total cells or PMNs. Colchicine attenuated O3-induced increases in PMNs and cyclophosphamide decreased O3 effects on both BAL total cells and PMNs but neither drug affected the PD response. None of the drugs significantly altered O3-induced increases in BAL protein. The indomethacin sensitivity of O3-induced changes in PD may reflect a role of cyclooxygenase products in that response. However, drugs known to inhibit PMN function did not affect O3-induced changes in PD. We suggest that cellular inflammation is not required for the tracheal electrophysiological response to acute O3 exposure.

Animals

Structure and DNA sequence of the mouse MnSOD gene.

Oxidative damage to the cell has been implicated in the pathogenesis of a number of disorders, including chronic inflammation, aging, and cancer. Manganese superoxide dismutase (Mn-SOD) plays a major role in the protection of the mitochondrion from oxidative damage due to superoxide radicals and other excited oxygen species. In this report we describe the genomic organization and DNA sequence of the murine MnSOD gene. This gene is interrupted by four introns. The coding sequence of this gene was examined in C57BL/6J and C3H/HeJ mice that are SUSCEPTIBLE AND RESISTANT, respectively, to the pulmonary injuries induced by the inhaled oxidants, ozone, and hyperoxia. Since the predicted amino acid sequence for MnSOD does not differ for these strains, nor does the size or steady-state level of this transcript, biologic variability in the pulmonary inflammatory response to ozone and hyperoxia does not arise from an altered gene structure. Examination of the noncoding sequence revealed a dC.dA polymorphism in intron 2 and a StyI RFLV in intron 4 of the MnSOD gene. These sequence and mapping data provide the basis for continued study of biologic variability in the MnSOD gene as a cause of disease.

Amino Acid Sequence

Genetic control of susceptibility to ozone-induced changes in mouse tracheal electrophysiology.

Genetic factors influence the responses of humans and rodents to ozone (O3) inhalation. We previously demonstrated differential O3-induced decreases of tracheal potential (VT) in C57BL/6J (B6) and C3H/HeJ (C3) strain mice. To characterize the genetic basis of this strain-specific response, we measured VT in progeny of B6 and C3 strain mice and in six additional inbred strains of mice 6 h after O3 exposures (2 ppm x 3 h). First filial generation (F1) mice and second generation backcrosses with the resistant parent were uniformly resistant. The distribution of VT in second generation backcrosses with the susceptible parent resembled that of a population composed of resistant and susceptible mice in a 1:1 ratio. These data suggested simple autosomal recessive inheritance of susceptibility. However, overlapping distributions prevented statistical confirmation of that hypothesis. Strain screening revealed a susceptible phenotype in 129/J, A/J, B6, C3HeB/FeJ, and SJL/J and a resistant phenotype in AKR/J, C3, and CBA/J inbred mouse strains. Because this pattern of susceptibility to changes in VT differs from that of susceptibility to lung inflammation, the genetic factors that determine these two responses to acute O3 are not identical.

Animals

Expression of ICAM-1 in airway epithelium after acute ozone exposure in the mouse.

We investigated the time course and regional distribution of the expression of intercellular adhesion molecule-1 (ICAM-1) on airway epithelial cells and the polymorphonuclear leukocyte (PMN) inflammatory response in the lung after acute exposure to ozone (O3). C57BL/6J mice were exposed to air or 2 ppm O3 for 3 h and killed immediately or 3, 6, 9, or 21 h after exposure. Expression of ICAM-1 was examined by immunohistochemical staining of frozen sections. PMN influx was evaluated by lavage and by histochemical staining of myeloperoxidase (MPO) and measurement of tissue MPO activity. ICAM-1 expression exhibited regional selectivity and temporal patterns that were unique to each region. Upregulation of ICAM-1 expression on the epithelial cells in the trachea, and to a lesser extent in the lobar and segmental bronchi, was observed 3-9 h after exposure and remained present at 21 h. Enhanced ICAM-1 expression in bronchioles and terminal bronchiole/alveolar duct regions was evident earlier (immediately to 3 h after exposure) but returned to baseline levels by 21 and 9 h, respectively. Maximal ICAM-1 expression and PMN influx in the lung parenchyma were concurrently observed at 3 h, followed by transepithelial migration of PMNs to the airway lumen. These results demonstrate regional variations in airway inflammatory activity and are supportive of the notion that upregulation of ICAM-1 on the airway epithelium may play a role in local regulation of PMN influx to the airways after acute O3 exposure.

Administration, Inhalation

Susceptibility to platelet-activating factor-induced airway hyperreactivity and hyperpermeability: interstrain variation and genetic control.

