Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 4.351
Filter
1.
Nature ; 630(8016): 392-400, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38811741

ABSTRACT

Organs have a distinctive yet often overlooked spatial arrangement in the body1-5. We propose that there is a logic to the shape of an organ and its proximity to its neighbours. Here, by using volumetric scans of many Drosophila melanogaster flies, we develop methods to quantify three-dimensional features of organ shape, position and interindividual variability. We find that both the shapes of organs and their relative arrangement are consistent yet differ between the sexes, and identify unexpected interorgan adjacencies and left-right organ asymmetries. Focusing on the intestine, which traverses the entire body, we investigate how sex differences in three-dimensional organ geometry arise. The configuration of the adult intestine is only partially determined by physical constraints imposed by adjacent organs; its sex-specific shape is actively maintained by mechanochemical crosstalk between gut muscles and vascular-like trachea. Indeed, sex-biased expression of a muscle-derived fibroblast growth factor-like ligand renders trachea sexually dimorphic. In turn, tracheal branches hold gut loops together into a male or female shape, with physiological consequences. Interorgan geometry represents a previously unrecognized level of biological complexity which might enable or confine communication across organs and could help explain sex or species differences in organ function.


Subject(s)
Drosophila melanogaster , Intestines , Sex Characteristics , Trachea , Animals , Female , Male , Drosophila melanogaster/anatomy & histology , Drosophila melanogaster/physiology , Intestines/anatomy & histology , Trachea/anatomy & histology , Trachea/physiology , Organ Size , Muscles/anatomy & histology , Muscles/physiology , Ligands , Fibroblast Growth Factors/metabolism , Species Specificity
2.
J Insect Physiol ; 155: 104652, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38777076

ABSTRACT

Insects exchange respiratory gases with their environment through their gas-filled tracheal system, a branched tracheal tree extending from segmental openings and terminating at fine tissue penetrating tracheoles. It was shown that the tracheal volume increases hyperallometrically with insect body size (Mb), both interspecifically and across developmental stages. In this study, we used the sixfold Mb variation in adult Batocera rufomaculata(Cerambicidae; Coleoptera) examining the allometry of adult tracheal volume (Vtr). We further explored the effect of sex and sexual maturity on tracheal gas conductance, testing the hypotheses that (i) larger body size and (ii) egg volume in gravid females would result in lower safety margins for tracheal oxygen transport due to structural restriction. We report a hyperallometric tracheal growth in both sexes of adult B. rufomaculata(mean mass exponent of 1.42 ± 0.09), similar in magnitude to previously reported values. Tracheal gas conductance was independent of Mb and reproductive state, but was significantly higher in females compared with males. We suggest that females may have pre-adapted a higher tracheal conductance required for the higher flight power output while gravid. Lack of compliant air sacs and rigid trachea may explain how gravid females retain their Vtr. However, we show that Vtr outgrows thoracic dimensions with increased B. rufomaculatasize. Hyperallometric growth of the giant cerambycid thoracic trachea could explain the previously reported hypometric scaling of flight muscles in B. rufomaculata, and the compromised long-distance flight performance of larger compared with smaller conspecifics.


Subject(s)
Body Size , Coleoptera , Trachea , Animals , Female , Male , Coleoptera/growth & development , Coleoptera/physiology , Trachea/physiology
3.
J Appl Physiol (1985) ; 136(6): 1429-1439, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38660727

