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Biomedical subjects

H S Iwamoto

Publications and source records attributed to H S Iwamoto.

At least 19 recordsLinked to original sources

Pulmonary inflammation associated with repeated, prenatal exposure to an E1, E3-deleted adenoviral vector in sheep.

Fetal gene therapy may prove useful in treating diseases that manifest in the perinatal or early postnatal period. Adenoviruses effectively transfer gene expression to a variety of tissues but also stimulate inflammatory and immune responses. The purpose of this study was to test the hypothesis that exposure of fetal sheep to a first generation adenovirus vector encoding bacterial beta-galactosidase, Av1nBg, before the development of the immune system, is safe, minimizes inflammatory and immune responses and induces tolerance. A total of 22 fetal sheep was studied; of these, two were born with respiratory distress, seven were electively killed and 13 died in utero. The incidence of mortality was higher than the < or = 10% we have experienced with other fetal sheep studies and was not likely related to complications arising from surgical or anesthetic procedures. Inflammatory and fibrotic responses were observed in the lungs and may represent untoward long-term consequences of in utero adenoviral gene therapy. Tolerance to Av1nBg was not established, and repeated exposure to Av1nBg before birth was associated with significant pathology and mortality.

Adenoviridae↗

Normal surfactant pool sizes and inhibition-resistant surfactant from mice that overexpress surfactant protein A.

Pulmonary surfactant protein-A (SP-A) has been reported to regulate the uptake and secretion of surfactant by alveolar type II cells, to stabilize large surfactant aggregates including tubular myelin, and to protect the surface activity of surfactant from protein inhibitors. In this study we investigated the consequences of overexpression of SP-A on pulmonary homeostasis and surfactant function in transgenic mice. The human SP-C promoter was used to direct synthesis of rat surfactant protein A (rSP-A) in alveolar type II cells and nonciliated bronchiolar cells of the distal respiratory epithelium. Levels of SP-A measured through enzyme-linked immunosorbent assay were 7- to 8-fold higher in lung homogenates and alveolar lavage fluid of the rSP-A mice than in those of transgene-negative littermates. The swimming exercise tolerance and lung compliance of mice bearing the transgene were unchanged. Mean air space sizes seen in randomly selected light-microscopic fields were not significantly different in the transgene-positive and -negative mice by morphometric analysis, but 15% of transgenic animals had scattered foci containing dilated alveoli and alveolar ducts without evidence of inflammation or fibrosis. Some alveolar macrophages contained bar-shaped osmophilic inclusions that had a highly ordered ultrastructure. There were no differences between the transgene-positive and -negative mice in the tissue or alveolar pool sizes of saturated phosphatidylcholine or in the large-aggregate composition of alveolar surfactant. The surface activity of surfactant isolated from the rSP-A mice was similar to that of the controls, but in the presence of protein inhibitors, the surface tension-reducing properties of the rSP-A surfactant were better preserved (P < 0.05). We conclude that overexpression of SP-A does not affect resting surfactant phospholipid levels, but that it enhances the resistance of surfactant to protein inhibition.

Animals↗

Surfactant protein-B-deficient mice are susceptible to hyperoxic lung injury.

Surfactant protein-B (SP-B) is a small, hydrophobic peptide that plays a critical role in pulmonary function and surfactant homeostasis. To determine whether SP-B protects mice from oxygen-induced injury, heterozygous SP-B(+/-) gene-targeted mice and wild-type SP-B(+/+) littermates were exposed to hyperoxia (95% oxygen for 3 d) or room air. Although specific lung compliance in room air in SP-B(+/-) mice was slightly reduced as compared with that in SP-B(+/+) mice, it was reduced more markedly during hyperoxia (46% versus 25% decrease, respectively). The larger decrease in lung compliance in SP-B(+/-) mice was associated with increased severity of pulmonary edema, hemorrhage and inflammation, lung permeability and protein leakage into the alveolar space. Hyperoxia increased SP-B messenger RNA (mRNA) and total protein concentrations by 2-fold in SP-B(+/+) and SP-B(+/-) mice, but decreased the abundance of SP-B protein in lavage fluid relative to total protein only in SP-B(+/-) mice. Hyperoxia increased SP-B expression, but apparently not enough to maintain SP-B function and lung compliance in the presence of increased protein leakage in SP-B(+/-) mice. Increased alveolar-capillary leakage and relative deficiency of SP-B may therefore contribute to oxygen-induced pulmonary dysfunction in SP-B(+/-) mice. These data support the concept that SP-B plays an important protective role in the lung.

