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M A Lung

Publications and source records attributed to M A Lung.

At least 19 recordsLinked to original sources

Acetylcholine induces contractile and relaxant effects in canine nasal venous systems.

Acetylcholine (ACh) induces nasal congestion at low doses but decongestion at high doses. The current study investigated the vascular mechanisms underlying this biphasic nasal airway response in dogs. Collecting and outflow veins from anterior and posterior nasal venous systems and the septal mucosa (containing sinusoidal venous plexuses) were isolated. The in vitro isometric tension of the vascular segments was monitored to reflect vascular reactivity. Immunohistochemical localisation of reduced nicotinamide adenine dinucleotide phosphate (NADPH)-diaphorase and endothelial nitric oxide synthase (eNOS) was performed. ACh did not affect the venous plexuses but contracted the anterior collecting vein and the outflow veins of both systems in a concentration-dependent manner; the responses were unaffected by nitro-L-arginine-methyl-ester (L-NAME). ACh relaxed posterior collecting veins at low concentrations but contracted them at higher concentrations; L-NAME enhanced the contractions but inhibited the relaxations, with the inhibition reversed by L-arginine. NADPH-diaphorase and eNOS were located predominantly in the posterior collecting veins. The fact that acetylcholine at low concentrations relaxes posterior collecting veins but contracts other collecting and outflow veins implies that the agonist in vivo may induce nasal congestion by increasing posterior blood volume. At higher concentrations, acetylcholine contracts posterior collecting veins as well, implying diminished blood volume in both venous systems, and consequently nasal decongestion. The induced contraction in posterior collecting veins is nitric oxide-independent, while the induced relaxation is nitric oxide-dependent.

Acetylcholine↗

Effect of testicular capsulotomy on fertility of rats.

AIM: To demonstrate the effect of capsulotomy on the fertility of male rats. METHODS: Testicular capsulotomy was carried out in immature (21 days) and adult (60 days) male rats. The fertility of them was assessed by cohabitation with proestrus females overnight and 20 days later, the females were examined for impregnation. Morphological changes at the site of the capsulotomy were observed under light microscope. RESULTS: In rats capsulotomized at Day 60, the fertility was gradually depressed and all the rats completely lost their fertility 2 months post-operation. At that time, a partial regeneration of the capsule at the site of capsulotomy was observed. Immature rats capsulotomized at Day 21 were found to possess normal fertility at maturity. The capsulotomy site was almost completely recovered 60 days post-operation. CONCLUSION: In male rats, testicular capsulotomy at the age of Day 60 will damage fertility. However, when capsulotomy is performed at Day 21, fertility is preserve.

Analysis of Variance↗

Effect of testicular capsulotomy on lipid droplets in the seminiferous tubules of rats.

AIM: In order to reveal the histochemical alteration that might occur during the processes of the spermatogenic disruption induced by testicular capsulotomy, the location and alteration of lipid droplets in the seminiferous tubules were observed in the present study. METHODS: Osmium tetroxide was used to demonstrate the lipid droplets in the seminiferous tubules of capsulotomized and sham-operated control testes. RESULTS: In the seminiferous tubules of the sham-operated rat testes, many small lipid droplets were located close to the basement membrane of the seminiferous tubules. But for the capsulotomized testes, the lipid droplets in the seminiferous tubules had increased in size and number, with many lipid droplets migrated towards the lumen of the tubules. CONCLUSION: The results indicated that a progressive fatty degeneration occurred in the seminiferous tubules after testicular capsulotomy.

Animals↗

Immunohistochemical observation on luteinizing hormone in rat testes before and after testicular capsulotomy.