ABSTRACT

Excessive dynamic airway collapse (EDAC) is a recognized cause of exertional dyspnea arising due to invagination of the trachea and/or main bronchi. EDAC is typically assessed by evaluating large airway movement with forced expiratory maneuvers. This differs from the respiratory response to exercise hyperpnea. We aimed to evaluate large airway movement during physical activity, with continuous bronchoscopy during exercise (CBE), in healthy subjects and compare findings with resting bronchoscopic maneuvers and imaging techniques. Twenty-eight individuals were recruited to complete two visits including treadmill-based CBE, to voluntary exhaustion, and cine magnetic resonance imaging (MRI) with forced expiratory maneuvers at rest. Twenty-five subjects [aged 29 (26-33) yr, 52% female] completed the study (n = 2 withdrew before bronchoscopy, and one was unable to tolerate insertion of bronchoscope). The majority (76%) achieved a peak heart rate of >90% predicted during CBE. The procedure was prematurely terminated in five subjects (n = 3; elevated blood pressure and n = 2; minor oxygen desaturation). The CBE assessment enabled adequate tracheal visualization in all cases. Excessive dynamic airway collapse (tracheal collapse ≥50%) was identified in 16 subjects (64%) on MRI, and in six (24%) individuals during resting bronchoscopy, but in no cases with CBE. No serious adverse events were reported, but minor adverse events were evident. The CBE procedure permits visualization of large airway movement during physical activity. In healthy subjects, there was no evidence of EDAC during strenuous exercise, despite evidence during forced maneuvers on imaging, thus challenging conventional approaches to diagnosis.NEW & NOTEWORTHY This study demonstrates that large airway movement can be visualized with bronchoscopy undertaken during vigorous exercise. This approach does not require sedation and permits characterization of the behavior of the large airways and the tendency toward collapse during upright, ambulatory exercise. In healthy individuals, the response pattern of the large airways during exercise appears to differ markedly from the pattern of airway closure witnessed during forced expiratory maneuvers, assessed via imaging.


Subject(s)
Bronchoscopy , Exercise , Feasibility Studies , Healthy Volunteers , Humans , Bronchoscopy/methods , Female , Male , Adult , Exercise/physiology , Trachea/physiology , Trachea/diagnostic imaging , Exercise Test/methods , Bronchi/diagnostic imaging , Bronchi/physiology
4.
Surg Radiol Anat ; 46(6): 877-883, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38683421

ABSTRACT

PURPOSE: There have been numerous studies focused on the stiffness of tracheal cartilage. However, no research has been conducted specifically on the annular ligament, nor have any regional differences in the annular ligament been identified. The purpose of this study was to investigate the stiffness of the ligaments present between the thyroid, cricoid and tracheal cartilages. METHODS: The ligaments were identified in the cervical region of living subjects with ultrasonography. The stiffness of the ligaments was measured from the body surface using a digital palpation device (MyotonPRO). Since it is impossible to measure the entire trachea in a living subject, an additional measurement was performed on human cadavers. RESULTS: Both in vivo and cadaveric investigations found that the stiffness of annular ligaments decreased gradually from the superior to inferior parts. There was no difference in the stiffness between males and females in the superior part of the trachea. However, the stiffness of the middle and inferior parts was predominantly higher in females than in males. Furthermore, males showed significant differences in stiffness between the superior and middle parts, while females showed no significant differences. CONCLUSION: These results reveal that there are regional and sex-related differences in the stiffness of human tracheal ligaments.


Subject(s)
Cadaver , Ligaments , Trachea , Humans , Male , Female , Trachea/diagnostic imaging , Trachea/anatomy & histology , Trachea/physiology , Ligaments/anatomy & histology , Ligaments/diagnostic imaging , Ligaments/physiology , Adult , Aged , Middle Aged , Ultrasonography , Sex Factors , Anatomic Variation , Aged, 80 and over , Young Adult
5.
Respir Physiol Neurobiol ; 325: 104264, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38599345

ABSTRACT

Eight pig tracheal strips were stimulated to contract with log increments of methacholine from 10-8 to 10-5 M. For each strip, the concentration-response was repeated four times in a randomized order to measure isometric force, isotonic shortening against a load corresponding to either 5 or 10 % of a reference force, and average force, stiffness, elastance and resistance over one cycle while the strip length was oscillating sinusoidally by 5 % at 0.2 Hz. For each readout, the logEC50 was calculated and compared. Isotonic shortening with a 5 % load had the lowest logEC50 (-7.13), yielding a greater sensitivity than any other contractile readout (p<0.05). It was followed by isotonic shortening with a 10 % load (-6.66), elastance (-6.46), stiffness (-6.46), resistance (-6.38), isometric force (-6.32), and average force (-6.30). Some of these differences were significant. For example, the EC50 with the average force was 44 % greater than with the elastance (p=0.001). The methacholine sensitivity is thus affected by the contractile readout being measured.


