Airway Mucosal Defense: Mucins, Innate Immunity, and Contemporary Mucoactive Strategies
Abstract
1. Introduction
2. Literature Search Strategy
3. Results
3.1. Mucins: Biosynthesis, Structure, and Classification
3.2. The Role of Mucins in Innate Immune Defense
3.3. Mechanical Protection of Mucous Membranes
3.4. Regulation of Inflammation
3.5. Mucoactive Strategies in Airway Protection
3.5.1. Expectorant Agents
3.5.2. Mucolytic Agents
3.5.3. Mucoregulatory Agents
3.5.4. Mucokinetic Agents
3.5.5. Emerging Directions in the Development of Novel Mucoactive Therapies
3.5.6. Non-Pharmacological Mucoactive Strategies
3.5.7. Clinical Effectiveness and Limitations of Mucoactive Therapies
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Chaplin, D.D. The immune system. Overview of the immune response. J. Allergy Clin. Immunol. 2003, 111, S442–S459. [Google Scholar] [CrossRef] [PubMed]
- Thomas, P.; Bart, P.H.J.; Thomma, S.E.; Girardin, B.L. The conceptual foundations of innate immunity: Taking stock 30 years later. Immunity 2024, 57, 613–631. [Google Scholar] [CrossRef] [PubMed]
- Marshall, J.S.; Warrington, R.; Watson, W.; Kim, H.L. An introduction to immunology and immunopathology. Allergy Asthma Clin. Immunol. 2018, 14, 49. [Google Scholar] [CrossRef]
- Royt, A.; Brostoff, J.; Mail, D. Immunology; Mir: Moscow, Russia, 2000. [Google Scholar]
- Bruce, A.; Johnson, A.; Lewis, J.; Raff, M.; Roberts, K.; Walters, P. Molecular Biology of the Cell, 4th ed.; Garland Science: New York, NY, USA; London, UK, 2002. [Google Scholar]
- Zhou, X.; Wu, Y.; Zhu, Z.; Lu, C.; Zhang, C.; Zeng, L.; Xie, F.; Zhang, L.; Zhou, F. Mucosal immune response in biology, disease prevention and treatment. Signal Transduct. Target. Ther. 2025, 10, 7. [Google Scholar] [CrossRef]
- Button, B.; Cai, L.H.; Ehre, C.; Kesimer, M.; Hill, D.B.; Sheehan, J.K.; Boucher, R.C.; Rubinstein, M. A periciliary brush promotes the lung health by separating the mucus layer from airway epithelia. Science 2012, 337, 937–941. [Google Scholar] [CrossRef]
- Denneny, E.; Sahota, J.; Beatson, R.; Thornton, D.; Burchell, J.; Porter, J. Mucins and their receptors in chronic lung disease. Clin. Transl. Immunol. 2020, 9, e01120. [Google Scholar] [CrossRef] [PubMed] [PubMed Central]
- Balsamo, R.; Lanata, L.; Egan, C.G. Mucoactive drugs. Eur. Respir. Rev. 2010, 19, 127–133. [Google Scholar] [CrossRef]
- Yan, X.; Song, Y.; Shen, C.; Xu, W.; Chen, L.; Zhang, J.; Liu, H.; Huang, M.; Lai, G.; Qian, G.; et al. Mucoactive and antioxidant medicines for COPD: Consensus of a group of Chinese pulmonary physicians. Int. J. Chron. Obstruct. Pulm. Dis. 2017, 12, 803–812. [Google Scholar] [CrossRef]
- Teoibas-Serban, D.; Blendea, C.D.; Mihaltan, F. Kinesiotherapy and physical activity in COPD and Asthma Patients—A Review. Balneo PRM Res. J. 2022, 13, 507. [Google Scholar] [CrossRef]
- Ma, J.; Rubin, B.K.; Voynow, J.A. Mucins, Mucus, and Goblet Cells. Chest 2018, 154, 169–176. [Google Scholar] [CrossRef] [PubMed]
- Linden, S.K.; Sutton, P.; Karlsson, N.G.; Korolik, V.; McGuckin, M.A. Mucins in the mucosal barrier to infection. Mucosal Immunol. 2008, 1, 183–197. [Google Scholar] [CrossRef] [PubMed]
- Corfield, A.P. Mucins: A biologically relevant glycan barrier in mucosal protection. Biochim. Biophys. Acta 2015, 1850, 236–252. [Google Scholar] [CrossRef]
- Jensen, P.H.; Kolarich, D.; Packer, N.H. Mucin-type O-glycosylation—Putting the pieces together. FEBS J. 2010, 277, 81–94. [Google Scholar] [CrossRef] [PubMed]
- Thornton, D.J.; Rousseau, K.; McGuckin, M.A. Structure and function of the polymeric mucins in airways mucus. Annu. Rev. Physiol. 2008, 70, 459–486. [Google Scholar] [CrossRef] [PubMed]
- Lillehoj, E.P.; Kato, K.; Lu, W.; Kim, K.C. Cellular and molecular biology of airway mucins. Int. Rev. Cell Mol. Biol. 2013, 303, 139–202. [Google Scholar] [CrossRef]
- He, C.; Gao, H.; Xin, S.; Hua, R.; Guo, X.; Han, Y.; Shang, H.; Xu, J. View from the Biological Property: Insight into the Functional Diversity and Complexity of the Gut Mucus. Int. J. Mol. Sci. 2023, 24, 4227. [Google Scholar] [CrossRef]
