Application of Microbiome-Based Therapies in Chronic Respiratory Diseases

被引:3
作者
Lee, Se Hee [1 ]
Lee, Jang Ho [2 ]
Lee, Sei Won [2 ]
机构
[1] CHA Univ, CHA Bundang Med Ctr, Dept Pulmonol Allergy & Crit Care Med, Seongnam 13496, South Korea
[2] Univ Ulsan, Asan Med Ctr, Dept Pulm & Crit Care Med, Coll Med, Seoul 05505, South Korea
基金
新加坡国家研究基金会;
关键词
Asthma; Chronic obstructive pulmonary disease; Gut-lung axis; Idiopathic pulmonary fibrosis; Microbiome; IDIOPATHIC PULMONARY-FIBROSIS; DIETARY FIBER INTAKE; GUT MICROBIOTA; LUNG-FUNCTION; AIRWAY MICROBIOME; HAEMOPHILUS-INFLUENZAE; ASTHMA; ASSOCIATION; COTRIMOXAZOLE; FEATURES;
D O I
10.1007/s12275-024-00124-1
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The application of microbiome-based therapies in various areas of human disease has recently increased. In chronic respiratory disease, microbiome-based clinical applications are considered compelling options due to the limitations of current treatments. The lung microbiome is ecologically dynamic and affected by various conditions, and dysbiosis is associated with disease severity, exacerbation, and phenotype as well as with chronic respiratory disease endotype. However, it is not easy to directly modulate the lung microbiome. Additionally, studies have shown that chronic respiratory diseases can be improved by modulating gut microbiome and administrating metabolites. Although the composition, diversity, and abundance of the microbiome between the gut and lung are considerably different, modulation of the gut microbiome could improve lung dysbiosis. The gut microbiome influences that of the lung via bacterial-derived components and metabolic degradation products, including short-chain fatty acids. This phenomenon might be associated with the cross-talk between the gut microbiome and lung, called gut-lung axis. There are multiple alternatives to modulate the gut microbiome, such as prebiotics, probiotics, and postbiotics ingestion and fecal material transplantation. Several studies have shown that high-fiber diets, for example, present beneficial effects through the production of short-chain fatty acids. Additionally, genetically modified probiotics to secrete some beneficial molecules might also be utilized to treat chronic respiratory diseases. Further studies on microbial modulation to regulate immunity and potentiate conventional pharmacotherapy will improve microbiome modulation techniques, which will develop as a new therapeutic area in chronic respiratory diseases.
引用
收藏
页码:201 / 216
页数:16
相关论文
共 119 条
[1]   Low gut microbiota diversity in early infancy precedes asthma at school age [J].
Abrahamsson, T. R. ;
Jakobsson, H. E. ;
Andersson, A. F. ;
Bjorksten, B. ;
Engstrand, L. ;
Jenmalm, M. C. .
CLINICAL AND EXPERIMENTAL ALLERGY, 2014, 44 (06) :842-850
[2]   Diet, Microbiota and Gut-Lung Connection [J].
Anand, Swadha ;
Mande, Sharmila S. .
FRONTIERS IN MICROBIOLOGY, 2018, 9
[3]   Association between dietary fibre intake and asthma (symptoms and control): results from the French national e-cohort NutriNet-Sante [J].
Andrianasolo, Roland M. ;
Hercberg, Serge ;
Kesse-Guyot, Emmanuelle ;
Druesne-Pecollo, Nathalie ;
Touvier, Mathilde ;
Galan, Pilar ;
Varraso, Raphaelle .
BRITISH JOURNAL OF NUTRITION, 2019, 122 (09) :1040-1051
[4]   Microbes, metabolites, and the gut-lung axis [J].
Anh Thu Dang ;
Marsland, Benjamin J. .
MUCOSAL IMMUNOLOGY, 2019, 12 (04) :843-850
[5]   Early infancy microbial and metabolic alterations affect risk of childhood asthma [J].
Arrieta, Marie-Claire ;
Stiemsma, Leah T. ;
Dimitriu, Pedro A. ;
Thorson, Lisa ;
Russell, Shannon ;
Yurist-Doutsch, Sophie ;
Kuzeljevic, Boris ;
Gold, Matthew J. ;
Britton, Heidi M. ;
Lefebvre, Diana L. ;
Subbarao, Padmaja ;
Mandhane, Piush ;
Becker, Allan ;
McNagny, Kelly M. ;
Sears, Malcolm R. ;
Kollmann, Tobias ;
Mohn, William W. ;
Turvey, Stuart E. ;
Finlay, B. Brett .
SCIENCE TRANSLATIONAL MEDICINE, 2015, 7 (307)
[6]   Short Chain Fatty Acids: Fundamental mediators of the gut-lung axis and their involvement in pulmonary diseases [J].
Ashique, Sumel ;
De Rubis, Gabriele ;
Sirohi, Ekta ;
Mishra, Neeraj ;
Rihan, Mohd ;
Garg, Ashish ;
Reyes, Ruby-Jean ;
Manandhar, Bikash ;
Bhatt, Shvetank ;
Jha, Niraj Kumar ;
Singh, Thakur Gurjeet ;
Gupta, Gaurav ;
Singh, Sachin Kumar ;
Chellappan, Dinesh Kumar ;
Paudel, Keshav Raj ;
Hansbro, Philip M. ;
Oliver, Brian G. ;
Dua, Kamal .
CHEMICO-BIOLOGICAL INTERACTIONS, 2022, 368
[7]   Molecular etiology of gut malformations and diseases [J].
Barbara, PD ;
Van Den Brink, GR ;
Roberts, DJ .
AMERICAN JOURNAL OF MEDICAL GENETICS, 2002, 115 (04) :221-230
[8]   Investigation of the association between dietary intake, disease severity and airway inflammation in asthma [J].
Berthon, Bronwyn S. ;
Macdonald-Wicks, Lesley K. ;
Gibson, Peter G. ;
Wood, Lisa G. .
RESPIROLOGY, 2013, 18 (03) :447-454
[9]   Disease-associated gut microbiome and metabolome changes in patients with chronic obstructive pulmonary disease [J].
Bowerman, Kate L. ;
Rehman, Saima Firdous ;
Vaughan, Annalicia ;
Lachner, Nancy ;
Budden, Kurtis F. ;
Kim, Richard Y. ;
Wood, David L. A. ;
Gellatly, Shaan L. ;
Shukla, Shakti D. ;
Wood, Lisa G. ;
Yang, Ian A. ;
Wark, Peter A. ;
Hugenholtz, Philip ;
Hansbro, Philip M. .
NATURE COMMUNICATIONS, 2020, 11 (01)
[10]   Probiotic Bifidobacterium longum subsp. longum Protects against Cigarette Smoke-Induced Inflammation in Mice [J].
Budden, Kurtis F. ;
Gellatly, Shaan L. ;
Vaughan, Annalicia ;
Amorim, Nadia ;
Horvat, Jay C. ;
Hansbro, Nicole G. ;
Wood, David L. A. ;
Hugenholtz, Philip ;
Dennis, Paul G. ;
Wark, Peter A. B. ;
Hansbro, Philip M. .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2023, 24 (01)