Subject(s)
Bronchoconstrictor Agents , Methacholine Chloride , Muscle, Smooth , Trachea , Animals , Muscle, Smooth/physiology , Muscle, Smooth/drug effects , Methacholine Chloride/pharmacology , Swine , Trachea/physiology , Trachea/drug effects , Bronchoconstrictor Agents/pharmacology , Muscle Contraction/physiology , Muscle Contraction/drug effects , Dose-Response Relationship, Drug , Elasticity/physiology , Isometric Contraction/physiology , Isometric Contraction/drug effects
6.
Science ; 384(6693): 269-270, 2024 Apr 19.
Article in English | MEDLINE | ID: mdl-38669581

ABSTRACT

Epithelial cells in the larynx and trachea sense harmful cues and trigger protective reflexes.


Subject(s)
Larynx , Trachea , Humans , Trachea/cytology , Trachea/physiology , Larynx/physiology , Animals , Epithelial Cells/physiology , Epithelial Cells/cytology , Respiratory Mucosa/physiology , Respiratory Mucosa/cytology , Reflex/physiology
7.
Eur J Cardiothorac Surg ; 65(4)2024 Mar 29.
Article in English | MEDLINE | ID: mdl-38530803

ABSTRACT

OBJECTIVES: Tracheal reconstruction post-extensive resection remains an unresolved challenge in thoracic surgery. This study evaluates the use of aortic allografts (AAs) for tracheal replacement and reconstruction in a rat model, aiming to elucidate the underlying mechanisms of tracheal regeneration. METHODS: AAs from female rats were employed for tracheal reconstruction in 36 male rats, with the replacement exceeding half of the tracheal length. To avert collapse, silicone stents were inserted into the AA lumens. No immunosuppressive therapy was administered. The rats were euthanized biweekly, and the AAs were examined for neovascularization, cartilage formation, respiratory epithelial ingrowth, submucosal gland regeneration and the presence of the Sex-determining region of Y-chromosome (SRY) gene. RESULTS: All procedures were successfully completed without severe complications. The AA segments were effectively integrated into the tracheal framework, with seamless distinction at suture lines. Histological analysis indicated an initial inflammatory response, followed by the development of squamous and mucociliary epithelia, new cartilage ring formation and gland regeneration. In situ hybridization identified the presence of the SRY gene in newly formed cartilage rings, confirming that regeneration was driven by recipient cells. CONCLUSIONS: This study demonstrates the feasibility of AAs transforming into functional tracheal conduits, replicating the main structural and functional characteristics of the native trachea. The findings indicate that this approach offers a novel pathway for tissue regeneration and holds potential for treating extensive tracheal injuries.


Subject(s)
Aorta , Plastic Surgery Procedures , Male , Female , Animals , Rats , Feasibility Studies , Aorta/surgery , Trachea/surgery , Trachea/physiology , Stents , Allografts/surgery , Tissue Engineering
8.
Int J Med Sci ; 20(13): 1671-1678, 2023.
Article in English | MEDLINE | ID: mdl-37928871

ABSTRACT

Histamine receptor-1 (H1) antagonists like levocetirizine are frequently used nowadays to treat rhinitis patients who experience rhinorrhea and sneezing. The trachea may be affected by the H1 antagonist when it is used to treat nasal symptoms, either orally or through inhalation. The purpose of this study was to ascertain in vitro effects of levocetirizine on isolated tracheal smooth muscle. As a parasympathetic mimetic, methacholine (10-6 M) causes contractions in tracheal smooth muscle, which is how we tested effectiveness of levocetirizine on isolated rat tracheal smooth muscle. We also tested the drug's impact on electrically induced tracheal smooth muscle contractions. The impact of menthol (either before or after) on the contraction brought on by 10-6 M methacholine was also investigated. According to the results, the addition of levocetirizine at concentrations of 10-5 M or more caused a slight relaxation in response to methacholine's 10-6 M contraction. Levocetirizine could prevent spike contraction brought on by electrical field stimulation (EFS). As the concentration rose, it alone had a neglect effect on the trachea's basal tension. Before menthol was applied, levocetirizine might have also inhibited the function of the cold receptor. According to this study, levocetirizine might potentially impede the parasympathetic function of the trachea. If levocetirizine was used prior to menthol addition, it also reduced the function of cold receptors.