AIM: In the testicular capsulotomized rats, although there was a significant increase in the luteinizing hormone (LH) levels, the secretion of testosterone remained low. In order to clarify the mechanisms of this phenomenon, the binding of endogenous LH to the testes were observed before and after testicular capsulotomy. METHODS: Peroxidase-antiperoxidase (PAP) method was used to detect the binding of LH to the testes in rats. RESULTS: An intense positive staining of LH was found in the Leydig cells of both the normal and sham-operated control testes. However, at 40 d after operation, the LH immunoreactivity was decreased in the Leydig cells of the capsulotomized testis. By d 60, only very weak positive staining could be observed in these cells. CONCLUSION: A progressive reduction of endogenous LH binding to the testis cccurred in the capsulotomized rat.

Animals↗

Effect of testicular capsulotomy on secretion of testosterone and gonadotrophins in rats.

AIM: In order to clarify further the mechanisms underlying the effect of capsulotomy on testicular function, the levels of testosterone, LH and FSH were observed. METHODS: Intratesticular testosterone levels and LH, FSH levels in the peripheral blood of normal, sham-operated and capsulotomized rats were detected by RIA. RESULTS: After testicular capsulotomy, there was a progressive reduction in the testosterone level in the testicular venous blood together with a progressive increase in the LH and FSH levels in the peripheral blood from approximately 30 days post-capsulotomy. Morphological changes were observed at 5-10 days after capsulotomy, i.e., far ahead of the hormonal changes. CONCLUSION: The seminiferous tubular damage after testicular capsulotomy was not caused by the reduction in testosterone, and on the contrary, the hormonal change might be secondary to the morphological alterations. The increase in LH level most likely resulted from a negative feedback influence from the lowered testosterone level, while the increase in FSH secretion may be a feedback signal of the damaged seminiferous tubules.

Animals↗

Studies on relationship between testicular capsule and sperm transport in rat testis.

AIM: In SD rats, histological changes in the testis were observed after bilateral capsulotomy (of the tunica albuginea) in order to investigate the physiological role of the testicular capsule on sperm transport. METHODS: Bilateral longitudinal capsulotomy was devised to disrupt the capsular contractile function. With this technique, only the tunica vaginalis and tunica albuginea were slit open, leaving the tunica vasculosa intact to embrace the underlying testicular parenchyma. After capsulotomy, the structural changes in the seminiferous tubules, the transitional distal seminiferous segment, and the rete testis were observed. RESULTS: In the capsulotomized testis, there was sperm retention at the transitional seminiferous segment and progressive degenerative changes in seminiferous tubules. CONCLUSION: The results clearly indicated that an intact testicular capsule was required for normal sperm transport from the seminiferous tubules into the rete testis. This is the first attempt to study the physiological role of the testicular capsule in intact animals.

Animals↗

Autonomic nervous control of venous pressure and secretion in submandibular gland of anesthetized dogs.

In dogs anesthetized with pentobarbital sodium, hilar venous pressure (Phv) and secretion were measured from the submandibular gland receiving spontaneous blood flow or vascular perfusion at the normal resting flow rate. Parasympathetic nerve stimulation and ACh-induced secretion increased Phv and its pulse pressure; Phv also showed an obvious arterial (or perfusion pressure)-like waveform. Vasoactive intestinal polypeptide (VIP) exerted similar effects on Phv but produced negligible secretion. Sympathetic nerve stimulation, phenylephrine, and clonidine did not induce secretion and had no significant action on Phv, whereas isoproterenol provoked secretion and changed Phv as with parasympathetic stimulation. Background or superimposed sympathetic nerve stimulation reduced the parasympathetic nerve-induced responses; the sympathetic inhibition was abolished by phentolamine and yohimbine but not by prazosin and propranolol. The results suggest a direct relationship between Phv and secretion during parasympathetic salivation: the elevation in Phv was primarily independent of the concurrent blood flow response, mediated via muscarinic and peptidergic mechanisms, and related to an opening of arteriovenous anastomoses. Sympathetic inhibition of parasympathetic salivation may be related to prevention of an increased Phv exerted primarily via the alpha2-adrenergic mechanism.