- Sheehan, J.K.; Kirkham, S.; Howard, M.; Woodman, P.; Kutay, S.; Brazeau, C.; Buckley, J.; Thornton, D.J. Identification of molecular intermediates in the assembly pathway of the MUC5AC mucin. J. Biol. Chem. 2004, 279, 15698–15705. [Google Scholar] [CrossRef]
- Ridley, C.; Kirkham, S.; Williamson, S.J.; Davis, C.W.; Woodman, P.; Thornton, D.J. Biosynthesis of the polymeric gel-forming mucin MUC5B. Am. J. Physiol. Lung Cell. Mol. Physiol. 2016, 310, L993–L1002. [Google Scholar] [CrossRef]
- Sheng, Y.H.; Hasnain, S.Z. Mucus and Mucins: The Underappreciated Host Defence System 2022. Front. Cell. Infect. Microbiol. 2022, 12, 856962. [Google Scholar] [CrossRef]
- Strugala, V.; Allen, A.; Dettmar, P.W.; Pearson, J.P. Colonic mucin: Methods of measuring mucus thickness. Proc. Nutr. Soc. 2003, 62, 237–243. [Google Scholar] [CrossRef]
- Jordan, N.; Newton, J.; Pearson, J.; Allen, A. A novel method for the visualization of the in situ mucus layer in rat and man. Clin. Sci. 1998, 95, 97–106. [Google Scholar] [CrossRef]
- Atuma, C.; Strugala, V.; Allen, A.; Holm, L. The adherent gastrointestinal mucus gel layer: Thickness and physical state in vivo. Am. J. Physiol. Gastrointest. Liver Physiol. 2001, 280, G922–G929. [Google Scholar] [CrossRef] [PubMed]
- Atanasova, K.R.; Reznikov, L.R. Strategies for measuring airway mucus and mucins. Respir. Res. 2019, 20, 261. [Google Scholar] [CrossRef]
- Vagios, S.; Mitchell, C.M. Mutual Preservation: A Review of Interactions Between Cervicovaginal Mucus and Microbiota. Front. Cell. Infect. Microbiol. 2021, 11, 676114. [Google Scholar] [CrossRef]
- Bansil, R.; Turner, B.S. Mucin structure, aggregation, physiological functions and biomedical applications. Curr. Opin. Colloid Interface Sci. 2006, 11, 164–170. [Google Scholar] [CrossRef]
- Wagner, C.E.; Wheeler, K.M.; Ribbeck, K. Mucins and Their Role in Shaping the Functions of Mucus Barriers. Annu. Rev. Cell Dev. Biol. 2018, 34, 189–215. [Google Scholar] [CrossRef]
- Witten, J.; Samad, T.; Ribbeck, K. Selective permeability of mucus barriers. Curr. Opin. Biotechnol. 2018, 52, 124–133. [Google Scholar] [CrossRef]
- Li, L.D.; Crouzier, T.; Sarkar, A.; Dunphy, L.; Han, J.; Ribbeck, K. Spatial configuration and composition of charge modulates transport into a mucin hydrogel barrier. Biophys. J. 2013, 105, 1357–1365. [Google Scholar] [CrossRef] [PubMed]
- Carlson, T.L.; Lock, J.Y.; Carrier, R.L. Engineering the mucus barrier. Annu. Rev. Biomed. Eng. 2018, 20, 197–220. [Google Scholar] [CrossRef] [PubMed]
- Adler, K.B.; Li, Y. Airway epithelium and mucus: Intracellular signaling pathways for gene expression and secretion. Am. J. Respir. Cell Mol. Biol. 2001, 25, 397–400. [Google Scholar] [CrossRef]
- Lillehoj, E.P.; Kim, K.C. Airway mucus: Its components and function. Arch. Pharm. Res. 2002, 25, 770–780. [Google Scholar] [CrossRef]
- Knowles, M.R.; Boucher, R.C. Mucus clearance as a primary innate defense mechanism for mammalian airways. J. Clin. Investig. 2002, 109, 571–577. [Google Scholar] [CrossRef] [PubMed]
- Livraghi, A.; Randell, S.H. Cystic fibrosis and other respiratory diseases of impaired mucus clearance. Toxicol. Pathol. 2007, 35, 116–129. [Google Scholar] [CrossRef] [PubMed]
- Fahy, J.V.; Dickey, B.F. Airway mucus function and dysfunction. N. Engl. J. Med. 2010, 363, 2233–2247. [Google Scholar] [CrossRef]
- Thornton, D.J.; Sheehan, J.K. From mucins to mucus: Toward a more coherent understanding of this essential barrier. Proc. Am. Thorac. Soc. 2004, 1, 54–61. [Google Scholar] [CrossRef]
- Lachowicz-Scroggins, M.E.; Yuan, S.; Kerr, S.C.; Dunican, E.M.; Yu, M.; Carrington, S.D.; Fahy, J.V. Abnormalities in MUC5AC and MUC5B protein in airway mucus in asthma. Am. J. Respir. Crit. Care Med. 2016, 194, 1296–1299. [Google Scholar] [CrossRef]
