Azithramycine

Azithramycine is a lipid of Polyketides (PK) class. Azithramycine is associated with abnormalities such as Respiratory Tract Infections, Pneumonia, Lower respiratory tract infection, Infection and Nonspecific urethritis. The involved functions are known as Lysis, Selection, Genetic, Mutation, Relapse and Adaptation. Azithramycine often locates in Blood, Respiratory System, Genitourinary system, Back and Chest. The associated genes with Azithramycine are Genes, rRNA, Genome, RPL22 gene, OPRM1 gene and tryptic soy broth. The related lipids are Liposomes, Phosphatidylserines, Promega, Lipopolysaccharides and Steroids. The related experimental models are Mouse Model, Knock-out and Tissue Model.

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Introduction

To understand associated biological information of Azithramycine, we collected biological information of abnormalities, associated pathways, cellular/molecular locations, biological functions, related genes/proteins, lipids and common seen animal/experimental models with organized paragraphs from literatures.

What diseases are associated with Azithramycine?

Azithramycine is suspected in Infection, Pneumonia, Trachoma, Respiratory Tract Infections, Gonorrhea, Infectious disease of lung and other diseases in descending order of the highest number of associated sentences.

Related references are mostly published in these journals:

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Possible diseases from mapped MeSH terms on references

We collected disease MeSH terms mapped to the references associated with Azithramycine

PubChem Associated disorders and diseases

What pathways are associated with Azithramycine

There are no associated biomedical information in the current reference collection.

PubChem Biomolecular Interactions and Pathways

Link to PubChem Biomolecular Interactions and Pathways

What cellular locations are associated with Azithramycine?

Related references are published most in these journals:

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What functions are associated with Azithramycine?


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What lipids are associated with Azithramycine?

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What genes are associated with Azithramycine?

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Gene Cross reference Weighted score Related literatures

What common seen animal models are associated with Azithramycine?

Mouse Model

Mouse Model are used in the study 'Azithromycin increases in vitro fibronectin production through interactions between macrophages and fibroblasts stimulated with Pseudomonas aeruginosa.' (Cory TJ et al., 2013), Mouse Model are used in the study 'Efficacy of azithromycin, clarithromycin and beta-lactam agents against experimentally induced bronchopneumonia caused by Haemophilus influenzae in mice.' (Miyazaki S et al., 2001), Mouse Model are used in the study 'Oral anti-pneumococcal activity and pharmacokinetic profiling of a novel peptide deformylase inhibitor.' (Gross M et al., 2004), Mouse Model are used in the study 'Inhibition of quorum sensing in Pseudomonas aeruginosa by azithromycin and its effectiveness in urinary tract infections.' (Bala A et al., 2011) and Mouse Model are used in the study 'Enhanced efficacy of single-dose versus multi-dose azithromycin regimens in preclinical infection models.' (Girard D et al., 2005).

Knock-out

Knock-out are used in the study 'Influence of rhlR and lasR on Polymyxin Pharmacodynamics in Pseudomonas aeruginosa and Implications for Quorum Sensing Inhibition with Azithromycin.' (Bulman ZP et al., 2017) and Knock-out are used in the study 'Azithromycin in Pseudomonas aeruginosa biofilms: bactericidal activity and selection of nfxB mutants.' (Mulet X et al., 2009).

Tissue Model

Tissue Model are used in the study 'Development of a population pharmacokinetic model characterizing the tissue distribution of azithromycin in healthy subjects.' (Zheng S et al., 2014).