Acetylcholine↗

Mechanisms of sympathetic enhancement and inhibition of parasympathetically induced salivary secretion in anaesthetized dogs.

1. The effects of superimposed and continuous sympathetic nerve stimulation on submandibular parasympathetic salivation were investigated in anaesthetized dogs. 2. Superimposed sympathetic nerve stimulation (1-2 min) initially enhanced and later inhibited salivary secretion induced by parasympathetic nerve stimulation (2-8 Hz) in glands with uncontrolled blood supply or constant-flow vascular perfusion. Propranolol (0.05 mg kg-1, i.a.) did not affect the diphasic sympathetic action whereas phentolamine (0.1 mg kg-1, i.a.) abolished it. Prazosin (0.025 mg kg-1, i.a.) greatly lessened the initial enhancement while yohimbine (0.025 mg kg-1, i.a.) alleviated the late inhibition. 3. Salivary secretion, induced by parasympathetic nerve stimulation (4 Hz) or acetylcholine infusion (10 micrograms kg-1 min-1, i.a.), was abolished by atropine (0.05 mg kg-1, i.a.), increased by phenylephrine infusion (0.25 microgram kg-1 min-1, i.a.) and depressed by clonidine infusion (0.75 microgram kg-1 min-1, i.a.). Hexamethionium (12.5 mg kg-1, i.a.) abolished the nerve-induced secretion but had no effect on the acetylcholine-induced secretion. 4. Continuous background sympathetic nerve stimulation decreased parasympathetic nerve-induced salivary secretion in glands with uncontrolled blood supply or constant-flow vascular perfusion. 5. These results show that parasympathetic salivation can be modified by the sympathetic system at the postsynaptic level; enhancement is via alpha 1-adrenoceptors whereas inhibition is via alpha 2-adrenoceptors.

Adrenergic alpha-1 Receptor Antagonists↗

Increase or decrease in nasal airway resistance induced by acetylcholine in anesthetized dogs: vascular mechanisms.

In sodium pentobarbital-anesthetized dogs with spontaneous nasal blood flow or constant-flow vascular perfusion of the nasal mucosa, we measured nasal airway resistance, vascular resistance, and arterial inflow and outflow of the anterior and posterior venous systems. Acetylcholine in low doses (< 5 micrograms/kg per minute, intraarterially) increased nasal airway resistance, and the response was greater in dogs with spontaneous blood flow. Nasal vascular resistance was decreased. However, the posterior venous outflow was increased and the anterior venous outflow was decreased in dogs with constant-flow vascular perfusion. Acetylcholine in higher doses (> 5 micrograms/kg per minute, intraarterially) decreased nasal airway resistance, and vascular resistance fell further, but both venous outflows were increased in dogs with spontaneous blood flow or constant-flow vascular perfusion. The results indicate that acetylcholine may increase or decrease nasal airway resistance, depending on the dose administered, probably via a dose-dependent differential action on different components of the nasal vascular bed.

Acetylcholine↗

An investigation of the vascular organisation of the canine submandibular gland.

It is known that parasympathetic nerve stimulation elevates venous pressure in the dog submandibular gland, and that the venous pressure wave is transformed to that of the arterial pulse. The vascular arrangements and histological characteristics of the dog submandibular gland were therefore examined to establish which anatomical structures are responsible for the change in venous pressure during salivation induced by parasympathetic stimulation. The acinar and ductal circulations were found to be arranged in parallel and arteriovenous anastomoses were identified in both. Microsphere injection studies demonstrated the opening of arteriovenous anastomoses in actively secreting glands. Smooth muscle cells were rarely found in venous blood vessels but venous valves were abundant in both circulations. Dense connective tissue was observed to enclose the ductal system and its accompanying structures (blood vessels, lymphatic vessels and nerves); it was most abundant in the hilum and diminished aborally. The mechanism responsible for elevating venous pressure during parasympathetic salivation is thus probably related to opening of the arteriovenous anastomoses; the increase in the amount of surrounding dense connective tissue in a central direction may facilitate the preservation of the transmitted arterial pressure and pulse in the venous system.