- Shah, S.A.; Ishinaga, H.; Takeuchi, K. Distinct Secretion of MUC5AC and MUC5B in Upper and Lower Chronic Airway Diseases. Open Access Maced. J. Med. Sci. 2022, 10, 215–223. [Google Scholar] [CrossRef]
- Rose, M.C.; Voynow, J.A. Respiratory tract mucin genes and mucin glycoproteins in health and disease. Physiol. Rev. 2006, 86, 245–278. [Google Scholar] [CrossRef] [PubMed]
- Kesimer, M.; Ford, A.A.; Ceppe, A.; Radicioni, G.; Cao, R.; Davis, C.W.; Doerschuk, C.M.; Alexis, N.E.; Anderson, W.H.; Henderson, A.G.; et al. Airway mucin concentration as a marker of chronic bronchitis. N. Engl. J. Med. 2017, 377, 911–922. [Google Scholar] [CrossRef]
- Bonser, L.R.; Zlock, L.; Finkbeiner, W.; Erle, D.J. Epithelial tethering of MUC5AC-rich mucus impairs mucociliary transport in asthma. J. Clin. Investig. 2016, 126, 2367–2371. [Google Scholar] [CrossRef]
- Raclawska, D.S.; Ttofali, F.; Fletcher, A.A.; Harper, D.N.; Bochner, B.S.; Janssen, W.J.; Evans, C.M. Mucins and their sugars. Critical mediators of hyperreactivity and inflammation. Ann. Am. Thorac. Soc. 2016, 13, S98–S99. [Google Scholar] [CrossRef] [PubMed]
- Roy, M.G.; Livraghi-Butrico, A.; Fletcher, A.A.; McElwee, M.M.; Evans, S.E.; Boerner, R.M.; Alexander, S.N.; Bellinghausen, L.K.; Song, A.S.; Petrova, Y.M.; et al. Muc5b is required for airway defence. Nature 2014, 505, 412–416. [Google Scholar] [CrossRef]
- Livraghi-Butrico, A.; Grubb, B.R.; Wilkinson, K.J.; Volmer, A.S.; Burns, K.A.; Evans, C.M.; O’Neal, W.K.; Boucher, R.C. Contribution of mucus concentration and secreted mucins Muc5ac and Muc5b to the pathogenesis of muco-obstructive lung disease. Mucosal Immunol. 2017, 10, 395–407. [Google Scholar] [CrossRef]
- Costain, G.; Liu, Z.; Mennella, V.; Radicioni, G.; Goczi, A.N.; Albulescu, A.; Walker, S.; Ngan, B.; Manson, D.; Vali, R.; et al. Hereditary mucin deficiency caused by biallelic loss of function of MUC5B. Am. J. Respir. Crit. Care Med. 2022, 205, 761–768. [Google Scholar] [CrossRef] [PubMed]
- Pincikova, T.; Merikallio, H.; Kotortsi, I.; Karimi, R.; Li, C.X.; Lappi-Blanco, E.; Lindén, S.K.; Padra, M.; Wheelock, Å.M.; Nyrén, S.; et al. Expression Levels of MUC5AC and MUC5B in Airway Goblet Cells Are Associated with Traits of COPD and Progression of Chronic Airflow Limitation. Int. J. Mol. Sci. 2024, 25, 13653. [Google Scholar] [CrossRef]
- Song, D.; Iverson, E.; Kaler, L.; Boboltz, A.; Scull, M.A.; Duncan, G.A. MUC5B mobilizes and MUC5AC spatially aligns mucociliary transport on human airway epithelium. Sci. Adv. 2022, 8, eabq5049. [Google Scholar] [CrossRef]
- Radicioni, G.; Ceppe, A.; Ford, A.A.; Alexis, N.E.; Barr, R.G.; Bleecker, E.R.; Christenson, S.A.; Cooper, C.B.; Han, M.K.; Hansel, N.N.; et al. Airway mucin MUC5AC and MUC5B concentrations and the initiation and progression of chronic obstructive pulmonary disease: An analysis of the SPIROMICS cohort. Lancet Respir. Med. 2021, 9, 1241–1254. [Google Scholar] [CrossRef]
- Rogers, D.F. Physiology of airway mucus secretion and pathophysiology of hypersecretion. Respir. Care 2007, 52, 1134–1146. [Google Scholar] [CrossRef]
- Kesimer, M.; Kirkham, S.; Pickles, R.J.; Henderson, A.G.; Alexis, N.E.; Demaria, G.; Knight, D.; Thornton, D.J.; Sheehan, J.K. Tracheobronchial air-liquid interface cell culture: A model for innate mucosal defense of the upper airways? Am. J. Physiol. Lung Cell. Mol. Physiol. 2009, 296, L92–L100. [Google Scholar] [CrossRef]
- Ali, M.; Lillehoj, E.P.; Park, Y.; Kyo, Y.; Kim, K.C. Analysis of the proteome of human airway epithelial secretions. Proteome Sci. 2011, 9, 4. [Google Scholar] [CrossRef] [PubMed]
- Kim, K.C.; Singh, B.N. Association of lipids with mucins may take place prior to secretion: Studies with primary hamster tracheal epithelial cells in culture. Biorheology 1990, 27, 491–501. [Google Scholar] [CrossRef]
- Tomasetto, C.; Masson, R.; Linares, J.L.; Wendling, C.; Lefebvre, O.; Chenard, M.P.; Rio, M.C. pS2/TFF1 interacts directly with the VWFC cysteine-rich domains of mucins. Gastroenterology 2000, 118, 70–80. [Google Scholar] [CrossRef]