Subject(s)
Cetirizine , Menthol , Rats , Humans , Animals , Methacholine Chloride/pharmacology , Menthol/pharmacology , Cetirizine/pharmacology , Cetirizine/therapeutic use , Muscle, Smooth/physiology , Muscle Contraction , Trachea/physiology
9.
Respir Res ; 24(1): 267, 2023 Nov 04.
Article in English | MEDLINE | ID: mdl-37925434

ABSTRACT

BACKGROUND: Airway tuft cells, formerly called brush cells have long been described only morphologically in human airways. More recent RNAseq studies described a chemosensory cell population, which includes tuft cells, by a distinct gene transcription signature. Yet, until which level in the tracheobronchial tree in native human airway epithelium tuft cells occur and if they function as regulators of innate immunity, e.g., by regulating mucociliary clearance, remained largely elusive. METHODS: We performed immunohistochemistry, RT-PCR and immunoblotting analyses for various tuft cell markers to confirm the presence of this cell type in human tracheal samples. Immunohistochemistry was conducted to study the distribution of tuft cells along the intrapulmonary airways in humans. We assessed the influence of bitter substances and the taste transduction pathway on mucociliary clearance in mouse and human tracheal samples by measuring particle transport speed. RESULTS: Tuft cells identified by the expression of their well-established marker POU class 2 homeobox 3 (POU2F3) were present from the trachea to the bronchioles. We identified choline acetyltransferase in POU2F3 expressing cells as well as the transient receptor potential melastatin 5 (TRPM5) channel in a small population of tracheal epithelial cells with morphological appearance of tuft cells. Application of bitter substances, such as denatonium, led to an increase in mucociliary clearance in human tracheal preparations. This was dependent on activation of the TRPM5 channel and involved cholinergic and nitric oxide signalling, indicating a functional role for human tuft cells in the regulation of mucociliary clearance. CONCLUSIONS: We were able to detect tuft cells in the tracheobronchial tree down to the level of the bronchioles. Moreover, taste transduction and cholinergic signalling occur in the same cells and regulate mucociliary clearance. Thus, tuft cells are potentially involved in the regulation of innate immunity in human airways.


Subject(s)
Mucociliary Clearance , Trachea , Humans , Mice , Animals , Trachea/physiology , Signal Transduction , Taste , Cholinergic Agents/metabolism
10.
Fundam Clin Pharmacol ; 37(6): 1153-1169, 2023 Dec.
Article in English | MEDLINE | ID: mdl-37354029

ABSTRACT

BACKGROUND: Tylophora indica (Burm. f.) Merr is a climbing perennial plant reported in Indian traditional system of medicine for its use in allergy and asthma. However, only few scientific studies have been performed in the past to validate its antiasthmatic potential. OBJECTIVES: The present study deals with investigation of airway smooth muscle relaxant and antiasthmatic potential of extract and subsequent fractions prepared from T. indica. METHODS: The most active fraction of T. indica leaves selected through bio-guided activity was subjected to liquid chromatography-mass spectrometry (LC-MS) analysis for chemical profiling. The binding affinity of identified compounds in fraction towards M3 and H1 receptors was determined by molecular docking study. F-2 (chloroform fraction prepared from methanolic extract of T. indica leaves) was examined for its smooth muscle relaxant properties using isolated trachea of guinea-pig. Further, F-2 was evaluated through in vivo studies employing ovalbumin-induced asthma model in guinea-pigs. RESULTS: F-2 was found most effective in bioassay-guided fractionation. Characterization by LC-MS analysis revealed presence of five major bioactive compounds in F-2 that showed good docking interactions with M3 and H1 receptors. The ex vivo study demonstrated that F-2 could significantly relax tracheal rings via targeting multiple signalling pathways videlicet, namely, noncompetitive antagonism of the histamine and muscarinic receptors, ß2-adrenergic stimulation and activation of soluble guanylyl cyclase. In in vivo studies, F-2 ameliorated airway hyperresponsiveness and decreased broncho alveolar lavage fluid (BALF) levels of inflammatory cytokines and immunoglobulin E (IgE). CONCLUSION: These results confirm the traditional use of T. indica as an antiasthmatic agent which are evidenced through ex vivo, in silico and in vivo studies.