Animals↗

Mechanical stimulation of canine respiratory tract and nasal vascular and airway resistances.

Mechanical irritation of the upper airways (nose and larynx) decreased nasal vascular and airway resistances in anaesthetized dogs; the responses were probably due to dilatation of the nasal resistance and venous outflow blood vessels via stimulation of irritant receptors. Mechanical irritation of the lower airways (bronchi) increased nasal vascular resistance but decreased nasal airway resistance; the responses were probably due to constriction of nasal resistance and venous sinusoidal blood vessels via stimulation of cough receptors.

Airway Resistance↗

Variations in blood flow on mandibular glandular secretion to autonomic nervous stimulations in anaesthetized dogs.

1. Continuous stimulation of the preganglionic parasympathetic nerve (the ramus communicans of the mandibular ganglion) for 1-2 min at supramaximal voltage (5 V) and pulse duration (1 ms) increased salivary gland arterial inflow and this was accompanied by copious salivary secretion. The responses were recorded continuously during the period of stimulation. The frequency for initiating the responses was 0.5 Hz. Maximal responses occurred at 16 Hz. The response coefficient of arterial inflow to stimulus frequency was 0.17 ml min-1g-1 Hz-1 and that of secretion to stimulus frequency was 0.016 ml min-1g-1 Hz-1. 2. The secretory response to low and moderate levels of parasympathetic nerve stimulation (below 8 Hz) was not affected by a reduction or cessation in arterial inflow whereas the response to high level parasympathetic nerve stimulation (above 8 Hz) was significantly alleviated if blood flow to the gland was maintained (via controlled vascular perfusion) at a level less than that of the resting arterial inflow. However, when the gland was already secreting near-maximally (stimulated at 8 Hz), sudden cessation of blood flow for a short period of time (0.5-2 min) had no effect on the salivary flow. 3. Continuous stimulation of the cervical sympathetic nerve for 1-2 min at supramaximal voltage (20 V) and pulse duration (1 ms) decreased arterial inflow and this was accompanied by scanty salivary secretion. The vascular response persisted during the period of stimulation. The secretory response was 15 s late in onset and might continue for 1 min after stimulation. The frequency for initiating the responses was 1-4 Hz. Maximal responses occurred at 16-32 Hz. The response coefficient of arterial inflow to stimulus frequency was -0.04 ml min-1g-1Hz-1 and that of salivary secretion to stimulus frequency was 0.001 ml min-1g-1Hz-1. 4. The secretory response to sympathetic nerve stimulation at different frequencies in glands with blood flow maintained at resting rate (via controlled vascular perfusion) resembled that in glands with spontaneous blood flow. 5. Sympathetic nerve stimulation was found to retard salivary secretion caused by parasympathetic stimulation, irrespective of whether the gland received spontaneous arterial inflow or controlled vascular perfusion at a resting flow rate. 6. The results suggest that the salivary secretion to stimulation of parasympathetic nerve is independent of blood flow over a wide range of stimulus frequencies; however, the response to high frequency stimulation of the parasympathetic nerve may be affected by fluctuations in blood flow.(ABSTRACT TRUNCATED AT 400 WORDS)

Anesthesia, Intravenous↗

Autonomic nervous control of nasal vasculature and airflow resistance in the anaesthetized dog.