Animals↗

Brief, intermittent hypoxia restricts fetal growth in Sprague-Dawley rats.

This study was conducted to determine whether brief, intermittent exposure to hypoxia with little change in nutrient intake would affect fetal growth. Pregnant rats were exposed to 1 or 2 h of hypoxia (FiO2 = 0.09-0.095) from days 15 to 19 of gestation. Exposure to 1 h of hypoxia decreased fetal body weight and length, liver weight and increased the brain/liver weight ratio (p < 0.05) as compared to controls. Two hours of hypoxia decreased fetal body weight and length, and heart, lung, kidney, gut, brain and liver weights (p < 0.01), but did not affect the brain/liver weight ratio. Two hours of hypoxia decreased maternal food intake and weight gain (p < 0.05), but fetal growth was not significantly altered in pair-fed controls. These data demonstrate that brief, intermittent periods of intrauterine hypoxia have significant effects on fetal growth.

Animals↗

Rescue of SP-B knockout mice with a truncated SP-B proprotein. Function of the C-terminal propeptide.

The function of the 102-amino acid C-terminal propeptide of surfactant protein B (SP-B) was analyzed by characterizing the phenotype associated with loss of expression of this peptide domain in transgenic mice. A construct encoding the signal peptide, N-terminal propeptide, and mature peptide of human SP-B (hSP-BDeltac) was cloned under the control of the 3.7-kilobase human SP-C promoter and injected into fertilized eggs of the FVB/N mouse strain. Founder mice expressing the hSP-BDeltac transgene were bred with heterozygous SP-B knockout mice (SP-B +/-). Offspring containing the transgene and one allele of mouse SP-B were identified and subsequently crossed to generate a transgenic line that expressed SP-BDeltac in a null background (SP-B(-/-)/hSP-BDeltac(+/+)). Expression of hSP-BDeltac in SP-B(-/-) mice was restricted to type II cells and resulted in a 2-fold increase in mature SP-B relative to wild type littermates. These mice survived without any evidence of respiratory problems and had normal lung function, normal alveolar surfactant phospholipid pool sizes, and typical tubular myelin indicating that the 102-residue C-terminal propeptide of SP-B is not required for normal structure and function of extracellular surfactant. However, proteolytic processing of the SP-C proprotein was perturbed resulting in the accumulation of a processing intermediate, Mr = 11,000, similar to the phenotype detected in SP-B(-/-) mice; furthermore, lamellar bodies in type II cells of SP-B(-/-)/hSP-BDeltac(+/+) mice were much larger than in the wild type animal and saturated phosphatidylcholine content in lung tissue was significantly increased although the incorporation of choline into saturated phosphatidylcholine was normal. Collectively, these results demonstrate a role for the C-terminal propeptide of SP-B in SP-C proprotein processing and the maintenance of lamellar body size. The C-terminal propeptide may be an important determinant of intracellular surfactant pool size.

Animals↗

Pulmonary dysfunction in neonatal SP-B-deficient mice.