Subject(s)
Anti-Asthmatic Agents , Asthma , Animals , Guinea Pigs , Ovalbumin , Tylophora , Molecular Docking Simulation , Asthma/drug therapy , Asthma/chemically induced , Muscle, Smooth/physiology , Anti-Asthmatic Agents/pharmacology , Trachea/physiology
11.
J Vis Exp ; (188)2022 10 18.
Article in English | MEDLINE | ID: mdl-36342129

ABSTRACT

The biomechanical properties of the trachea directly affect the airflow and contribute to the biological function of the respiratory system. Understanding these properties is critical to understanding the injury mechanism in this tissue. This protocol describes an experimental approach to study the stress-relaxation behavior of porcine trachea that were pre-stretched to 0% or 10% strain for 300 s, followed by mechanical tensile loading until failure. This study provides details of the experimental design, data acquisition, analyses, and preliminary results from the porcine tracheae biomechanical testing. Using the detailed steps provided in this protocol and the data analysis MATLAB code, future studies can investigate the time-dependent viscoelastic behavior of trachea tissue, which is critical to understanding its biomechanical responses during physiological, pathological, and traumatic conditions. Furthermore, in-depth studies of the biomechanical behavior of the trachea will critically aid in improving the design of related medical devices such as endotracheal implants that are widely used during surgeries.


Subject(s)
Respiratory Physiological Phenomena , Trachea , Swine , Animals , Trachea/surgery , Trachea/physiology , Tensile Strength , Stress, Mechanical , Biomechanical Phenomena , Elasticity , Viscosity
12.
Naturwissenschaften ; 109(6): 55, 2022 Nov 04.
Article in English | MEDLINE | ID: mdl-36331664

ABSTRACT

All known species of the Triassic archosauromorph genus Tanystropheus are known to have had the longest neck in proportion to their torso. This feature is related to a series of ventilatory challenges since an increase in neck length also increases airway length and, therefore, the volume of stagnant air that does not reach the lungs, the dead space volume. Based on this challenge, the objective of the present study was to model the type of respiratory system of Tanystropheus able to meet its metabolic demands during the early Triassic period. The modeling was based on allometric relations for morphological and physiological ventilatory and metabolic variables, and to do so, the mean body mass of Tanystropheus was estimated based on three different methods. In addition, the tracheal airflow was also estimated based on the proportions of Tanystropheus elongated neck, the results of allometric modeling, and fundamental equations of fluid mechanics. The estimation of the body mass indicated that an animal of 3.6 m would possess a body mass of 50.6 ± 21.6 kg. Allometric modeling suggested that the respiratory system best suited to Tanystropheus' oxygen demands, especially during activity, would be a generic reptilian-like respiratory system composed of multicameral lungs. The best respiratory pattern to maintain adequate tracheal flow rates and effective pulmonary ventilation would be one ventilating the relatively narrower trachea at lower frequencies to deal with tracheal dead space volume.


Subject(s)
Lung , Trachea , Animals , Lung/physiology , Trachea/physiology , Reptiles
13.
Neuroimaging Clin N Am ; 32(4): 809-829, 2022 Nov.
Article in English | MEDLINE | ID: mdl-36244725

ABSTRACT

The larynx serves as the gateway between the upper and lower respiratory tracts and is involved in the tasks of phonation, deglutition, and airway protection. Familiarity with the complex anatomy of the larynx is critical for detecting and characterizing disease in the region, especially in cancer staging. In this article, we review the anatomy of the larynx and cervical trachea, including an overview of their cartilages, supporting tissues, muscles, mucosal spaces, neurovascular supply, and lymphatics, followed by correlation to the clinically relevant anatomic sites of the larynx. Imaging techniques for evaluating the larynx and trachea will also be discussed briefly.


