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Biomedical subjects

S G Haworth

Publications and source records attributed to S G Haworth.

At least 19 recordsLinked to original sources

Birth upregulates nitric oxide synthase activity in the porcine lung.

Developmental changes in the lung occur at birth, allowing for the transition from placental to air breathing. Here we have measured nitric oxide synthase (NOS) activity in the porcine lung pre and post partum. NOS activity, which was predominantly calcium dependent, was low in full term fetal tissue compared to that present in lungs from the newborn (5 minutes post partum), 1, 3, 6 and 14 day old animals. No increase in activity was seen when fetal pigs were allowed to breathe for 5 minutes. Specific activity remained low in fetal tissue following partial purification. By contrast, levels of NOS III protein in tissue extracts and in pulmonary arterial endothelial cells, demonstrated by immunohistochemistry, were similar in tissue from the fetal and newborn animals. Thus NOS activity is significantly lower in fetal when compared to postnatal lung tissue despite comparable amounts of NOS III protein being expressed, and birth is followed by an abrupt increase in enzyme activity in animals born at term which correlates with an increase in protein expression.

Aging↗

Perinatal development influences mechanisms of bradykinin-induced relaxations in pulmonary resistance and conduit arteries differently.

OBJECTIVE: As bradykinin (BYK) relaxes conduit (EPA) and resistance (RPA) pulmonary arteries from both perinatal and adult lungs, we investigated whether this vasodilator's relaxation-mechanisms were altered during perinatal development, differed between EPA and RPA and differed with other endothelium-dependent vasodilators, acetyicholine (ACH) and substance P (SP). METHODS: Arteries from mature foetal (5 days), neonatal (approximately 5 min), newborn (60-84 h) and adult pigs (> or =6 months) were isolated, mounted for in vitro isometric force recording, activated with PGF(2alpha) (30 micromol/l) and relaxed with BYK (10 pmol/l-1 micromol/l), SP (10 pmol/l-0.1 micromol/l) or ACH (1 nmol/l-1 mmol/l). RESULTS: (i) BYK: L-NAME (100 micromol/l) attenuated relaxations in foetal EPA ( approximately 55%) but nearly abolished them in the adult ( approximately 80%). In RPA, L-NAME nearly abolished ( approximately 90%) relaxations in the foetus and this effect diminished progressively with age to approximately 20% in the adult. Indomethacin (IND, micromol/l) attenuated relaxations in neonatal (approximately 25%), new-born and adult EPA (both approximately 45%). Together, L-NAME and IND abolished relaxations in all EPA and in neonatal RPA but not in older RPA. SKF525a (100 micromol/l) attenuated relaxations in foetal RPA ( approximately 4%), diminishing in the adult RPA to approximately 10%. Together, SKF52Sa and L-NAME largely abolished relaxations in postnatal RPA (approximately 80%). Activation with K(+)=125 mmol/l attenuated relaxations in adult EPA (approximately 80%), foetal RPA ( approximately 45%) and neonatal RPA (approximately 75%) and abolished relaxations in RPA from older ages. (ii) ACH: L-NAME abolished relaxations in new-born EPA and RPA. In adult EPA, combined L-NAME and IND moderately attenuated relaxations. (iii) SP: Combined application of L-NAME and IND attenuated relaxations to a similar degree in new-born and adult EPA and RPA. CONCLUSIONS: In postnatal EPA, BYK-relaxations depend completely on prostaglandin- and NO-synthesis whereas those to SP (at all ages) and ACH (in the adult) do not. In RPA, BYK-relaxations develop from being completely dependant on the sole release of NO (foetus) to being almost completely independent of it (adult), a situation mimicked partially by SP but not by ACH, which, in new-born RPA is completely dependent on NO. BYK-relaxations in postnatal RPA depend on the release of a hyperpolarising factor generated through an SKF525a-sensitive pathway in conjunction with NO. The mechanisms of endothelium-dependent BYK-relaxations in the pulmonary vascular bed undergo diverging alterations, depending on the stage of development and arterial size/function. These changes are specific for BYK as they differ from those obtained from ACH or SP.

Acetylcholine↗

Expression of pulmonary vascular angiotensin-converting enzyme in primary and secondary plexiform pulmonary hypertension.