Platelet-activating factor (PAF) is a proinflammatory mediator known to elicit changes in airway reactivity and vascular permeability, and it may also have a role in the development and progression of acute respiratory distress syndrome and asthma. We have developed a mouse model to test the hypothesis that these traits were controlled by a single gene and were mechanistically related. We further hypothesized that there was a relationship between PAF-induced hyperreactivity and baseline reactivity to acetylcholine (ACh). Among eight inbred strains of mice that exhibited significant interstrain variation in ACh reactivity, intravenous PAF induced 16 to 278% increases in reactivity to ACh (25 micrograms/kg). PAF also elicited 95 to 307% increases in lung permeability as measured by Evans blue extravasation. Both reactivity and permeability changes induced by PAF were blocked by a PAF receptor antagonist (L-659,989). Strain distribution patterns for baseline reactivity to ACh and PAF-induced hyperreactivity and lung permeability were not significantly concordant, and suggest that the variables were not interdependent. Progeny derived from AKR/J (PAF hyperresponsive) and C3H/HeJ (PAF hyporesponsive) mice were characterized for their PAF responsiveness as determined by PAF-induced hyperreactivity and hyperpermeability. The ratios of hyperresponsive and hyporesponsive phenotypes in outcross progeny were compared to those predicted for Mendelian inheritance and assessed for relatedness by chi 2 and cosegregation analyses. Results suggested that PAF-induced hyperreactivity was controlled by a single gene, but PAF-induced hyperpermeability was controlled by a more complicated interaction of factors.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetylcholine

The effects of ozone on immune function.

A review of the literature reveals that ozone (O3) exposure can either suppress or enhance immune responsiveness. These disparate effects elicited by O3 exposure depend, in large part, on the experimental design used, the immune parameters examined as well as the animal species studied. Despite the apparent contradictions, a general pattern of response to O3 exposure can be recognized. Most studies indicate that continuous O3 exposure leads to an early (days 0-3) impairment of immune responsiveness followed, with continued exposures, by a form of adaptation to O3 that results in a re-establishment of the immune response. The effects of O3 exposure on the response to antigenic stimulation also depend on the time at which O3 exposure occurred. Whereas O3 exposure prior to immunization is without effect on the response to antigen, O3 exposure subsequent to immunization suppresses the response to antigen. Although most studies have focused on immune responses in the lung, numerous investigators have provided functional and anatomical evidence to support the hypothesis that O3 exposure can have profound effects on systemic immunity.

Animals

Chronic ethanol consumption increases hepatic sinusoidal contractile response to endothelin-1 in the rat.

Recent evidence suggests that hepatic stellate cells function as liver-specific pericytes that are highly contractile in response to endothelin-1 (ET-1). Liver injury has been shown to lead to "activation" of stellate cells producing a phenotypic change to a more myofibroblastic cell type including loss of vitamin A and increased contractility. The present study was undertaken to test the effects of short-term chronic ethanol consumption (36% of total calories for 5 weeks according to the Lieber-DeCarli protocol) on hepatic vitamin A storage, expression of smooth muscle alpha-actin, and sinusoidal contractility in Sprague-Dawley rats. Using in vivo epifluorescence video microscopy, we quantified the number of sites of vitamin A fluorescence (purportedly stellate cells) and assessed sinusoidal microhemodynamics at baseline and during a 20-minute infusion period of ET-1 (1 pmol * 100 g body weight [bw]*1*min-1). Retinol and retinyl palmitate were measured after the experiment by means of high-pressure liquid chromatography (HPLC). A highly significant decrease in liver retinyl palmitate level (control: 622.5 +/- 50.9; ethanol: 273.0 +/- 38.0 microgram/g liver; P< .001) was found that correlated with a decrease in sites of vitamin A fluorescence (control: 531.4 +/- 76.1; ethanol: 141.1 +/- 30.2* mm-2; r = .82, P <.001). Concomitantly scattered expression of smooth muscle alpha-actin in sinusoids was observed. Although sinusoidal hemodynamics were not affected at baseline, a significant increase in sinusoidal contractility on endothelin-1 infusion (e.g., sinusoidal resistance [% of baseline value]: control: 10 minutes: 288.7 +/- 71.7, 20 minutes: 200.5 +/- 46.9; ethanol: 10 minutes: 1,916.0 +/- 701.7, 20 minutes: 656.8 +/- 103.3; P < .05 and .01, respectively) was observed. These data indicate that chronic ethanol consumption in this moderate model initiates stellate cell activation. Increased sinusoidal responsiveness to the vasoconstrictor ET-1 in vivo may contribute to the increased susceptibility of ethanol-fed rats to secondary stresses that increase ET-1 expression, such as endotoxemia.