1. In pentobarbitone-anaesthetized dogs with constant-flow vascular perfusion of nasal mucosa on both sides, nasal airway resistance, vascular resistance, vascular capacitance (via changes in total venous outflow) and blood flow in the anterior and posterior venous systems were measured. 2. Electrical stimulation of the cut peripheral ends of the cervical sympathetic trunk, caudal nasal nerve, or major palatine nerve increased vascular resistance and decreased vascular capacitance and airway resistance. Propranolol and atropine had no effect on the responses while bretylium completely abolished them; phentolamine greatly lessened the vascular resistance response and partially decreased the vascular capacitance and airway responses. Hence, sympathetic stimulation causes constriction of the resistance vessels via alpha-adrenergic mechanism and constriction of capacitance vessels via alpha-adrenergic as well as some non-adrenergic and non-cholinergic mechanisms. 3. Denervation of the cervical sympathetic trunk, caudal nasal nerve and major palatine nerve decreased nasal vascular resistance and increased vascular capacitance and airway resistance, suggesting tonic sympathetic discharge to nasal mucosa via caudal nasal and major palatine nerves. 4. Electrical stimulation of the nerve of pterygoid canal decreased vascular resistance but increased vascular capacitance (in the posterior venous system) and airway resistance to low-voltage stimulation (below 10 V), and decreased vascular capacitance (in the anterior venous system) and airway resistance to high-voltage stimulation (above 10 V). Hexamethonium reversed the vascular resistance response as well as vascular capacitance and airway responses to high-voltage stimulation. Bretylium and phentolamine enhanced the vascular resistance response and reversed vascular capacitance and airway resistance responses to high-voltage stimulation. Hence, low-voltage stimulation results in parasympathetic dilatation of resistance and capacitance vessels whereas high-voltage stimulation results in parasympathetic dilatation of resistance vessels and sympathetic constriction of capacitance vessels. The parasympathetic vasodilatation was atropine resistance and the sympathetic vasoconstriction was partially via alpha-adrenergic mechanisms. 5. Denervation of the nerve of pterygoid canal did not affect vascular resistance, vascular capacitance or airway resistance suggesting negligible tonic parasympathetic and sympathetic discharges to nasal blood vessels via the nerve. 6. Simultaneous optimal stimulation of sympathetic and parasympathetic nerves resulted in vasoconstriction, especially in capacitance vessels, suggesting sympathetic predominance over parasympathetic control.

Airway Resistance↗

An anatomical investigation of the nasal venous vascular bed in the dog.

Physiological experiments have demonstrated that the canine nasal mucosa has two venous systems that differ in blood pressure and flow. An investigation of the vascular arrangements and histological characteristics of the nasal venous vascular bed was performed to search for anatomical structure(s) responsible for their functional separation. Parietal bicuspid valves were found to be present in both venous systems, being particularly abundant at the two extremities of the nasal cavity and less frequently found over the turbinates. Ostial valves were found to be present guarding the entries of tributaries into the periosteal venous plexus, collecting veins and outflow veins of the nasal mucosa. The collecting veins of the posterior venous system were found to be much larger and to contain a greater amount of muscle than those of the anterior venous system. The parietal valves are suggested to be the anatomical structures responsible for the functional separation of the two venous systems whereas the ostial valves might act as a throttle mechanism, regulating blood flow into the cavernous periosteal venous plexus and the collecting veins of the posterior venous system. The physiological significance of the presence of venous valves and their distribution in the nasal mucosa as well as the probable functions of the collecting veins of the posterior venous system are discussed.

Animals↗

Lung reflexes and nasal vascular resistance in the anaesthetized dog.

1. In pentobarbitone-anaesthetized dogs the nasal vasculature was perfused on both sides, and nasal vascular and airflow resistances were measured together with blood pressure, heart rate and tidal airflow. 2. Capsaicin was injected intravenously to stimulate lung C-fibre receptors, and veratrine to stimulate pulmonary stretch receptors and cardiac receptors. Injections with both drugs were repeated after pulmonary denervation and after cervical vagosympathectomy. 3. Intravenous capsaicin caused hypotension, bradycardia and rapid shallow breathing, together with a decrease in nasal vascular resistance and little change in nasal airways resistance. Denervation showed that these effects came from lung reflexes, presumably from C-fibre receptors. 4. Intravenous veratrine caused similar effects to capsaicin before denervations, presumably due to stimulation of slowly adapting pulmonary stretch receptors. Left atrial injections of veratrine caused hypotension, bradycardia and hyperpnoea, together with an increase in nasal vascular resistance and little change in nasal airways resistance. Thus cardiac receptors seem to increase nasal vascular resistance. 5. Injections of capsaicin and veratrine into the nasal circulation decreased nasal vascular resistance, with a stimulation of breathing and changes in blood pressure. Denervations indicated that these were a combination of local and reflex actions.