Pulmonary function was assessed in newborn wild-type and homozygous and heterozygous surfactant protein B (SP-B)-deficient mice after birth. SP-B +/+ and SP-B+/- mice became well oxygenated and survived postnatally. Although lung compliance was decreased slightly in the SP-B+/- mice, lung volumes and compliances were decreased markedly in homozygous SP-B-/- mice. They died rapidly after birth, failing to inflate their lungs or oxygenate. SP-B proprotein was absent in the SP-B-/- mice and was reduced in the SP-B+/- mice, as assessed by Western analysis. Surfactant protein A, surfactant proprotein C, surfactant protein D, and surfactant phospholipid content in lungs from SP-B+/- and SP-B-/- mice were not altered. Lung saturated phosphatidylcholine and precursor incorporation into saturated phosphatidylcholine were not influenced by SP-B genotype. Intratracheal administration of perfluorocarbon resulted in lung expansion, oxygenation, and prolonged survival of SP-B-/- mice and in reduced lung compliance in SP-B+/+ and SP-B+/- mice. Lack of SP-B caused respiratory failure at birth, and decreased SP-B protein was associated with reduced lung compliance. These findings demonstrate the critical role of SP-B in perinatal adaptation to air breathing.

Animals↗

Effect of fetal nephrectomy on insulin-like growth factors and their binding proteins in sheep.

Bilateral nephrectomy retards fetal growth and decreases somatomedin (insulin-like growth factor-I, IGF-I) activity. To determine whether nephrectomy alters the synthesis of IGF-I or its binding proteins (IGFBPs), we studied 6 sets of twin fetuses. Kidneys were removed bilaterally from 1 twin of each set at 112-122 days of gestation (term 145 days). Plasma IGF-I concentrations were greater in nephrectomized fetuses than in the intact twins during the 1st week (261 +/- 35 vs. 153 +/- 21 ng/ml, p < 0.02; mean +/- SE) but not the 2nd week after surgery. Nephrectomy increased the abundance of the IGFBPs to levels 2-3 times greater than those in intact twins. Fetal hepatic IGFBP1 mRNA levels increased in 4 of 6 nephrectomized fetuses, while those of IGF-I, IGF-II, IGFBP2 were unchanged. Nephrectomy markedly alters the abundance of IGF-I and IGFBPs in plasma probably through mechanisms unrelated to synthesis.

Animals↗

Decreased lung compliance and air trapping in heterozygous SP-B-deficient mice.

Genetic ablation of the murine SP-B gene in transgenic mice caused lethal perinatal respiratory distress in homozygous offspring, whereas heterozygous SP-B (+/-) mice survived postnatally. In adult SP-B(+/-) mice, surfactant protein B mRNA and the alveolar lavage SP-B protein were reduced by 50% compared with wild-type littermates, consistent with the inactivation of a single SP-B allele. Expression of SP-A, SP-C, and SP-D proteins was not affected in SP-B(+/-) mice. Heterozygous SP-B(+/-) mice reached maturity in numbers expected by Mendelian inheritance of a recessive gene. Lung morphology and both intracellular and extracellular phospholipid pool size and composition were unaltered in the SP-B(+/-) mice. Despite normal survival, pulmonary function studies demonstrated a consistent decrease in lung compliance in SP-B(+/-) mice. Abnormalities of inflation/deflation curves demonstrated airway collapse at low deflation pressures. Residual volumes were increased in the SP-B(+/-) mice. In summary, SP-B mRNA and SP-B protein were reduced by 50% in SP-B(+/-) mice, resulting in abnormalities of lung compliance and air trapping, suggesting a potential susceptibility to pulmonary dysfunction associated with SP-B deficiency.

Animals↗

Postnatal lung function and morphology in transgenic mice expressing transforming growth factor-alpha.

Developmental changes in lung morphology and physiology during postnatal alveolarization were assessed in transgenic mice expressing transforming growth factor-alpha (TGF-alpha) in pulmonary type II cells under control of the surfactant protein C gene promoter. TGF-alpha transcripts were identified in respiratory epithelial cells at 1 day of age to adulthood. Enlargement of alveolar airspaces and fibrosis were detected as early as 1 week of age, and the increased airspace progressed with advancing age. Specific lung compliance was significantly increased in lungs of transgenic mice by 2 weeks of age and was associated with airflow obstruction. Chronic expression of TGF-alpha in the lungs of newborn transgenic mice caused remodeling of the developing lung during the period of postnatal alveolarization, resulting in markedly enlarged parenchymal airspace, pulmonary fibrosis, and physiological abnormalities including airway obstruction and increased lung compliance.