The hypothesis for this study was that increased local expression of vascular angiotensin-converting enzyme (ACE) may contribute to the arterial remodelling which accompanies pulmonary hypertension, since angiotensin II (ANG II) is an important mediator of pulmonary vascular cell growth. The expression of ACE was studied by immunohistochemistry in paraffin-embedded lung sections from adults undergoing heart-lung transplantation for severe primary (n=6) and secondary (n=7) pulmonary arterial hypertension (PH), compared with age-matched controls (n=11). An antigen retrieval technique was used prior to incubating sections with the anti-ACE monoclonal antibody, CG2, or the endothelial marker, monoclonal anti-CD31. In control lungs, the highest level of ACE immunostaining was seen in the alveolar capillary endothelium, with less intense staining in small intra-acinar pulmonary arteries and relatively little staining in larger preacinar arteries. ACE immunostaining was virtually absent in lymphatics and veins. In both primary and secondary PH, there was an increase in ACE immunostaining in the endothelium of intra-acinar peripheral pulmonary arteries compared with control lungs, extending to the level of alveolar ducts, as confirmed by semi-quantitative analysis. The increase in endothelial ACE expression in the intra-acinar arteries of patients with primary and secondary PH is consistent with the hypothesis that locally increased production of ANG II may contribute to the process of pulmonary vascular remodelling.

Adult↗

Birth associated changes in pulmonary arterial connective tissue gene expression in the normal and hypertensive lung.

OBJECTIVES: To determine the temporal and spatial expression of the connective tissue precursors, procollagen and tropoelastin mRNA in normal and pulmonary hypertensive porcine pulmonary arteries from birth onwards. METHODS: Using in situ hybridisation, connective tissue gene expression for procollagen alpha1(I) and alpha1(III) and tropoelastin was studied in intrapulmonary arteries from normal piglets, 5 min-16 weeks, and from piglets made pulmonary hypertensive by exposure to hypobaric hypoxia for 3 days, from birth, 3 or 14 days of age. In addition, Type III pN-procollagen, tropoelastin and collagen I and III were studied by immunohistochemistry. Quantitative or semi-quantitative techniques were applied to both in situ and immunohistochemical studies. RESULTS: Procollagen alpha1(I) and alpha1(III) mRNA expression increased rapidly in the media and adventitia between birth and 3 days of age (P<0.05). The increase was transient and the number of cells expressing procollagen mRNA decreased to the low newborn number after 6 days of age. Type III pN-procollagen immunostaining was greatest in newborn elastic and muscular arteries and then decreased. Collagen I and III increased mainly after 6 days of age. In animals exposed to chronic hypobaric hypoxia from birth, the increase in procollagens I and III mRNA was prevented. Exposure to hypoxia from 3 or 14 days led to little change in either gene expression or in procollagen and mature collagen from the normal. Tropoelastin gene expression was high at birth in the endothelium and media for the first 6 days, and then decreased. Normally, tropoelastin decreased in the media and increased in the adventitia after 16 days of age. Hypoxia had no effect on the mRNA but led to increased tropoelastin. CONCLUSION: We demonstrated marked, rapid changes in temporal and cell specific connective tissue gene expression in normal pulmonary arteries immediately after birth as the vasculature remodels. Each gene appeared to have its own timetable of expression and responded differently to hypoxia-induced hypertension.

Animals↗

Neonatal pulmonary hypertension prevents reorganisation of the pulmonary arterial smooth muscle cytoskeleton after birth.

The pulmonary arterial smooth muscle cell (SMC) cytoskeleton was studied in tissue from 36 piglets aged from within 5 min of birth to 21 d of age, and in 8 adults. An additional 16 piglets were made pulmonary hypertensive by exposure to hypobaric hypoxia (50.8 kPa) for 3 d. In conduit intrapulmonary elastic arteries alpha, beta and gamma actin, the 204, 200 and 196 kDa myosin heavy chain (MHC) isoforms and vinculin were localised by immunohistochemistry. The total actin content, the proportion of monomeric to filamentous alpha and gamma actin and changes in the proportions of the MHC isoforms were determined biochemically. Dividing SMCs were localised and quantified using Ki-67. We found a transient reduction in immunohistochemical expression of gamma actin, 204 kDa MHC isoform and vinculin at 3 and 6 d in the inner media, associated with a transient increase in Ki-67 labelling. The actin content also decreased at 3 and 6 d (P < 0.05), but there was a postnatal, permanent increase in monomeric actin, first the alpha then the gamma isoform. The relative proportions of the MHC isoforms did not change between birth and adulthood in elastic pulmonary arteries but in muscular arteries the 200 kDa isoform increased between 14 d and adulthood. Pulmonary hypertension prevented both the immunohistochemical changes and the postnatal burst of SMC replication and prevented the transient postnatal reduction in actin content. These findings suggest that rapid remodelling of the actin cytoskeleton is an essential prerequisite of a normal postnatal fall in pulmonary vascular resistance.