Animals↗

Arterial supply, venous drainage and collateral circulation in the nose of the anaesthetized dog.

1. In pentobarbitone-anaesthetized dogs, nasal blood flows were measured with electromagnetic flow sensors. 2. The terminal internal maxillary artery was found to supply 22 +/- 2.2 ml min-1 (one side) to the nasal mucosa via the sphenopalatine and major palatine branches; the artery was found to receive multiple supply routes from common carotid, vertebral and subclavian arteries. 3. Nasal mucosa was found to receive collateral flow from contralateral terminal internal maxillary artery (about 5 to 10% of normal flow) and branches of subclavian arteries (about 36% of normal flow). 4. Nasal mucosa was found to have two venous systems: the low-flow (12 +/- 1.0 ml min-1; both sides) and low-pressure (7 +/- 0.6 mmHg) sphenopalatine veins draining the posterior nasal cavity and the high-flow (30 +/- 1.4 ml min-1; both sides) and high-pressure (17 +/- 1.0 mmHg) dorsal nasal veins draining the anterior nasal cavity. 5. PO2 of nasal venous blood was found to range from 62 +/- 2.9 mmHg to 65 +/- 3.4 mmHg. During nitrogen challenge to the nose, the sphenopalatine venous PO2 dropped to 35 +/- 3.0 mmHg while the dorsal nasal venous PO2 remained unchanged, suggesting that the sphenopalatine veins were responsible for draining capillary flow and dorsal nasal veins arteriovenous anastomotic flow as well. 6. Microscopic examination of the vascular casts confirmed that arteriovenous anastomoses were located only in the anterior nasal cavity.

Anesthesia, General↗

Effects of lung inflation on nasal airway resistance in the anesthetized rat.

Nasal airway resistance was assessed in halothane-anesthetized rats by measuring the transnasal pressure at constant airflow through both nasal cavities. Low inflation pressures (2.5-5 cmH2O) decreased nasal airway resistance, whereas higher inflation pressures (10-20 cmH2O) caused a biphasic response: an initial increase in resistance followed by a decrease in resistance. The nasal responses to all levels of inflation were completely abolished by hexamethonium, guanethidine, or bretylium pretreatment or cervical sympathectomy and greatly lessened by cervical vagotomy or phenoxybenzamine pretreatment. Atropine and propranolol pretreatments had no effect on the responses. These findings indicate that the nasal airway resistance is related to the level of inflation through pulmonary reflexes with afferents along the vagi and efferents via the alpha-adrenergic nervous system.

Airway Resistance↗

Effects of H1 antihistamines on canine nasal vascular and airway resistances.

The effects of three commonly used H1 antihistamines on the nasal vascular and airway resistances were studied in the dog. Promethazine hydrochloride decreased nasal vascular resistance but increased nasal airway resistance in a dose-dependent manner. Diphenylpyraline hydrochloride in low doses increased nasal vascular resistance without affecting much nasal airway resistance while in high doses decreased nasal vascular resistance but increased nasal airway resistance. Chlorpheniramine maleate in low doses increased nasal vascular resistance but decreased nasal airway resistance while in high doses decreased nasal vascular resistance without affecting much nasal airway resistance. It was concluded that different H1 antihistamines might exert vasoconstrictor or vasodilatatory action on both the resistance and capacitance vessels of the nasal vascular bed depending on the type and the dose of the drug used.

Airway Resistance↗