- Thim, L.; Madsen, F.; Poulsen, S.S. Effect of trefoil factors on the viscoelastic properties of mucus gels. Eur. J. Clin. Investig. 2002, 32, 519–527. [Google Scholar] [CrossRef] [PubMed]
- Jin, C.; Kenny, D.T.; Skoog, E.C.; Padra, M.; Adamczyk, B.; Vitizeva, V.; Thorell, A.; Venkatakrishnan, V.; Lindén, S.K.; Karlsson, N.G. Structural Diversity of Human Gastric Mucin Glycans. Mol. Cell. Proteom. 2017, 16, 743–758. [Google Scholar] [CrossRef] [PubMed]
- Wallace, L.E.; Liu, M.; van Kuppeveld, F.J.M.; de Vries, E.; de Haan, C.A.M. Respiratory mucus as a virus-host range determinant. Trends Microbiol. 2021, 29, 983–992. [Google Scholar] [CrossRef]
- Chen, Z.; Zhong, M.; Luo, Y.; Deng, L.; Hu, Z.; Song, Y. Determination of rheology and surface tension of airway surface liquid: A review of clinical relevance and measurement techniques. Respir. Res. 2019, 20, 274. [Google Scholar] [CrossRef]
- Fröhlich, E. Non-Cellular Layers of the Respiratory Tract: Protection against Pathogens and Target for Drug Delivery. Pharmaceutics 2022, 14, 992. [Google Scholar] [CrossRef]
- Siegel, S.J.; Weiser, J.N. Mechanisms of Bacterial Colonization of the Respiratory Tract. Annu. Rev. Microbiol. 2015, 69, 425–444. [Google Scholar] [CrossRef] [PubMed]
- Mendez, R.; Banerjee, S.; Bhattacharya, S.K.; Banerjee, S. Lung inflammation and disease: A perspective on microbial homeostasis and metabolism. IUBMB Life 2019, 71, 152–165. [Google Scholar] [CrossRef]
- Cebo, C.; Dambrouck, T.; Maes, E.; Laden, C.; Strecker, G.; Michalski, J.C.; Zanetta, J.P. Recombinant human interleukins IL-1α, IL-1β, IL-4, IL-6, and IL-7 show different and specific calcium-independent carbohydrate-binding properties. J. Biol. Chem. 2001, 276, 5685–5691. [Google Scholar] [CrossRef]
- Kato, K.; Uchino, R.; Lillehoj, E.P.; Knox, K.; Lin, Y.; Kim, K.C. Membranetethered MUC1 mucin counter-regulates the phagocytic activity of macrophages. Am. J. Respir. Cell Mol. Biol. 2016, 54, 515–523. [Google Scholar] [CrossRef]
- Singanayagam, A.; Footitt, J.; Marczynski, M.; Radicioni, G.; Cross, M.T.; Finney, L.J.; Trujillo-Torralbo, M.B.; Calderazzo, M.; Zhu, J.; Aniscenko, J.; et al. Airway mucins promote immunopathology in virus-exacerbated chronic obstructive pulmonary disease. J. Clin. Investig. 2022, 132, e120901. [Google Scholar] [CrossRef]
- Sheng, Y.H.; He, Y.; Hasnain, S.Z.; Wang, R.; Tong, H.; Clarke, D.T.; Lourie, R.; Oancea, I.; Wong, K.Y.; Lumley, J.W.; et al. MUC13 Protects Colorectal Cancer Cells from Death by Activating the NF-kappaB Pathway and is a Potential Therapeutic Target. Oncogene 2017, 36, 700–713. [Google Scholar] [CrossRef]
- Meldrum, O.W.; Chotirmall, S.H. Mucus, Microbiomes and Pulmonary Disease. Biomedicines 2021, 9, 675. [Google Scholar] [CrossRef]
- Li, X.; Chen, M.; Chen, T.; Xie, L.; Luo, Q.; Fan, X.; Yin, Y.; Meng, S.; Jin, Z.; He, Y.; et al. The intricate interplay among microbiota, mucosal immunity, and viral infection in the respiratory tract. J. Transl. Med. 2025, 23, 488. [Google Scholar] [CrossRef]
- Elkins, M.R.; Bye, P.T. Mechanisms and applications of hypertonic saline. J. R. Soc. Med. 2011, 104, 2–5. [Google Scholar] [CrossRef] [PubMed]
- Daviskas, E.; Rubin, B.K. Effect of inhaled dry powder mannitol on mucus and its clearance. Expert. Rev. Respir. Med. 2013, 7, 65–75. [Google Scholar] [CrossRef] [PubMed]
- Sisson, J.H.; Yonkers, A.J.; Waldman, R.H. Effects of guaifenesin on nasal mucociliary clearance and ciliary beat frequency in healthy volunteers. Chest 1995, 107, 747–751. [Google Scholar] [CrossRef][Green Version]
- Olivier, K.N.; Bennett, W.D.; Hohneker, K.W.; Zeman, K.L.; Edwards, L.J.; Boucher, R.C.; Knowles, M.R. Acute safety and effects on mucociliary clearance of aerosolized uridine 5′-triphosphate +/- amiloride in normal human adults. Am. J. Respir. Crit. Care Med. 1996, 154, 217–223. [Google Scholar] [CrossRef] [PubMed]
- Rubin, B.K. Mucolytics, Expectorants, and Mucokinetic Medications. Respir. Care 2007, 52, 859–865. [Google Scholar] [CrossRef]