Actins

Ozone-induced inflammation and altered ventilation in genetically susceptible mice: a comparison of acute and subacute exposures.

We have examined whether the effects of acute (2 ppm/3 h) and subacute (0.3 ppm/72 h) ozone (O3) exposures on airways are mutually predictive. Inbred C57BL/6J (susceptible) and C3H/HeJ (resistant) mice are differentially responsive to inflammation induced by the 2 exposures. Breeding experiments and cosegregation analysis indicated that 2 separate genes control inflammatory responses: Inf (acute), Inf-2 (subacute). The genetic model was also used to examine the effects of both exposures on the magnitude and pattern of breathing. Results imply that mechanisms that control susceptibility to the 2 exposures are not the same, and that one response is not necessarily predictive of the other.

Animals

Differential control of ventilation among inbred strains of mice.

The role genetic factors play in ventilatory control was examined by challenging eight inbred strains of mice to acute hypercapnia under normoxic and hypoxic conditions. Age-matched mice were exposed for 3-5 min to inspired gases of the following composition (FICO2:FIO2) 0.03:0.10, 2) 0.03:0.21, 3) 0.08:0.10, and 4) 0.08:0.21, with intermittent room air exposures. Breathing frequency (f) and tidal volume (VT) of unanesthetized, unrestrained mice were assessed by whole body plethysmography. During room air breathing, significant (P < 0.01) interstrain differences were noted in the pattern, but minute ventilation (VE) did not differ among the strains. Relative to room air, mild hypercapnia with hypoxia (0.03:0.10) significantly (P < 0.01) elevated VE in each strain, and the percent increase in VE of the DBA/2J strain was significantly (P < 0.05) greater than the other strains. The ventilatory response to these conditions was achieved primarily by a significant (P < 0.01) increase in f among the strains. During severely hypercapnic normoxia (0.08:0.21) and hypoxia (0.08:0.10), the increase in VE was significantly (P < 0.01) greatest in the C57BL/6J (B6) mice and least in the C3H/HeJ (C3) mice. The difference in hypercapnic VE between B6 and C3 strains was largely due to a significantly (P < 0.01) greater increase in VT by B6 mice. On the assumption that environmental factors were identical, these data suggest that genetic determinants govern interstrain variation in the magnitude and pattern of breathing during hypoxia and hypercapnia. Moreover, hypoxic and hypercapnic ventilatory responses appear to be influenced by different genetic mechanisms.

Animals

Inter-strain variation in susceptibility to hyperoxic injury of murine airways.

The contribution of genetic background in susceptibility to hyperoxic lung injury is not clear. We utilized inbred mice to: 1) characterize inter-strain variation in hyperoxia-induced effects on lavageable indicators of airway epithelial injury; 2) test the hypothesis that hyperoxia-induced change in airway permeability is under Mendelian control. Male mice (5-7 wk, 20-25 g) from six inbred strains were exposed to 95-99% oxygen (O2) or room air for 0, 48, or 72 h. Hyperoxia-induced alteration in lung permeability was estimated by changes in lung wet weight:dry weight ratio and total bronchoalveolar lavage (BAL) protein concentration. The airway inflammatory response to O2 was assessed by changes in cellular profiles in BAL fluid. At least two distinct phenotypes were found among the strains exposed to O2 for 72 h. The susceptible phenotype (exemplified by C57BL/6J [B6] mice) was characterized by mean BAL protein concentration that was approximately 10 times greater than the resistant phenotype (e.g. C3H/HeJ [C3] mice). Hyperoxia caused LWW:LDW to double in susceptible B6 mice relative to controls, while no significant change was found in resistant C3 mice. Compared to air-exposed controls, hyperoxia also decreased the mean number of BAL alveolar macrophages and increased polymorphonuclear leukocytes in B6 mice, but the inflammatory cell profile of C3 mice was not affected after 72 h. The observed ratios of resistant to susceptible phenotypes of F1, F2, and back-cross progeny from B6 and C3 progenitors were not consistent with the hypothesis that susceptibility to hyperoxia is under Mendelian control.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Susceptibility to ozone-induced inflammation. I. Genetic control of the response to subacute exposure.