Subject(s)
Larynx , Trachea , Humans , Larynx/anatomy & histology , Larynx/blood supply , Neck , Trachea/anatomy & histology , Trachea/diagnostic imaging , Trachea/physiology
14.
Acta Biomater ; 153: 399-410, 2022 11.
Article in English | MEDLINE | ID: mdl-36055609

ABSTRACT

Derived from the respiratory tracheae, bush-crickets' acoustic tracheae (or ear canals) are hollow tubes evolved to transmit sounds from the external environment to the interior ear. Due to the location of the ears in the forelegs, the acoustic trachea serves as a structural element that can withstand large stresses during locomotion. In this study, we report a new Atomic Force Microscopy Force Spectroscopy (AFM-FS) approach to quantify the mechanics of taenidia in the bush-cricket Mecopoda elongata. Mechanical properties were examined over the longitudinal axis of hydrated taenidia, by indenting single fibres using precision hyperbolic tips. Analysis of the force-displacement (F-d) extension curves at low strains using the Hertzian contact model showed an Elastic modulus distribution between 13.9 MPa to 26.5 GPa, with a mean of 5.2 ± 7 GPa and median 1.03 GPa. Although chitin is the primary component of stiffness, variation of elasticity in the nanoscale suggests that resilin significantly affects the mechanical properties of single taenidia fibres (38% of total data). For indentations up to 400 nm, an intricate chitin-resilin response was observed, suggesting structural optimization between compliance and rigidity. Finite-element analysis on composite materials demonstrated that the Elastic modulus is sensitive to the percentage of resilin and chitin content, their location and structural configuration. Based on our results, we propose that the distinct moduli of taenidia fibres indicate sophisticated evolution with elasticity playing a key role in optimization. STATEMENT OF SIGNIFICANCE: In crickets and bush-crickets, the foreleg tracheae have evolved into acoustic canals, which transport sound to the ears located on the tibia of each leg. Tracheae are held open by spiral cuticular micro-fibres called taenidia, which are the primary elements of mechanical reinforcement. We developed an AFM-based method to indent individual taenidia at the nanometre level, to quantify local mechanical properties of the interior acoustic canal of the bush-cricket Mecopoda elongata, a model species in hearing research. Taenidia fibres were immobilized on a hard substrate and the indenter directly approached the epicuticle surface. This is the first characterization of the nano-structure of unfixed tracheal taenidia, and should pave the way for further in vivo mechanical investigations of auditory structures.


Subject(s)
Acoustics , Trachea , Microscopy, Atomic Force/methods , Trachea/physiology , Elastic Modulus , Elasticity , Chitin
15.
Proc Inst Mech Eng H ; 236(9): 1449-1456, 2022 Sep.
Article in English | MEDLINE | ID: mdl-35894299

ABSTRACT

Tracheal stenting is a common method which is widely used to cure different tracheal disorders including airways stenosis, chronic coughs, and accidents. In this study, we aimed to analyze the reaction of the trachea wall to exhale in three phases of light, moderate, and vigorous activities at air flows of 15 L/min (light), 26 L/min (medium), and 30 L/min (vigorous). Fluid structure interaction (FSI) was used for the numerical analysis using computed tomography (CT) images. The flow was assumed incompressible and turbulent. The stent is silicone with a Young's modulus equal to 1 MPa, Poisson's ratio 0.28, and density of 2330 kg/m3. The stent length was 60 mm and fix support boundary condition was applied for all inputs and outputs. Numerical simulation was performed using ANSYS software. The induced stresses, strains, wall deformation, flow pressure, and the flow velocity were obtained. The results showed that the stent prevented the local deformation of the wall of trachea and it reduced the induced strain in the position. But the stenting could lead to stress concentration. Finally, the stent prevented the damage to the trachea muscles during coughs in row.


Subject(s)
Cough , Trachea , Finite Element Analysis , Humans , Reflex , Stents , Trachea/physiology , Trachea/surgery
16.
Sci Rep ; 12(1): 9000, 2022 05 30.
Article in English | MEDLINE | ID: mdl-35637239

