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1. Distribution and viability of ocular and non-ocular Chlamydia trachomatis in households in a trachoma-endemic community in Oromia, Ethiopia.

2. Field- and laboratory-based studies on correlates of Chlamydia trachomatis transmission by Musca sorbens: Determinants of fly-eye contact and investigations into fly carriage of elementary bodies.

4. Trachoma risk factors in Oromia Region, Ethiopia

7. Prevalence of and risk factors for curable sexually transmitted infections on Bubaque Island, Guinea Bissau

8. Ongoing evolution of Chlamydia trachomatis lymphogranuloma venereum: exploring the genomic diversity of circulating strains

9. Ongoing evolution of Chlamydia trachomatis lymphogranuloma venereum : exploring the genomic diversity of circulating strains

11. Viability PCR shows that non-ocular surfaces could contribute to transmission of Chlamydia trachomatis infection in trachoma

13. Detecting extra-ocular Chlamydia trachomatis in a trachoma-endemic community in Ethiopia: Identifying potential routes of transmission

15. DEVELOPMENT OF A HUMAN URETHRAL EQUIVALENT TO STUDY CHLAMYDIA TRACHOMATIS INVASION

23. Concern regarding the alleged spread of hypervirulent lymphogranuloma venereum Chlamydia trachomatis strain in Europe

24. Concern regarding the alleged spread of hypervirulent lymphogranuloma venereum chlamydia trachomatis strain in Europe

27. Global Multilocus Sequence Type Analysis of Chlamydia trachomatis Strains from 16 Countries

31. UrogenitalChlamydia trachomatisstrain types, defined by high-resolution multilocus sequence typing, in relation to ethnicity and urogenital symptoms among a young screening population in Amsterdam, The Netherlands

33. Short Communication: Prevalence of antibodies againstCoxiella burnetii(Q fever) in children in The Gambia, West Africa

36. Global Multilocus Sequence Type Analysis of Chlamydia trachomatisStrains from 16 Countries

37. Short Communication: Prevalence of antibodies against Coxiella burnetii ( Q fever) in children in The Gambia, West Africa.

38. Additional file 9: Figure S4. of Genomic analyses of the Chlamydia trachomatis core genome show an association between chromosomal genome, plasmid type and disease

39. Additional file 10: Table S5. of Genomic analyses of the Chlamydia trachomatis core genome show an association between chromosomal genome, plasmid type and disease

40. Additional file 6: Table S6. of Genomic analyses of the Chlamydia trachomatis core genome show an association between chromosomal genome, plasmid type and disease

41. Additional file 3: Table S3. of Genomic analyses of the Chlamydia trachomatis core genome show an association between chromosomal genome, plasmid type and disease

42. Additional file 3: Table S3. of Genomic analyses of the Chlamydia trachomatis core genome show an association between chromosomal genome, plasmid type and disease

45. Additional file 10: Table S5. of Genomic analyses of the Chlamydia trachomatis core genome show an association between chromosomal genome, plasmid type and disease

47. Additional file 9: Figure S4. of Genomic analyses of the Chlamydia trachomatis core genome show an association between chromosomal genome, plasmid type and disease

50. Additional file 6: Table S6. of Genomic analyses of the Chlamydia trachomatis core genome show an association between chromosomal genome, plasmid type and disease

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