Animals↗

Altered surfactant function and structure in SP-A gene targeted mice.

The surfactant protein A (SP-A) gene was disrupted by homologous recombination in embryonic stem cells that were used to generate homozygous SP-A-deficient mice. SP-A mRNA and protein were not detectable in the lungs of SP-A(-/-) mice, and perinatal survival of SP-A(-/-) mice was not altered compared with wild-type mice. Lung morphology, surfactant proteins B-D, lung tissue, alveolar phospholipid pool sizes and composition, and lung compliance in SP-A(-/-) mice were unaltered. At the highest concentration tested, surfactant from SP-A(-/-) mice produced the same surface tension as (+/+) mice. At lower concentrations, minimum surface tensions were higher for SP-A(-/-) mice. At the ultrastructural level, type II cell morphology was the same in SP-A(+/+) and (-/-) mice. While alveolar phospholipid pool sizes were unperturbed, tubular myelin figures were decreased in the lungs of SP-A(-/-) mice. A null mutation of the murine SP-A gene interferes with the formation of tubular myelin without detectably altering postnatal survival or pulmonary function.

Animals↗

Adenovirus-mediated gene transfer to the respiratory tract of fetal sheep in utero.

Many human genetic diseases, such as congenital surfactant protein B deficiency, manifest in the perinatal period. Prenatal gene therapy may be necessary to minimize morbidity in these diseases. We hypothesized that bacterial beta-galactosidase (beta-Gal) gene could be transferred to and expressed in the pulmonary epithelium of fetal sheep in utero using a replication-deficient adenovirus (Av1LacZ4). We instilled Av1LacZ4 (1.5 x 10(11) plaque-forming units, n = 10) or saline (n = 2) intratracheally to chronically instrumented fetal sheep at 112-134 days gestation (term = 145 days). Lung fluid was collected before and after Av1LacZ4 administration for cytological analysis. Lung tissue was examined for transgenic beta-Gal activity and evidence of toxicity. Transgenic beta-Gal activity was visualized as blue nuclear staining of tissue treated with X-Gal and was detected in the lungs of 5 animals for up to 14 days after administration. Transgenic beta-Gal activity was not detected in the lungs of animals analyzed beyond 14 days after treatment. Pulmonary histopathology was detected in most Av1LacZ4-treated animals and manifested as a mixed cellular infiltrate consisting of neutrophils, macrophages, and lymphocytes. Fetal lung fluid analysis revealed a predominantly lymphocytic response in most Av1LacZ4-treated animals within 3 days (2.88 x 10(6) vs. 4 x 10(3) total cells/ml in control animals). We have demonstrated that adenovirus vectors can direct gene transfer to the lungs of fetal sheep in utero. The transferred gene expression was transient and possibly limited by the induced inflammatory response.

Adenoviridae↗

Intraamniotic administration of an adenoviral vector for gene transfer to fetal sheep and mouse tissues.

Replication-deficient adenoviruses have been used to transfer various genes of interest to mammalian tissues in vivo. Effective gene therapy for inborn genetic defects presenting with significant morbidity and mortality at birth will require correction of the defect prenatally. To test the hypothesis that intra-amniotically administered adenovirus transfers gene expression to fetal tissues, replication-deficient human type 5 adenovirus carrying the lacZ gene which encodes nuclear-targeted bacterial beta-galactosidase (Av1LacZ4) was instilled into the amniotic cavity of fetal sheep (10(10) to 1.5 x 10(11) pfu) and fetal mice (10(9) pfu) at 0.8 term gestation. Amniotic membranes and gastrointestinal and respiratory tract tissues were harvested after 3 d, bacterial beta-galactosidase activity was determined by 5-bromo-4-chloro-3-indoyl-beta-D-galactopyranoside (X-gal) enzyme-histochemistry, and tissue integrity was assessed in sections stained with hematoxylin and eosin. Bacterial beta-galactosidase activity was abundant in amniotic membranes and present in lower levels in esophagus, stomach, and small intestine as well as in conducting airways and pulmonary alveoli. To determine whether gene transfer by intraamniotic injection of adenovirus was dose-dependent, Av1Luc1, an adenoviral vector carrying the gene for luciferase (10(5)-10(9) pfu), was injected intraamniotically into fetal mice at 0.8 term gestation. Luciferase activity measured after 3 d in tissue homogenates of Av1Luc1-treated fetal mice revealed a linear dose response in amniotic membranes and gastrointestinal and respiratory tract organs. Intraamniotic administration of an adenoviral gene vector leads to expression of the transferred gene in amniotic membranes as well as in fetal gastrointestinal and respiratory tract tissues in a dose-dependent manner.