ABSTRACT

Gene vectors to treat cystic fibrosis lung disease should be targeted to the conducting airways, as peripheral lung transduction does not offer therapeutic benefit. Viral transduction efficiency is directly related to the vector residence time. However, delivered fluids such as gene vectors naturally spread to the alveoli during inspiration, and therapeutic particles of any form are rapidly cleared via mucociliary transit. Extending gene vector residence time within the conducting airways is important, but hard to achieve. Gene vector conjugated magnetic particles that can be guided to the conducting airway surfaces could improve regional targeting. Due to the challenges of in-vivo visualisation, the behaviour of such small magnetic particles on the airway surface in the presence of an applied magnetic field is poorly understood. The aim of this study was to use synchrotron imaging to visualise the in-vivo motion of a range of magnetic particles in the trachea of anaesthetised rats to examine the dynamics and patterns of individual and bulk particle behaviour in-vivo. We also then assessed whether lentiviral-magnetic particle delivery in the presence of a magnetic field increases transduction efficiency in the rat trachea. Synchrotron X-ray imaging revealed the behaviour of magnetic particles in stationary and moving magnetic fields, both in-vitro and in-vivo. Particles could not easily be dragged along the live airway surface with the magnet, but during delivery deposition was focussed within the field of view where the magnetic field was the strongest. Transduction efficiency was also improved six-fold when the lentiviral-magnetic particles were delivered in the presence of a magnetic field. Together these results show that lentiviral-magnetic particles and magnetic fields may be a valuable approach for improving gene vector targeting and increasing transduction levels in the conducting airways in-vivo.


Subject(s)
Genetic Therapy , Synchrotrons , Animals , Magnetics , Rats , Trachea/physiology , X-Rays
17.
J Mater Chem B ; 10(25): 4810-4822, 2022 06 29.
Article in English | MEDLINE | ID: mdl-35237780

ABSTRACT

Long segment trachea defects are repaired by tracheal substitution, while decellularized technology has been effectively employed to prepare tissue engineering trachea (TET). However, its clinical application is restricted by the long preparation cycle, while poor vascularization is associated with the transplantation failure. In the present study, we used sodium lauryl ether sulfate (SLES) to develop a novel rapid decellularized tracheal preparation method, then constructed a TET with revascularization functions. Summarily, we decellularized rabbit trachea using various SLES concentrations. Results from histological analysis, immunohistochemical and DAPI staining, as well as DNA quantitative assay, revealed that 1-0.1% (v/v) SLES treatment not only entirely removed cellular components to reduce its immunogenicity, but also retained the tracheal matrix's gross structure. SEM images, safranine O-fast green staining, total collagen content assay and collagen II immunofluorescence revealed that low SLES concentrations preserved the bioactive components of the decellularized tracheal matrix. Next, we performed cytobiocompatible and cytotoxin assays to verify biocompatibility of the decellularized tracheal matrix, and is confirmed by the omentum transplantation of rats. Results from omentum transplantation revealed that the decellularized tracheal matrix had low immunogenicity and excellent biocompatibility. Its revascularization capacity was confirmed by histologic appearance and CD31 immunofluorescence. Based on these findings, we selected 0.1% (v/v) as the optimal SLES concentration for preparing a decellularized tracheal matrix. Next, we seeded allogeneic bone marrow stem cells (BMSC) onto the matrix to construct TET patches. In vivo tracheal defect reconstruction confirmed the biocompatibility and revascularization capacity of this novel TET, and the formation of a vascular network around the patch promoted submucosa and mucosa regeneration without significant stenosis, 4 weeks post-surgery. In conclusion, we used SLES to successfully develop a novel decellularized approach for the preparation of TET, which has low immunogenic and inflammatory responses, as well as excellent biocompatibility, and revascularization ability in vivo without additional exogenous cytokines.


Subject(s)
Tissue Engineering , Trachea , Animals , Extracellular Matrix/chemistry , Rabbits , Rats , Sodium Dodecyl Sulfate , Tissue Engineering/methods , Tissue Scaffolds/chemistry , Trachea/physiology , Trachea/surgery
18.
Am J Pathol ; 192(1): 104-111, 2022 01.
Article in English | MEDLINE | ID: mdl-34756873

