Analyze Diet

Topic:Mucus

Mucus in horses is a secretion produced by the mucous membranes lining various parts of the respiratory and gastrointestinal systems. It serves multiple functions, including trapping dust and pathogens, facilitating movement within the digestive tract, and protecting mucosal surfaces. The composition of mucus can vary, containing water, mucins, enzymes, and immune cells, which contribute to its protective and lubricative properties. Changes in mucus production or composition can be indicative of underlying health issues such as respiratory infections, allergies, or gastrointestinal disturbances. This page compiles peer-reviewed research studies and scholarly articles that explore the production, composition, and clinical implications of mucus in equine physiology and health.
Mucus quality on horse tracheal epithelium: microscopic grading based on transparency.
Respiration physiology    January 1, 1997   Volume 107, Issue 1 67-74 doi: 10.1016/s0034-5687(96)02503-0
Gerber V, Gehr P, Straub R, Frenz M, King M, Im Hof V.The aim of this ex-vivo study on excised tracheas of healthy horses was to characterise the microscopic heterogeneity of mucus quality by a visual grading system based on transparency and to determine whether differences in mucus quality, assessed by a visual grading system, influence tracheal mucus velocity (TMV). Small pieces of each trachea were mounted into a humidified chamber under a microscope. Mucus quality was visually subdivided into four grades (MG) and ciliary beat frequency and TMV were determined. Mucus on excised horse tracheal epithelium does not form a homogenous layer. We obs...
Effects of furosemide, exercise, and atropine on tracheal mucus transport rate in horses.
American journal of veterinary research    July 1, 1995   Volume 56, Issue 7 908-912 
Maxson AD, Soma LR, May LL, Martini JA.Effects of furosemide, exercise, and atropine on tracheal mucus transport rate (TMTR) in horses were investigated. Atropine (0.02 mg/kg of body weight) administered IV or by aerosolization significantly (P < 0.05) decreased TMTR at 60, but not at 30 minutes after its administration in standing horses. Furosemide (1.10 mg/kg, IV) did not have any significant effect on TMTR when measured at 2 or 4 hours after its administration in standing horses. Exercise alone or furosemide (1.10 mg/kg, IV) administration followed 4 hours later by exercise did not alter TMTR, compared with values for standi...
Influence of clenbuterol on mucociliary transport in healthy horses and horses with chronic obstructive pulmonary disease.
The Veterinary record    November 18, 1989   Volume 125, Issue 21 526-530 doi: 10.1136/vr.125.21.526
Turgut K, Sasse HH.The mucociliary tracheal transport rate and clearance index were measured in 16 healthy horses and 16 horses suffering from chronic obstructive pulmonary disease. A marker, Indian ink in syrup, was placed in the mucus layer of the interior wall of the trachea, just in front of the carina, and its displacement was measured after 30 and 60 minutes. The same procedure was repeated 30 minutes after the intravenous administration of 0.8 microgram clenbuterol/kg bodyweight. In the diseased horses the mucociliary transport rate was significantly lower than in the healthy horses. After clenbuterol adm...
Effect of water vapor-saturated air therapy on bronchoalveolar lavage and tracheal mucus transport rate in clinically normal horses.
American journal of veterinary research    February 1, 1989   Volume 50, Issue 2 276-279 
Sweeney CR, Leary HJ, Ziemer EL, Spencer PA.Water vapor-saturated air was delivered to 12 healthy, housed horses for 2 hours daily for 5 days. Treatment had no effect on tracheal mucus transport rate, bronchoalveolar lavage total and differential cell counts, blood cell counts, or plasma fibrinogen concentration.
Tracheal mucus transport in the horse following equine influenza vaccination.
The Veterinary record    December 13, 1986   Volume 119, Issue 24 601-602 
Coombs SL, Webbon PM.No abstract available
Mucosal nasopharyngeal immune responses of horses to protein antigens of Streptococcus equi.
Infection and immunity    March 1, 1985   Volume 47, Issue 3 623-628 doi: 10.1128/iai.47.3.623-628.1985
Galan JE, Timoney JF.Mucosal nasopharyngeal immunoglobulin A (IgA) and IgG responses to proteins of Streptococcus equi were studied in horses after the experimental production of strangles. S. equi-specific IgA and IgG titers in nasopharyngeal mucus were much higher in samples from animals 1 to 2 weeks after challenge than in samples from control animals. Although IgA was the major immunoglobulin in nasal mucus, there was more antibody activity associated with IgG as measured by radioimmunoassay. Great differences between the specificities of antibodies in nasal mucus and in serum were detected. IgA and IgG of muc...
Influenza hemagglutination inhibiting activity in respiratory mucus from horses with chronic obstructive pulmonary disorders (heaves syndrome). Thorsen J, Willoughby RA, McDonell W, Valli VE, Viel L, Bignell W.Samples of mucus from the lower trachea were collected from 53 horses with chronic obstructive pulmonary disease and from 24 clinically normal horses. Serum samples were collected from 35 of the horses with chronic obstructive pulmonary disease and from the 24 normal horses. Samples were tested for inhibition of hemagglutination by influenza A equine 1 and 2 viruses. There were high levels of hemagglutination inhibiting activity against influenza A equine 1 in mucus samples from horses with chronic obstructive pulmonary disease.
Scanning electron microscopy of Gasterophilus intestinalis lesions of the equine stomach.
Journal of the American Veterinary Medical Association    February 1, 1978   Volume 172, Issue 3 310-313 
Shefstad DK.The lesions caused by larvae of Gasterophilus intestinalis in the cardiac region of the equine stomach were funnel-shaped ulcers surrounded by a rim of hyperplastic epithelial cells. Bacteria were commonly seen on the rim of epithelial cells, at the base of some ulcers, and within the cavities produced by the hooks of the larvae. Cellular debris and mucus were within the ulcer.