Related references are published most in these journals:

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NCBI Entrez Crosslinks

All references with Azithramycine

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Authors Title Published Journal PubMed Link
Bandyopadhyay R et al. Effectiveness of treatment regimens for Typhoid fever in the nalidixic acid-resistant S. typhi (NARST) era in South India. 2018 Trop Doct pmid:29495943
Afghani T et al. Preventing Long-Term Ocular Complications of Trachoma With Topical Azithromycin: A 3-Year Follow-up Study. 2017 Jan-Feb Asia Pac J Ophthalmol (Phila) pmid:28161923
Karhu E et al. Identification of Privileged Antichlamydial Natural Products by a Ligand-Based Strategy. 2017 J. Nat. Prod. pmid:29043803
Tuite AR et al. Impact of Rapid Susceptibility Testing and Antibiotic Selection Strategy on the Emergence and Spread of Antibiotic Resistance in Gonorrhea. 2017 J. Infect. Dis. pmid:28968710
González-Beiras C et al. Single-Dose Azithromycin for the Treatment of Haemophilus ducreyi Skin Ulcers in Papua New Guinea. 2017 Clin. Infect. Dis. pmid:29020192
Leeyaphan C et al. Treatment Outcomes for Rectal Lymphogranuloma Venereum in Men Who Have Sex with Men Using Doxycycline, Azithromycin, or Both: A Review of Clinical Cases. 2017 Sex Transm Dis pmid:28282652
Ito S et al. Haemophilus influenzae Isolated From Men With Acute Urethritis: Its Pathogenic Roles, Responses to Antimicrobial Chemotherapies, and Antimicrobial Susceptibilities. 2017 Sex Transm Dis pmid:28282645
Cluver C et al. Interventions for treating genital Chlamydia trachomatis infection in pregnancy. 2017 Cochrane Database Syst Rev pmid:28937705
Vodstrcil LA et al. Measurement of tissue azithromycin levels in self-collected vaginal swabs post treatment using liquid chromatography and tandem mass spectrometry (LC-MS/MS). 2017 PLoS ONE pmid:28498845
Schwameis M et al. Topical azithromycin for the prevention of Lyme borreliosis: a randomised, placebo-controlled, phase 3 efficacy trial. 2017 Lancet Infect Dis pmid:28007428
Houinei W et al. Haemophilus ducreyi DNA is detectable on the skin of asymptomatic children, flies and fomites in villages of Papua New Guinea. 2017 PLoS Negl Trop Dis pmid:28489855
Nenoff P et al. [Non-viral sexually transmitted infections - Epidemiology, clinical manifestations, diagnostics and therapy : Part 1: Gonococci]. 2017 Hautarzt pmid:27981386
Rutenberg D et al. Efficacy of Tulathromycin for the Treatment of Foals with Mild to Moderate Bronchopneumonia. 2017 J. Vet. Intern. Med. pmid:28421633
Wind CM et al. Decreased Azithromycin Susceptibility of Neisseria gonorrhoeae Isolates in Patients Recently Treated with Azithromycin. 2017 Clin. Infect. Dis. pmid:28510723
van Wagensveld L et al. [Persistent, therapy-resistant conjunctivitis: consider infection with Chlamydia trachomatis]. 2017 Ned Tijdschr Geneeskd pmid:28443807
Zhang Y et al. Novel Detection Strategy To Rapidly Evaluate the Efficacy of Antichlamydial Agents. 2017 Antimicrob. Agents Chemother. pmid:27855081
Waites KB et al. In Vitro Activities of Lefamulin and Other Antimicrobial Agents against Macrolide-Susceptible and Macrolide-Resistant Mycoplasma pneumoniae from the United States, Europe, and China. 2017 Antimicrob. Agents Chemother. pmid:27855075
Atkinson CT et al. Expression of acquired macrolide resistance genes in Haemophilus influenzae. 2017 J. Antimicrob. Chemother. pmid:28961896
Wind CM et al. A Case-Control Study of Molecular Epidemiology in Relation to Azithromycin Resistance in Neisseria gonorrhoeae Isolates Collected in Amsterdam, the Netherlands, between 2008 and 2015. 2017 Antimicrob. Agents Chemother. pmid:28373191
Watson JR et al. Healthcare Claims Data: An Underutilized Tool for Pediatric Outpatient Antimicrobial Stewardship. 2017 Clin. Infect. Dis. pmid:28329388