ABSTRACT

The proinflammatory cytokine tumor necrosis factor-α (TNF-α) augments intracellular Ca2+ signaling and contractile responses of airway smooth muscles, leading to airway hyperresponsiveness. However, the underlying mechanism has not been fully elucidated. This study aimed to investigate the cellular mechanism of the potentiated contraction of mouse tracheal smooth muscle induced by TNF-α. The results showed that TNF-α triggered facilitation of mouse tracheal smooth muscle contraction in an epithelium-independent manner. The TNF-α-induced hypercontractility could be suppressed by the protein kinase C inhibitor GF109203X, the tyrosine kinase inhibitor genistein, the Src inhibitor PP2, or the L-type voltage-dependent Ca2+ channel blocker nifedipine. Following TNF-α incubation, the α1C L-type Ca2+ channel (CaV1.2) was up-regulated in cultured primary mouse tracheal smooth muscle cells. Pronounced phosphotyrosine levels were observed in mouse tracheas. In conclusion, this study shows that TNF-α enhanced airway smooth muscle contraction via protein kinase C-Src-CaV1.2 pathways, which provides novel insights into the pathologic role of proinflammatory cytokines in mediating airway hyperresponsiveness.


Subject(s)
Muscle Contraction , Muscle, Smooth/physiology , Trachea/physiology , Tumor Necrosis Factor-alpha/pharmacology , Animals , Calcium Channels, L-Type/metabolism , Carbachol/pharmacology , Male , Mice , Muscle Contraction/drug effects , Muscle, Smooth/drug effects , Phosphotyrosine/metabolism , Protein Kinase C/metabolism , Respiratory Mucosa/drug effects , Respiratory Mucosa/physiology , Signal Transduction/drug effects , Trachea/drug effects , Up-Regulation/drug effects , src-Family Kinases/metabolism
19.
Drug Discov Today ; 27(4): 1128-1131, 2022 04.
Article in English | MEDLINE | ID: mdl-34823003

ABSTRACT

Smooth muscle contraction is a basic homeostatic mechanism and, when dysfunctional, it is directly responsible for severe diseases like asthma and arterial hypertension. For decades, the standard technique to study contraction and evaluate the action of drugs has involved the use of isolated organ baths. However, the high cost of the dedicated personnel has led to their progressive replacement by techniques compatible with HTS. Nevertheless, preclinical evaluation of vasodilator or bronchodilator activity still requires direct evaluation of a drug's effects. The multi-well organ bath (MuWOB) combines the possibility of using a robot to perform computer-controlled contraction and relaxation assays on arterial and tracheal tissue (rings) in largescale parallel analyses.


Subject(s)
Muscle Contraction , Trachea , Bronchodilator Agents , Drug Discovery , Trachea/physiology , Vasodilator Agents/pharmacology
20.
Respir Res ; 22(1): 303, 2021 Nov 25.
Article in English | MEDLINE | ID: mdl-34823518

ABSTRACT

BACKGROUND: The mucociliary clearance system driven by beating cilia protects the airways from inhaled microbes and particles. Large particles are cleared by mucus bundles made in submucosal glands by parallel linear polymers of the MUC5B mucins. However, the structural organization and function of the mucus generated in surface goblet cells are poorly understood. METHODS: The origin and characteristics of different mucus structures were studied on live tissue explants from newborn wild-type (WT), cystic fibrosis transmembrane conductance regulator (CFTR) deficient (CF) piglets and weaned pig airways using video microscopy, Airyscan imaging and electron microscopy. Bronchoscopy was performed in juvenile pigs in vivo. RESULTS: We have identified a distinct mucus formation secreted from the surface goblet cells with a diameter less than two micrometer. This type of mucus was named mucus threads. With time mucus threads gathered into larger mucus assemblies, efficiently collecting particles. The previously observed Alcian blue stained mucus bundles were around 10 times thicker than the threads. Together the mucus bundles, mucus assemblies and mucus threads cleared the pig trachea from particles. CONCLUSIONS: These results demonstrate that normal airway mucus is more complex and has a more variable structural organization and function than was previously understood. These observations emphasize the importance of studying young objects to understand the function of a non-compromised lung.


Subject(s)
Goblet Cells/physiology , Mucociliary Clearance/physiology , Mucus/cytology , Trachea/physiology , Animals , Bronchoscopy , Goblet Cells/cytology , Microscopy, Video , Models, Animal , Swine
SELECTION OF CITATIONS
SEARCH DETAIL
...