Actins↗

Prenatal origins of human intrapulmonary arteries: formation and smooth muscle maturation.

Recent studies on the morphogenesis of the pulmonary arteries have focused on nonhuman species such as the chick and the mouse. Using immunohistochemical techniques, we have studied 16 lungs from human embryos and fetuses from 28 d of gestation to newborn, using serial sections stained with a panel of antibodies specific for endothelium, smooth muscle, and extracellular matrix proteins. Cell replication was also assessed. Serial reconstruction showed a continuity of circulation between the heart and the capillary plexus from at least 38 d of gestation. The intrapulmonary arteries appeared to be derived from a continuous expansion of the primary capillary plexus that is from within the mesenchyme, by vasculogenesis. The arteries formed by continuous coalescence of endothelial tubes alongside the newly formed airway. Findings were consistent with the pulmonary arterial smooth muscle cells being derived from three sites in a temporally distinct sequence: the earliest from the bronchial smooth muscle, later from the mesenchyme surrounding the arteries, and last from the endothelial cells. Despite their different origins, all smooth muscle cells followed the same sequence of expression of smooth muscle-specific cytoskeletal proteins with increasing age. The order of appearance of these maturing proteins was from the subendothelial cells outward across the vessel wall and from hilum to periphery. The airways would seem to act as a template for pulmonary artery development. This study provides a framework for studying the signaling mechanisms controlling the various aspects of lung development.

Actins↗

Familial pulmonary hypoplasia: plain film appearances with histopathological correlation.

Familial pulmonary hypoplasia is a rare cause of bilateral pulmonary hypoplasia. We describe the plain film appearances and correlate these with the histopathological findings in an infant who survived 5 weeks. In this case, improved technology prolonged survival, allowing the radiological appearance of the primitive lung architecture to become more clearly defined.

Adult↗

Maturation of the response to bradykinin in resistance and conduit pulmonary arteries.

OBJECTIVE: Immaturity of the endothelial-dependent relaxation is thought to be characteristic of the newborn pulmonary elastic arteries. In adulthood, the reactivity of different pulmonary arterial segments varies. Therefore, we investigated the presence of endothelial heterogeneity in perinatal porcine pulmonary arteries and compared it with the adult by studying the bradykinin-, substance P- and acetylcholine-induced relaxations in different arteries. METHODS: Three types of pulmonary arteries (large conduit elastic, distal branching and resistance-sized; in situ diameters 0.7-1.7, 0.3-0.5 and 0.1-0.2 mm, respectively) were isolated from lungs of adult (nine months), young (60-84 h), newborn (4 min) and near-term foetal pigs. They were mounted for isometric force recording, contracted first with K+ = 125 mmol/l (reference contraction). Cumulative concentration-response curves to acetylcholine, substance P or bradykinin were obtained from prostaglandin F2 alpha (30 mumol/l) precontracted vessels. The effects of captopril and O2(95 or 8%) were also determined. Experiments were terminated by adding 100 mumol/l papaverine, obtaining maximal relaxation, which was used for normalising relaxations. RESULTS: (i) Acetylcholine: In resistance arteries, relaxations were absent in the newborn and the adult. In conduit arteries, they were present from 60-84 h onward. (ii) Substance P: In resistance arteries, relaxations were only present in the adult. In the other two types of arteries, rudimentary relaxations were present from the mature foetal stage onward. (iii) Bradykinin: In resistance arteries, identical relaxations were present at all ages which, in the foetus and the adult, were insensitive to changes in O2 levels (95 to 8%). In conduit arteries, concentration-dependent relaxations were present from birth, increasing in amplitude with age and these were potentiated by captopril. Foetal conduit arteries relaxed to the single application of 0.1 mumol/l bradykinin, indicating age-dependent tachyphylaxis. CONCLUSIONS: (i) Bradykinin is unique among endothelium-dependent vasodilators in being able to relax all vascular segments, at all ages, subject to tachyphylaxis and bradykinin-breakdown but independent of the prevailing O2 concentration. (ii) Heterogeneity of the relaxations between conduit and resistance arteries is evident from the mature foetal stage onward. (iii) The type of agonist, the type of vessel and the age each independently determine the presence or absence of endothelial relaxations. Therefore, the perinatal pulmonary circulation is not immature with respect to endothelial-dependent relaxation; rather, the nature of this process changes within the perinatal period and between birth and adulthood.