Adenoviruses, Human↗

Effects of lung distension and spontaneous fetal breathing on hemodynamics in sheep.

In previous studies, we determined that pulmonary ventilation and oxygenation were largely responsible for increasing pulmonary blood flow and for altering central blood flow patterns but could not account for the increase in combined ventricular output (the sum of left and right ventricular outputs) that usually occurs after birth. We had ventilated fetuses with oscillating positive pressures; the possibility that high intrathoracic pressures adversely affected cardiac output could not be ruled out. To determine the effects of negative intrathoracic pressure ventilation, we occluded the umbilical cord of nine long-term instrumented fetal sheep at 135 +/- 1.2 d gestation while introducing humidified oxygen gas intratracheally. This stimulated continuous fetal respiratory activity, which resulted in negative intrathoracic pressures and increased fetal oxygenation. Pulmonary blood flow increased from 121 +/- 60 to 901 +/- 139 mL.min-1.100 g-1 (mean +/- SD) and descending aortic blood pressure increased from 7.0 +/- 1.2 to 9.6 +/- 2.0 kPa. Central blood flow patterns were altered so that right to left shunting of blood through the foramen ovale and ductus arteriosus was abolished and a left to right shunt developed across the ductus arteriosus. However, cardiac output did not increase significantly. This may be related, in part, to the increase in afterload. It is clear that pulmonary ventilation and oxygenation are the major factors responsible for changing pulmonary blood flow and central blood flow patterns at birth. Other birth-related events, such as a decrease in environmental temperature and an increase in metabolic rate, are likely to induce cardiac output to increase.

Animals↗

Sympathoadrenal, metabolic, and regional blood flow responses to cold in fetal sheep.

Because environmental temperature falls when the fetus is delivered from the uterus, the role of cold in stimulating cardiovascular and sympathoadrenal responses at the time of birth was examined in fetal lambs. In eight fetuses (gestational age 140 +/- 2 d), catheters were inserted into hind-limb and neck arteries and veins, and into an umbilical vein. After returning the fetus to the uterus and administering a muscle relaxant (succinylcholine chloride), blood gases, glucose and lactate concentrations, and plasma catecholamine and atrial natriuretic peptide concentrations were measured. Fetal combined ventricular output and organ blood flows were measured by the radionuclide-labeled microsphere technique. Measurements were repeated after delivering the fetus into a warm water bath (40 degrees C) and at 15 and 30 min after the bath temperature was cooled to 25 degrees C. Fetal cooling stimulated a sympathoadrenal response, which was manifested by an immediate increase in heart rate and arterial blood pressure, a rise in atrial natriuretic peptide, and modest increase in norepinephrine concentration. Contrary to earlier reports that investigated the effect of cold on fetal lambs using an intrauterine cooling coil, we did not find a decrease in fetal arterial oxygen tensions and pH, an increase in plasma glucose and lactate concentrations, or changes in fetal oxygen consumption. Combined ventricular output did not increase with cooling, and blood flow to most organs did not change significantly; however, blood flow to the skin decreased markedly, particularly in the lower body.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenal Glands↗

Effects of acute hypoxemia on insulin-like growth factors and their binding proteins in fetal sheep.