- Sadowska, A.M.; Verbraecken, J.; Darquennes, K.; De Backer, W.A. Role of N-acetylcysteine in the management of COPD. Int. J. Chron. Obstruct Pulmon Dis. 2006, 1, 425–434. [Google Scholar] [CrossRef]
- Konstan, M.W.; Ratjen, F. Effect of dornase alfa on inflammation and lung function: Potential role in the early treatment of cystic fibrosis. J. Cyst. Fibros. 2012, 11, 78–83. [Google Scholar] [CrossRef]
- Shak, S.; Capon, D.J.; Hellmiss, R.; Marsters, S.A.; Baker, C.L. Recombinant human DNase I reduces the viscosity of cystic fibrosis sputum. Proc. Natl. Acad. Sci. USA 1990, 87, 9188–9192. [Google Scholar] [CrossRef] [PubMed]
- Quan, J.M.; Tiddens, H.A.; Sy, J.P.; McKenzie, S.G.; Montgomery, M.D.; Robinson, P.J.; Wohl, M.E.B.; Konstan, M.W.; for the Pulmozyme Early Intervention Trial Study Group. A two-year randomized, placebo-controlled trial of dornase alfa in young patients with cystic fibrosis with mild lung function abnormalities. J. Pediatr. 2001, 139, 813–820. [Google Scholar] [CrossRef] [PubMed]
- Fuxman Bass, J.I.; Russo, D.M.; Gabelloni, M.L.; Geffner, J.R.; Giordano, M.; Catalano, M.; Zorreguieta, Á.; Trevani, A.S. Extracellular DNA: A major proinflammatory component of Pseudomonas aeruginosa biofilms. J. Immunol. 2010, 184, 6386–6395. [Google Scholar] [CrossRef]
- Frederiksen, B.; Pressler, T.; Hansen, A.; Koch, C.; Hoiby, N. Effect of aerosolized rhDNase (Pulmozyme) on pulmonary colonization in patients with cystic fibrosis. Acta Paediatr. 2006, 95, 1070–1074. [Google Scholar] [CrossRef]
- Yao, H.; Rahman, I. Current concepts on oxidative/carbonyl stress, inflammation and, epigenetics in pathogenesis of chronic obstructive pulmonary disease. Toxicol. Appl. Pharmacol. 2011, 254, 72–85. [Google Scholar] [CrossRef]
- Braga, P.C.; Allegra, L.; Rampoldi, C.; Ornaghi, A.; Beghi, G. Long-lasting effects on rheology and clearance of bronchial mucus after short-term administration of high doses of carbocysteinelysine to patients with chronic bronchitis. Respiration 1990, 57, 353–358. [Google Scholar] [CrossRef]
- Song, Y.; Wang, W.; Xie, Y.; Xiang, B.; Huang, X.; Guan, W.; Zheng, J. Carbocisteine inhibits the expression of Muc5b in COPD mouse model. Drug Des. Dev. Ther. 2019, 13, 3259–3268. [Google Scholar] [CrossRef]
- Guizzardi, F.; Rodighiero, S.; Binelli, A.; Saino, S.; Bononi, E.; Dossena, S.; Garavaglia, M.L.; Bazzini, C.; Bottà, G.; Conese, M.; et al. S-CMC-Lys-dependent stimulation of electrogenic glutathione secretion by human respiratory epithelium. J. Mol. Med. Berl. Ger. 2006, 84, 97–107. [Google Scholar] [CrossRef] [PubMed]
- Hocquignya, A.; Hugerotb, H.; Ghanema, R.; Hautea, T.; Laurentb, V.; Coguletb, V.; Montier, T. Mucoactive drugs and multiple applications in pulmonary disease therapy. Eur. J. Pharm. Biopharm. 2024, 194, 110–117. [Google Scholar] [CrossRef]
- Agnew, J.E.; Bateman, J.R.; Pavia, D.; Clarke, S.W. Peripheral airways mucus clearance in stable asthma is improved by oral corticosteroid therapy. Bull. Eur. Physiopathol. Respir. 1984, 20, 295–301. [Google Scholar] [PubMed]
- Gotfried, M.H. Macrolides for the treatment of chronic sinusitis, asthma, and COPD. Chest 2004, 125, 52S–60S. [Google Scholar] [CrossRef][Green Version]
- Delavoie, F.; Molinari, M.; Milliot, M.; Zahm, J.-M.; Coraux, C.; Michel, J.; Balossier, G. Salmeterol restores secretory functions in cystic fibrosis airway submucosal gland serous cells. Am. J. Respir. Cell Mol. Biol. 2009, 40, 388–397. [Google Scholar] [CrossRef]
- Sears, M.R. Safety of long-acting beta-agonists: Are new data really required? Chest 2009, 136, 604–607. [Google Scholar] [CrossRef]
- Bossé, Y. The airway smooth muscle and the pipe dream of better bronchodilators. Can. J. Physiol. Pharmacol. 2024, 103, 2–11. [Google Scholar] [CrossRef]
- Williams, D.M.; Rubin, B.K. Clinical Pharmacology of Bronchodilator Medications. Respir. Care 2018, 63, 641–654. [Google Scholar] [CrossRef]