Acetylcholine↗

Vasoconstriction of intrapulmonary arteries to P2-receptor nucleotides in normal and pulmonary hypertensive newborn piglets.

1. The vasoconstrictor responses of isolated intrapulmonary arteries (IPA) to P2-receptor agonists was investigated during adaptation to extrauterine life in the normal piglet and the effect of pulmonary hypertension was studied following exposure of newborn animals to chronic hypobaric hypoxia (51 kPa) for 3 days. 2. At resting tone, alpha,beta-methyleneATP (alpha,beta-meATP) (P2X-receptor agonist) contracted intrapulmonary arteries from adult, but not immature pigs, and repeated application desensitized the response. 3. Adenosine 5'-triphosphate (ATP) induced endothelium-independent relaxation at low concentrations at all ages, a variable contractile response to high concentrations developed by 3 days, becoming larger and consistent by 14 days of age. 4. Uridine 5'-triphosphate (UTP) evoked a contractile response in normal intrapulmonary arteries from foetal to adult life, the magnitude of the response increasing with age. Endothelial removal and pre-incubation with Nomega-nitro-L-arginine methyl ester (L-NAME) (100 microM) increased the contractile response of adult vessels. 5. Pre-incubation with alpha,beta-meATP (100 microM), increased the contractile response to UTP in both newborn and adult vessels. ATP-induced relaxations were reduced in newborn vessels but there was no effect on the responses of adult vessels. 6. Responses to UTP, ATP and alpha,beta-meATP of intrapulmonary arteries from newborn piglets exposed to chronic hypobaric hypoxia for 3 days were normal. 7. In summary, UTP elicited marked vasoconstriction of porcine IPA at all ages. UTP and ATP responses were consistent with activation of the P2Y4-receptor recently identified in vascular smooth muscle by others. alpha, beta-meATP induced a small vasoconstriction in the adult probably via the P2X1-receptor. Responses remained normal in neonatal pulmonary hypertension.

Adenine Nucleotides↗

Vasodilatation of intrapulmonary arteries to P2-receptor nucleotides in normal and pulmonary hypertensive newborn piglets.

1. The vasodilator responses of isolated intrapulmonary arteries (IPA) to P2-receptor agonists were investigated during adaptation to extrauterine life in the piglet. The effect of pulmonary hypertension on the normal response was determined after exposing newborn animals to chronic hypobaric hypoxia (51 kPa) for 3 days. 2. Adenosine 5'-triphosphate (ATP), 2-methylthioATP (2-meSATP), adenosine 5-O-(2-thiodiphos-phate) (ADPbetaS) and uridine 5'-triphosphate (UTP) induced a relaxation in normal newborn piglet IPA pre-contracted with prostaglandin F2alpha (PGF2alpha). The relaxations were not affected by removal of the endothelium. The responses to ATP and ADPbetaS increased significantly with age. 3. The relaxation responses of IPA to ATP, 2-meSATP and ADPbetaS continued to increase normally after birth in an hypoxic environment. 4. The results of the study show that vasodilatation of porcine intrapulmonary vessels to nucleotides increased during development from foetus to adult; that the vasodilatation to purines was mediated by P2Y-receptors on the vascular smooth muscle rather than on the endothelium; and that the P2Y-receptor mediated relaxation of IPA remained normal in the pulmonary hypertensive neonate.

Adenine Nucleotides↗

Persistent pulmonary hypertension of the newborn associated with pulmonary atresia and intact interventricular septum.

Neonates with pulmonary atresia and intact interventricular septum (PAIVS) do not have pulmonary vascular disease secondary to their heart abnormality. Persistent pulmonary hypertension of the newborn has not been described in association with this condition. The case is reported of a female neonate born with PAIVS, who preoperatively had no clinical evidence or any risk factors for persistent pulmonary hypertension of the newborn, but whose postoperative course was highly suggestive of persistent pulmonary hypertension; necropsy confirmed the features of pulmonary vascular disease.