We demonstrated previously that C57BL/6J (B6) inbred mice are susceptible and C3H/HeJ (C3) mice are resistant to airway inflammation that is induced by acute (3 h) exposure to 2 parts per million (ppm) ozone (O3). In the present study we tested the hypothesis that B6 and C3 mice are also differentially susceptible to the airway inflammatory responses to subacute (72 h) exposure to environmentally relevant concentrations of O3 (0.12 and 0.30 ppm). Male mice (20-25 g, 5-7 wk) were exposed continuously to 0.12 ppm O3, 0.30 ppm O3, or filtered air (control). Pulmonary inflammation was assessed after 24, 48, and 72 h by differential cell count and total protein in bronchoalveolar lavage (BAL) returns. Exposure to 0.12 ppm O3 caused significant influx of alveolar macrophages, polymorphonuclear leukocytes (PMNs), lymphocytes, and total BAL protein in both strains, but no differences in the magnitude of the responses were found between B6 and C3 mice. In contrast to the effect of 0.12 ppm O3, exposure to 0.30 ppm O3 elicited significantly greater numbers of inflammatory cells and BAL protein concentration in B6 mice relative to C3 mice. The phenotypes of the B6 and C3 mice were termed susceptible and resistant, respectively. To further evaluate the potential genetic contribution to the inflammatory response to 0.30 ppm O3, the F1, F2, and backcross progeny from B6 and C3 progenitors were examined. The ratios of susceptible and resistant phenotypes of these progeny support the hypothesis that a single autosomal recessive gene confers susceptibility to subacute O3-induced inflammation.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Susceptibility to ozone-induced inflammation. II. Separate loci control responses to acute and subacute exposures.

We demonstrated previously that inbred strains of mice are differentially susceptible to acute (3 h) and subacute (48 h) exposures to 2 parts per million (ppm) ozone (O3) and 0.30 ppm O3, respectively. Genetic studies with O3-resistant C3H/HeJ and O3-susceptible C57BL/6J strains have indicated that susceptibility to each of these O3 exposures is under Mendelian (single gene) control. In the present study, we hypothesized that the same gene controls susceptibility to the airway inflammatory responses to 2 ppm and 0.30 ppm O3 exposures. To test this hypothesis, airway inflammation was induced in 10 BXH and 16 BXD recombinant inbred (RI) strains of mice by acute as well as subacute O3 exposures. Airway inflammation was assessed by counting the number of polymorphonuclear leukocytes (PMNs) in bronchoalveolar lavage (BAL) returns obtained immediately after 48-h subacute exposure to 0.30 ppm O3, or 6 h after 3 h acute exposure to 2 ppm O3. Each RI strain was classified as susceptible or resistant to each exposure, based on a comparison of mean numbers of PMNs with those of the respective progenitor strains. For each RI set, a phenotypic strain distribution pattern (SDP) was thus derived for each exposure regimen, and the SDPs were then compared for concordance. Among the BXH RI strains, 4 of 10 responded discordantly to the two exposures: 3 were susceptible to acute exposure and resistant to subacute exposure, whereas 1 was conversely susceptible. Among the BXD RI strains, 4 of 16 were discordant: 1 was susceptible to acute exposure, and resistant to subacute exposure, whereas 3 were conversely susceptible.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Effects of ozone on transepithelial potential of mouse trachea.

The effects of ozone on tracheal electrical potential were investigated in inbred strains of mice that are differentially susceptible to ozone-induced inflammation. In male mice (9-13 wk), a tracheostomy was made under pentobarbital anesthesia for spontaneous breathing and tracheal potential was measured in the cephalad portion of the bisected trachea using Hanks' salt/agar-capped KCl bridges connected to a pair of calomel half cells. The mean tracheal potentials of five different strains of mice (C3H/HeJ, DBA/2J, C57BL/6J, BALB/cJ, and 129/J) were approximately 10 mV (lumen negative) with no significant interstrain difference. Amiloride reduced mouse tracheal potentials by approximately 70% in both C3H/HeJ and C57BL/6J mice, indicating that sodium absorption is the predominant ion transport across this tissue. Relative to air-exposed controls, acute ozone exposure (2 ppm for 3 h) significantly attenuated tracheal potential of inflammation-susceptible C57BL/6J mice by approximately 50% at 6 h and 40% at 24 h postexposure but had no effect immediately after exposure. The mean tracheal potential of C3H/HeJ mice was not changed by ozone. The differential effect of acute ozone exposure on tracheal potential in C57BL/6J and C3H/HeJ mice is consistent with differential susceptibility to ozone-induced increases in epithelial permeability in these strains.

Amiloride

Hypercapnic ventilatory responses in mice differentially susceptible to acute ozone exposure.