- Malerba, M.; Ragnoli, B. Ambroxol in the 21st century: Pharmacological and clinical update. Expert. Opin. Drug Metab. Toxicol. 2008, 4, 1119–1129. [Google Scholar] [CrossRef] [PubMed]
- Farkhutdinov, U.R.; Farkhutdinov, R.R.; Petriakov, W. Effect of mucolytic therapy on the production of reactive oxygen species in the blood of patients with an exacerbation of chronic obstructive pulmonary disease. Ter. Arkh. 2010, 82, 29–32. [Google Scholar] [PubMed]
- Lasker, J.M.; Chen, W.B.; Wolf, I.; Bloswick, B.P.; Wilson, P.D.; Powell, P.K. Formation of 20-hydroxyeicosatetraenoic acid, a vasoactive and natriuretic eicosanoid, in human kidney. Role of Cyp4F2 and Cyp4A11. J. Biol. Chem. 2000, 275, 4118–4126. [Google Scholar] [CrossRef] [PubMed]
- Joos, G.F.; Kips, J.C.; Peleman, R.A.; Pauwels, R.A. Tachykinin antagonists and the airways. Arch. Int. Pharmacodyn. Ther. 1995, 329, 205–219. [Google Scholar] [PubMed]
- Wang, T.; Liu, Y.; Chen, L.; Wang, X.; Hu, X.R.; Feng, Y.L.; Liu, D.S.; Xu, D.; Duan, Y.P.; Lin, J.; et al. Effect of sildenafil on acrolein-induced airway inflammation and mucus production in rats. Eur. Respir. J. 2009, 33, 1122–1132. [Google Scholar] [CrossRef]
- Nakanishi, A.; Morita, S.; Iwashita, H.; Sagiya, Y.; Ashida, Y.; Shirafuji, H.; Fujisawa, Y.; Nishimura, O.; Fujino, M. Role of gob-5 in mucus overproduction and airway hyperresponsiveness in asthma. Proc. Natl. Acad. Sci. USA 2001, 98, 5175–5180. [Google Scholar] [CrossRef] [PubMed]
- Hauber, H.P.; Goldmann, T.; Vollmer, E.; Wollenberg, B.; Hung, H.L.; Levitt, R.C.; Zabel, P. LPS-induced mucin expression in human sinus mucosa can be attenuated by hCLCA inhibitors. J. Endotoxin Res. 2007, 13, 109–116. [Google Scholar] [CrossRef]
- Davis, C.W. Regulation of mucin secretion from in vitro cellular models. Novartis Found. Symp. 2002, 248, 113–125. [Google Scholar]
- Green, T.D.; Crews, A.L.; Park, J.; Fang, S.; Adler, K.B. Regulation of mucin secretion and inflammation in asthma: A role for MARCKS protein? Biochim. Biophys. Acta 2011, 1810, 1110–1113. [Google Scholar] [CrossRef]
- Koo, J.S.; Jetten, A.M.; Belloni, P.; Yoon, J.H.; Kim, Y.D.; Nettesheim, P. Role of retinoid receptors in the regulation of mucin gene expression by retinoic acid in human tracheobronchial epithelial cells. Biochem. J. 1999, 338, 351–357. [Google Scholar] [CrossRef]
- Poole, P.; Sathananthan, K.; Fortescue, R. Mucolytic agents versus placebo for chronic bronchitis or chronic obstructive pulmonary disease. Cochrane Database Syst. Rev. 2019, 5, CD001287. [Google Scholar] [CrossRef]
- Cazzola, M.; Page, C.P.; Wedzicha, J.A.; Celli, B.R.; Anzueto, A.; Matera, M.G. Use of thiols and implications for the use of inhaled corticosteroids in the presence of oxidative stress in COPD. Respir. Res. 2023, 24, 194. [Google Scholar] [CrossRef]
- Zheng, J.P.; Kang, J.; Huang, S.G.; Chen, P.; Yao, W.-Z.; Yang, L.; Bai, C.-X.; Wang, C.-Z.; Wang, C.; Chen, B.-Y.; et al. Effect of carbocisteine on acute exacerbation of chronic obstructive pulmonary disease (PEACE Study): A randomised placebo-controlled study. Lancet 2008, 371, 2013–2018. [Google Scholar] [CrossRef] [PubMed]
- Wedzicha, J.A.; Calverley, P.M.A.; Albert, R.K.; Anzueto, A.; Criner, G.J.; Hurst, J.R.; Miravitlles, M.; Papi, A.; Rabe, K.F.; Rigau, D.; et al. Prevention of COPD exacerbations: A European Respiratory Society/American Thoracic Society guideline. Eur. Respir. J. 2017, 50, 1602265. [Google Scholar] [CrossRef]
- Zhou, Y.; Wu, F.; Shi, Z.; Cao, J.; Tian, J.; Yao, W.; Wei, L.; Li, F.; Cai, S.; Shen, Y.; et al. Effect of high-dose N-acetylcysteine on exacerbations and lung function in patients with mild-to-moderate COPD: A double-blind, parallel group, multicentre randomised clinical trial. Nat. Commun. 2024, 15, 8468. [Google Scholar] [CrossRef]
- Global Initiative for Chronic Obstructive Lung Disease. Global Strategy for the Diagnosis, Management, and Prevention of Chronic Obstructive Pulmonary Disease. 2026 Report. Available online: https://goldcopd.org/2026-gold-report-and-pocket-guide/ (accessed on 28 December 2025).