Fatal Outcome↗

Role of NO in recovery from neonatal hypoxic pulmonary hypertension.

BACKGROUND: The management of sick newborn infants who have sustained a hypoxic insult is a common clinical problem but relatively little is known about the recovery process. The aim of this study was to investigate this process in newborn piglets. METHODS: Thirty five newborn piglets were exposed to chronic hypobaric hypoxia for three days, either from birth, three or 14 days of age, and were allowed to recover for one, three, or six days. Control animals of relevant age were also studied. The heart weight ratio and pulmonary arterial muscularity were measured. Endothelial dependent and independent relaxation of the isolated intrapulmonary conduit arteries was determined in classical organ chamber studies, together with measurement of basal and stimulated cGMP accumulation. RESULTS: After six days of recovery the hypoxia induced right ventricular hypertrophy and pulmonary arterial medial hypertrophy had decreased in all animals but values were still abnormal in the two younger age groups. Relaxation was still impaired during the first three days of recovery in all groups, had normalised by six days in the two youngest groups, but relaxation (both endothelium dependent and independent) remained impaired in older animals. In these older animals basal nitric oxide (NO) production and basal and stimulated cGMP accumulation was normal. CONCLUSIONS: The recovery of the smooth muscle cells lags behind that of the endothelial cells. A normal stimulated increase in cGMP with reduced relaxation suggests an altered threshold for cGMP effected relaxation. These findings help to explain why some hypoxic infants require protracted NO therapy.

Acetylcholine↗

Newborn intrapulmonary veins are more reactive than arteries in normal and hypertensive piglets.

The reactivity of pulmonary veins during adaptation from pre- to postnatal life is not well characterized. With an in vitro organ bath technique, the responses to the contractile and relaxant agonists U-46619 (10(-10) to 3 x 10(-6) M) and acetylcholine (10(-9) to 10(-4) M) were compared in adjacent conduit pulmonary vein and artery rings from 66 piglets aged 1 wk preterm to 14 days of postnatal life and from adult tissue. Five additional piglets were made hypertensive by exposure to chronic hypoxia for 3 days after birth. Both arteries and veins showed smaller contractile and relaxant responses before birth than after. By 5 min after birth, the contraction by arteries and relaxation by veins had increased (P < 0.05). By 3 days of age, arterial relaxation increased, but in all animals, venous relaxation exceeded that in arteries (P < 0.05). Veins contracted more than arteries in animals aged 3-14 days. Neonatal hypoxia diminished the responses to both agonists in the veins (P < 0.05), whereas the response in the arteries remained similar to that in the normal newborn. We speculate that veins may be more important in postnatal adaptation than previously suggested.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5↗

Changes in ANP responsiveness of normal and hypertensive porcine intrapulmonary arteries during maturation.

Pulmonary vascular resistance falls rapidly after birth, but endothelium-dependent relaxation is relatively poor during the perinatal period. Atrial natriuretic peptide (ANP) is a potent vasodilator; however, its role in the process of perinatal adaptation is uncertain. Porcine intrapulmonary conduit arteries (IPA) from fetal, newborn (< 5 min), 3-, 6-, and 17-d-old, and adult pigs, and from piglets made hypoxic from 0 to 3, 3 to 6, or 14 to 17 d, were isolated and mounted for isometric force recording. Rings were precontracted with prostaglandin-F2 alpha (PGF2 alpha, 10 microM) or KCl (40 mM). ANP was added cumulatively (10 pM to 100 nM). C-type natriuretic peptide (CNP) was added as a single concentration of 100 nM. Accumulation of cGMP under basal conditions and stimulated by ANP or CNP was measured by radioimmunoassay system. Frozen sections of lung tissue were incubated with 125I-labeled alpha-ANP, and binding site density was assessed on IPA with an image analysis system. ANP relaxed IPA in pigs at all ages, but the effect was significantly greater at 6 and 17 d of age. Hypoxia in animals from 14 to 17 d old impaired ANP-induced relaxation. CNP relaxed IPA poorly: < 12% at all ages. ANP increased cGMP accumulation in both normal and hypoxic animals. CNP did not increase cGMP generation in IPA from normal animals but did so in IPA from 3-d-old hypoxic animals. ANP-specific binding sites were demonstrated on the pulmonary artery smooth muscle cells, with greater binding in the young animals. The increased relaxant responses to ANP during adaptation may be important in maintaining low pulmonary vascular resistance. In contrast, CNP was largely ineffective in relaxing pulmonary arteries.