It has been proposed that insulin-like growth factor I (IGF-I) regulates fetal growth and differentiation. Plasma IGF-I concentrations correlate positively with fetal nutrient availability and newborn birth weights. To explore the hypothesis that hypoxemia decreases fetal growth by decreasing fetal IGF-I availability, we instrumented 14 fetal sheep with vascular catheters. At least 4 days after surgery, 10 fetuses were made acutely hypoxemic by infusing nitrogen into the maternal trachea for 3 h. Fetal blood oxyhemoglobin saturation decreased from 53 +/- 6 (SD) to 31 +/- 9%. Concomitantly, plasma IGF-I concentrations decreased from 91 +/- 11 to 67 +/- 10 ng/ml and IGF-I binding protein-1 concentration increased significantly, as assessed by ligand and Western blot analysis. Fetal IGF-I concentrations remained below control values throughout a subsequent recovery period (68 +/- 12 ng/ml at 6 h). In four control fetuses and in the ewes, plasma IGF-I concentrations were not significantly different from control values (97 +/- 18 and 181 +/- 18 ng/ml, respectively). These data support the hypothesis that decreases in fetal oxygen availability may decrease fetal growth by decreasing IGF-I production and availability.

Acute Disease↗

Effect of graded umbilical cord compression in fetal sheep at 0.6-0.7 gestation.

To define responses of immature fetuses to asphyxia, we occluded the umbilical cord of 11 chronically instrumented fetal sheep at 82-94 days gestation and measured hemodynamic and catecholamine responses. The fetuses became acidemic, hypoxemic, and hypercarbic: arterial pH and PO2 decreased from 7.36 +/- 0.04 and 22 +/- 3 Torr to 7.10 +/- 0.04 (mean +/- SD, P less than 0.01) and 15 +/- 4 Torr (P less than 0.01), respectively, and PCO2 increased from 56 +/- 5 to 86 +/- 8 Torr (P less than 0.01) when umbilical blood flow was reduced by 75-88%. This degree of reduction in umbilical blood flow decreased cardiac output from 606 +/- 101 to 247 +/- 67 ml.min-1.kg-1 (P less than 0.01) and blood flow to hepatic, renal, musculoskeletal, and pulmonary vascular beds. Plasma norepinephrine concentrations increased from 1,557 +/- 975 to 16,718 +/- 14,672 pg/ml (P less than 0.05) with a 75-88% reduction, but mean arterial blood pressure did not increase. The absence of a hypertensive response probably relates to the decrease in cardiac output. These data indicate that asphyxia severely compromises cardiac output and organ perfusion in the midgestation fetus.

Animals↗

Measurement of regional cerebral blood flow in the dog using ultrafast computed tomography. Experimental validation.

The applicability, feasibility, reproducibility, and accuracy of the method of measuring regional cerebral blood flow using ultrafast computed tomography were evaluated in 25 dogs under varying physiological and pathophysiological conditions. Regional cerebral blood flow values were 75.6 +/- 29.4 ml/100 g/min (mean +/- standard deviation) for the hemisphere, 68.4 +/- 28.2 ml/100 g/min for the basal ganglia, 41.2 +/- 15.0 ml/100 g/min for the internal capsule, and 80.8 +/- 37.2 ml/100 g/min for the neocortex. Measurements made 10 minutes apart were significantly (p less than 0.05) correlated. Simultaneous measurements of regional cerebral blood flow by the microsphere and ultrafast computed tomography methods showed a significant (p less than 0.05) correlation for the hemisphere (r = 0.95), basal ganglia (r = 0.95), and neocortex (r = 0.94) but not for the internal capsule (r = 0.51). Microsphere and ultrafast computed tomography regional cerebral blood flow values were also in agreement in radiation-damaged brain with appreciable blood-brain barrier breakdown, and the two methods demonstrated similar responsiveness of regional cerebral blood flow to alterations in arterial carbon dioxide tension. The accuracy and sensitivity of the ultrafast computed tomography technique suggests that it affords a useful new tool for studying normal and abnormal regional cerebral blood flow.

Animals↗