- Bradley, J.M.; O’Neill, B.; McAuley, D.F.; Chalmers, J.D.; De Soyza, A.; Hill, A.T.; Carroll, M.; Loebinger, M.R.; Duckers, J.; Clarke, M.; et al. Hypertonic saline or carbocisteine in bronchiectasis. N. Engl. J. Med. 2025, 393, 1565–1577. [Google Scholar] [CrossRef]
- Chalmers, J.D.; Haworth, C.S.; Flume, P.; Long, M.B.; Burgel, P.-R.; Dimakou, K.; Blasi, F.; Herrero-Cortina, B.; Dhar, R.; Chotirmall, S.H.; et al. European Respiratory Society clinical practice guideline for the management of adult bronchiectasis. Eur. Respir. J. 2025, 66, 2501126. [Google Scholar] [CrossRef]
- Tam, J.; Nash, E.F.; Ratjen, F.; Tullis, E.; Stephenson, A. Nebulized and oral thiol derivatives for pulmonary disease in cystic fibrosis. Cochrane Database Syst. Rev. 2013, 2013, CD007168. [Google Scholar] [CrossRef]
- Ciofu, O.; Smith, S.; Lykkesfeldt, J. Antioxidant supplementation for lung disease in cystic fibrosis. Cochrane Database Syst. Rev. 2019, 10, CD007020. [Google Scholar] [CrossRef]
- Sun, W.; Mou, S.; Huntington, C.; Killick, H.; Scott, I.C.; Kelly, A.; Gavala, M.; Larsson, J.; Vakkalanka, M.D.; Alexis, N.E.; et al. Development and qualification of an LC-MS/MS method for quantification of MUC5AC and MUC5B mucins in spontaneous sputum. Bioanalysis 2025, 17, 187–198. [Google Scholar] [CrossRef] [PubMed]
- Taylor-Cousar, J.L.; Robinson, P.D.; Shteinberg, M.; Downey, D.G. CFTR modulator therapy: Transforming the landscape of clinical care in cystic fibrosis. Lancet 2023, 402, 1171–1184. [Google Scholar] [CrossRef] [PubMed]
- Wang, X.; Tse, C.; Singh, A. Discovery and development of CFTR modulators for the treatment of cystic fibrosis. J. Med. Chem. 2025, 68, 2255–2300. [Google Scholar] [CrossRef] [PubMed]
- Venegas Garrido, C.; Mukherjee, M.; Svenningsen, S.; Nair, P. Eosinophil-mucus interplay in severe asthma: Implications for treatment with biologicals. Allergol. Int. 2024, 73, 351–361. [Google Scholar] [CrossRef]
- Porsbjerg, C.; Dunican, E.M.; Lugogo, N.L.; Castro, M.; Papi, A.; Backer, V.; Brightling, C.E.; Bourdin, A.; Virchow, J.C.; Zhang, M.; et al. Effect of dupilumab on mucus burden in patients with moderate-to-severe asthma: The VESTIGE trial. Am. J. Respir. Crit. Care Med. 2025. [Google Scholar] [CrossRef] [PubMed]
- Sakai, N.; Koya, T.; Murai, Y.; Tsubokawa, F.; Tanaka, K.; Naramoto, S.; Aoki, A.; Shima, K.; Kimura, Y.; Watanabe, S.; et al. Effect of benralizumab on mucus plugs in severe eosinophilic asthma. Int. Arch. Allergy Immunol. 2023, 184, 783–791. [Google Scholar] [CrossRef] [PubMed]
- McIntosh, M.J.; Kooner, H.K.; Eddy, R.L.; Wilson, A.; Serajeddini, H.; Bhalla, A.; Licskai, C.; Mackenzie, C.A.; Yamashita, C.; Parraga, G. CT mucus score and 129Xe MRI ventilation defects after 2.5 years’ anti-IL-5Rα in eosinophilic asthma. Chest 2023, 164, 27–38. [Google Scholar] [CrossRef] [PubMed]



| Mucoactive Drugs | Mucoactive Properties | Clinical Indications | Major Limitations | |
|---|---|---|---|---|
| Expectorants | Hypertonic saline (3–7%) |
| Improvement of airway hydration and mucociliary clearance; mainly used in cystic fibrosis and selected cases of bronchiectasis. | May cause cough or bronchospasm; limited tolerability in airway hyperresponsiveness; evidence outside cystic fibrosis remains limited. |
| Guaifenesin |
| Expectorant for symptomatic relief of productive cough and facilitation of mucus clearance. | Limited evidence in chronic airway diseases; mild gastrointestinal adverse effects. | |
| Mannitol |
| Osmotic agent enhancing airway hydration and mucociliary clearance; used in cystic fibrosis and selected patients with bronchiectasis. | May cause cough and bronchospasm; requires bronchial tolerance testing before initiation. | |
| Uridine triphosphate and adenosine triphosphate |
| Purinergic agonists stimulate epithelial ion and water secretion and enhance mucociliary clearance in cystic fibrosis and bronchiectasis. | Limited clinical availability and regulatory approval; short duration of action; clinical evidence remains limited. | |
| Mucolytics | N-acetylcysteine |