Age Factors↗

Muscarinic receptor subtypes in the porcine lung during postnatal development.

The responsiveness of the pulmonary circulation to acetylcholine changes in the newborn piglet. Therefore muscarinic receptors have been studied in the developing porcine lung from birth to adulthood using ligand binding, Northern blotting and in situ hybridisation. Maximal binding capacity of [N-methyl-3H] scopolamine and the affinity of the receptor in lung membranes increased between birth and 16 days (p < 0.05). Subtype affinity changed with age, but always M3, > M1 > M2. Northern blots of porcine muscarinic receptor subtypes showed m1, m2 and m3 mRNA present in lung membranes. m2 mRNA was present at all ages and decreased with age. m1 mRNA was absent at birth and m3 mRNA was absent at 3 days. Autoradiographic localisation showed ligand binding to the parenchyma and airway smooth muscle and nerves, there was no binding to intrapulmonary vessels. In situ hybridisation localised mRNA of all three subtypes to the smooth muscle cells of both vessels and airways. Changes in the receptor subtypes may explain the pharmacological changes during postnatal adaptation.

Animals↗

Expression and function of atrial myosin light chain 1 in the porcine right ventricle of normal and pulmonary hypertensive animals.

We investigated the expression of atrial myosin light chain 1 (ALC-1) and myosin cycling kinetics in the normal and hypertrophied right ventricle of the neonatal porcine heart. Right ventricular hypertrophy was induced by exposing piglets immediately after birth to hypobaric hypoxia for 3 days. Control piglets were kept under normal conditions for the same time. ALC-1 expression in the hypertrophied right ventricle was 16.9%. No ALC-1 expression could be observed in the right ventricle of control pigs. Force-velocity of chemically skinned right ventricular fibers was analyzed in order to examine the functional role of ALC-1 expression on myosin cross-bridge kinetics. Force generation per cross-section at maximal Ca2+ activation (pCa 4.5) was significantly higher in the hypertrophied group. Maximal shortening velocity (Vmax) of skinned fibers increased statistically significant from 0.69 muscle length per second (ML/s) in the control to 1.2 ML/s in the hypertrophied right ventricle. We conclude that the expression of ALC-1 in the hypertrophied ventricle of neonatal pigs increased cross-bridge cycling kinetics and contractility.

Animals↗

Lung growth after transplantation of an adult lobe of lung into a juvenile rat.

OBJECTIVE: Shortage of donor organs for children has led to the use of living related adult lung lobar transplants. It is not known how these lobes or the recipient remaining lung grow after such transplants. The purpose of the present study was to assess lung growth in rat lungs up to 6 months after adult lobe transplantation into a juvenile recipient. METHODS: Right cardiac lung lobes from adult male Lewis rats were transplanted into the left hemithorax of juvenile (6-week-old) male Lewis rats after left pneumonectomy. Animals with appropriate controls were put to death 14 days and 6 months after transplantation. The lungs were fixed inflated and studied by means of quantitative morphometric techniques. RESULTS: By 6 months after transplantation both the recipient right lung and the transplanted cardiac lobe were significantly larger than normal (p = 0.005; p = 0.001). In the recipient right lung this increase was due to an increase in the number of alveoli (p = 0.004) and in the transplanted cardiac lobe to an increase in size of the alveoli (p = 0.008). CONCLUSIONS: An adult lobe transplanted into a young recipient is still viable and has normal architecture after 6 months, and growth of the recipients' own lung continues. The outlook for comparable transplants in children is promising, although the human condition can be complicated by rejection, infection, and treatment strategies.

Age Factors↗

Developmental changes in binding sites and reactivity for CGRP and VIP in porcine pulmonary arteries.

During postnatal adaptation pulmonary arteries dilate. CGRP and VIP are pulmonary vasodilators. In this report, porcine lungs from newborn to adult were studied. Radiolabeled ligand binding and autoradiography showed CGRP binding sites on the endothelium of pulmonary arteries and veins, which increased postnatally, and VIP binding sites on smooth muscle, which decreased. Isolated conduit arteries relaxed normally (initially endothelium dependent) in response to CGRP from birth. VIP first caused relaxation at 10 days and was endothelium dependent. Age-related changes in receptor binding density were not always reflected in an appropriate alteration in pharmacological response.

Adaptation, Physiological↗