Susceptibility to ozone (O3)-induced pulmonary inflammation is greater in C57BL/6J (B6) than in C3H/HeJ (C3) strain of mice. We tested the hypothesis that altered ventilatory control occurs in B6 mice to a greater extent than in C3 mice after acute O3 exposure. Age-, sex-, and weight-matched C3 and B6 mice were exposed for 3 h to either 2 ppm O3 or filtered air. One and 24 h after O3 or air exposure, whole body plethysmography was used to measure breathing frequency (f), tidal volume (VT), and minute ventilation (VE). To assess changes in ventilatory control, mice were challenged by the elevation of fractional concentration of inspired CO2 levels to 5 and 8% in air for 10 min. After air exposure, there were significantly (P < 0.01) greater changes in VE in B6 than in C3 mice. Hypercapnia-induced changes in VE were significantly (P < 0.01) attenuated in B6 mice 1 h after O3 exposure. VT was significantly (P < 0.01) reduced 1 h after O3 in B6 and C3 mice; however, C3 mice increased f to sustain the hypercapnic VE response similar to air exposure. In contrast, the diminished VT in B6 mice 1 h after O3 occurred coincident with significantly (P < 0.01) reduced f, mean inspiratory flow, and slope of VE-to-%CO2 relationship compared with air exposure. Altered hypercapnic VE in B6 mice was partially reversed 24 h after O3 relative to air-exposed levels. These data suggest that control of ventilation during phenotypic response to CO2 is governed, in part, by genetic factors in inbred strains of mice.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Mast cells modulate acute ozone-induced inflammation of the murine lung.

We hypothesized that mast cells modulate lung inflammation that develops after acute ozone (O3) exposure. Two tests were done: (1) genetically mast-cell-deficient (WBB6F1-W/Wv, WCB6F1-SI/SId) and bone-marrow-transplanted W/Wv mice were exposed to O3 or filtered air, and the inflammatory responses were compared with those of mast-cell-sufficient congenic mice (WBB6F1-(+)/+, WCB6F1-(+)/+); (2) genetically O3-susceptible C57BL/6J mice were treated pharmacologically with putative mast-cell modulators or vehicle, and the O3-induced inflammatory responses were compared. Mice were exposed to 1.75 ppm O3 or air for 3 h, and lung inflammation was assessed by bronchoalveolar lavage (BAL) 6 and 24 h after exposure. Relative to O3-exposed W/Wv and SI/SId mice, the mean numbers of lavageable polymorphonuclear leukocytes (PMNs) and total BAL protein concentration (a marker of permeability) were significantly greater in the respective O3-exposed normal congenic +/+ mice (p < 0.05). Mast cells were reconstituted in W/Wv mice by transplantation of bone marrow cells from congenic +/+ mice, and O3-induced lung inflammation was assessed in the mast-cell-replete W/Wv mice. After O3 exposure, the changes in lavageable PMNs and total protein of mast-cell-replete W/Wv mice were not different from age-matched normal +/+ control mice, and they were significantly greater than those of sham-transplanted W/Wv mice (p < 0.05). Genetically susceptible C57BL/6J mice were pretreated with a mast-cell stabilizer (nedocromil sodium), secretagogue (compound 48/80), or vehicle, and the mice were exposed to O3.(ABSTRACT TRUNCATED AT 250 WORDS)

Acute Disease

Acute ozone-induced change in airway permeability: role of infiltrating leukocytes.

The role of infiltrating polymorphonuclear leukocytes (PMNs) in acute lung injury and inflammation is still controversial. In inbred mice, acute ozone (O3) exposure induces airway inflammation that is characterized by a maximal influx of lavageable PMNs 6 h after exposure and a maximal increase in lung permeability 24 h after O3. We tested the hypothesis that O3-induced change in airway epithelial permeability of O3-susceptible C57BL/6J mice is due to infiltrating PMNs. Male mice (6-8 wk) were treated with a nonsteroidal anti-inflammatory drug (indomethacin), a chemotactic inhibitor (colchicine), or an immunosuppressant (cyclophosphamide) to deplete or inhibit PMNs from infiltrating the airways. After drug or vehicle treatment, mice were exposed for 3 h to 2 ppm O3 or filtered air, and pulmonary inflammation was assessed by inflammatory cell counts and total protein content (a marker of airway permeability) in bronchoalveolar lavage (BAL) fluid. Filtered air exposure did not affect the parameters of pulmonary inflammation at any time after exposure. Compared with vehicle controls, each of the drug treatments resulted in significant reduction of PMN influx 6 and 24 h after O3. However, total BAL protein content was not attenuated significantly by the three treatments at either 6 or 24 h postexposure. Results of these experiments suggest that the influx of PMNs and the change in total BAL protein are not mutually dependent events in this model and suggest that infiltrating PMNs do not play a major role in acute O3-induced changes in permeability of the murine lung.

Animals