| Mucolytic and antioxidant used in chronic productive cough and mucus hypersecretion, including COPD. | Variable clinical efficacy; gastrointestinal intolerance; potential bronchospasm with inhaled formulations. |
| Erdosteine |
| Mucolytic with antioxidant and anti-inflammatory properties used in chronic bronchitis and COPD. | Limited data in diseases other than COPD; mild gastrointestinal adverse effects. | |
| Heparin |
| Investigational therapy targeting mucus viscosity and airway inflammation in chronic airway diseases. | Limited clinical evidence; lack of standardized protocols; potential bleeding risk. | |
| Dornase alfa | Degradation of extracellular DNA in mucus, reducing viscosity and promoting clearance | Recombinant DNase that reduces mucus viscosity by degrading extracellular DNA; standard therapy in cystic fibrosis. | Limited efficacy and potential harm in non-cystic fibrosis bronchiectasis; high cost. | |
| Mucoregulators | Carbocysteine |
| Regulates mucus composition and reduces sputum viscosity in chronic airway diseases, particularly COPD. | Evidence mainly from long-term therapy studies; gastrointestinal adverse effects. |
| Anticholinergic agents |
| Bronchodilation and reduction in cholinergic-mediated mucus secretion in obstructive airway diseases. | Limited direct effects on mucus clearance; anticholinergic adverse effects. | |
| Glucocorticoids |
| Anti-inflammatory therapy for airway diseases with prominent inflammation, including asthma and selected patients with COPD. | No direct mucolytic effect; limited benefit for mucus clearance; potential systemic and local adverse effects with long-term use. | |
| Macrolide antibiotics |
| Long-term anti-inflammatory and immunomodulatory therapy in chronic airway diseases with recurrent infection and mucus hypersecretion, including bronchiectasis, cystic fibrosis, and selected patients with COPD. | Risk of antimicrobial resistance with prolonged use; potential adverse effects (QT prolongation, gastrointestinal symptoms); limited direct mucolytic activity. | |
| Mucokinetics | Bronchodilators |
| Improvement of airflow and facilitation of mucus clearance in obstructive airway diseases, including asthma and COPD. | No direct mucolytic activity; effectiveness depends on underlying airway obstruction; potential cardiovascular and systemic adverse effects. |
| Ambroxol | Stimulation of mucociliary transport and enhancement of mucus clearance | Mucolytic and secretolytic agent used to enhance mucus clearance in acute and chronic respiratory diseases with productive cough, including chronic bronchitis and COPD. | Limited high-quality evidence in chronic airway diseases; generally mild adverse effects (gastrointestinal symptoms, hypersensitivity reactions). | |
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Akparova, A.; Kurmanova, G.; Omarova, G.; Kurmanova, A.; Zhunisbek, M.; Bapaeva, M.; Zhankina, Z.; Sadykova, S.; Abdrakhmanova, A.; Samadin, A. Airway Mucosal Defense: Mucins, Innate Immunity, and Contemporary Mucoactive Strategies. Biomedicines 2026, 14, 831. https://doi.org/10.3390/biomedicines14040831
Akparova A, Kurmanova G, Omarova G, Kurmanova A, Zhunisbek M, Bapaeva M, Zhankina Z, Sadykova S, Abdrakhmanova A, Samadin A. Airway Mucosal Defense: Mucins, Innate Immunity, and Contemporary Mucoactive Strategies. Biomedicines. 2026; 14(4):831. https://doi.org/10.3390/biomedicines14040831
Chicago/Turabian StyleAkparova, Almira, Gaukhar Kurmanova, Gulzhakhan Omarova, Almagul Kurmanova, Moldir Zhunisbek, Magripa Bapaeva, Zhamilya Zhankina, Sholpan Sadykova, Amina Abdrakhmanova, and Adema Samadin. 2026. "Airway Mucosal Defense: Mucins, Innate Immunity, and Contemporary Mucoactive Strategies" Biomedicines 14, no. 4: 831. https://doi.org/10.3390/biomedicines14040831
APA StyleAkparova, A., Kurmanova, G., Omarova, G., Kurmanova, A., Zhunisbek, M., Bapaeva, M., Zhankina, Z., Sadykova, S., Abdrakhmanova, A., & Samadin, A. (2026). Airway Mucosal Defense: Mucins, Innate Immunity, and Contemporary Mucoactive Strategies. Biomedicines, 14(4), 831. https://doi.org/10.3390/biomedicines14040831

