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Namale PE, Boloko L, Vermeulen M, Haigh KA, Bagula F, Maseko A, Sossen B, Lee-Jones S, Msomi Y, McIlleron H, Mnguni AT, Crede T, Szymanski P, Naude J, Ebrahim S, Vallie Y, Moosa MS, Bandeker I, Hoosain S, Nicol MP, Samodien N, Centner C, Dowling W, Denti P, Gumedze F, Little F, Parker A, Price B, Schietekat D, Simmons B, Hill A, Wilkinson RJ, Oliphant I, Hlungulu S, Apolisi I, Toleni M, Asare Z, Mpalali MK, Boshoff E, Prinsloo D, Lakay F, Bekiswa A, Jackson A, Barnes A, Johnson R, Wasserman S, Maartens G, Barr D, Schutz C, Meintjes G. Testing novel strategies for patients hospitalised with HIV-associated disseminated tuberculosis (NewStrat-TB): protocol for a randomised controlled trial. Trials 2024; 25:311. [PMID: 38720383 PMCID: PMC11077808 DOI: 10.1186/s13063-024-08119-4] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/16/2024] [Accepted: 04/16/2024] [Indexed: 05/12/2024] Open
Abstract
BACKGROUND HIV-associated tuberculosis (TB) contributes disproportionately to global tuberculosis mortality. Patients hospitalised at the time of the diagnosis of HIV-associated disseminated TB are typically severely ill and have a high mortality risk despite initiation of tuberculosis treatment. The objective of the study is to assess the safety and efficacy of both intensified TB treatment (high dose rifampicin plus levofloxacin) and immunomodulation with corticosteroids as interventions to reduce early mortality in hospitalised patients with HIV-associated disseminated TB. METHODS This is a phase III randomised controlled superiority trial, evaluating two interventions in a 2 × 2 factorial design: (1) high dose rifampicin (35 mg/kg/day) plus levofloxacin added to standard TB treatment for the first 14 days versus standard tuberculosis treatment and (2) adjunctive corticosteroids (prednisone 1.5 mg/kg/day) versus identical placebo for the first 14 days of TB treatment. The study population is HIV-positive patients diagnosed with disseminated TB (defined as being positive by at least one of the following assays: urine Alere LAM, urine Xpert MTB/RIF Ultra or blood Xpert MTB/RIF Ultra) during a hospital admission. The primary endpoint is all-cause mortality at 12 weeks comparing, first, patients receiving intensified TB treatment to standard of care and, second, patients receiving corticosteroids to those receiving placebo. Analysis of the primary endpoint will be by intention to treat. Secondary endpoints include all-cause mortality at 2 and 24 weeks. Safety and tolerability endpoints include hepatoxicity evaluations and corticosteroid-related adverse events. DISCUSSION Disseminated TB is characterised by a high mycobacterial load and patients are often critically ill at presentation, with features of sepsis, which carries a high mortality risk. Interventions that reduce this high mycobacterial load or modulate associated immune activation could potentially reduce mortality. If found to be safe and effective, the interventions being evaluated in this trial could be easily implemented in clinical practice. TRIAL REGISTRATION ClinicalTrials.gov NCT04951986. Registered on 7 July 2021 https://clinicaltrials.gov/study/NCT04951986.
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Affiliation(s)
- Phiona E Namale
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa.
- Department of Medicine, University of Cape Town, Cape Town, South Africa.
| | - Linda Boloko
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
- Department of Medicine, University of Cape Town, Cape Town, South Africa
| | - Marcia Vermeulen
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
- Department of Medicine, University of Cape Town, Cape Town, South Africa
| | - Kate A Haigh
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
- Institute of Infection, Veterinary and Ecological Sciences, University of Liverpool, Liverpool, UK
| | - Fortuna Bagula
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
- Department of Medicine, University of Cape Town, Cape Town, South Africa
| | - Alexis Maseko
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
- Department of Medicine, University of Cape Town, Cape Town, South Africa
| | - Bianca Sossen
- Department of Medicine, University of Cape Town, Cape Town, South Africa
| | - Scott Lee-Jones
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
- Department of Medicine, University of Cape Town, Cape Town, South Africa
| | - Yoliswa Msomi
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
- Department of Medicine, University of Cape Town, Cape Town, South Africa
| | - Helen McIlleron
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
- Division of Clinical Pharmacology, Department of Medicine, University of Cape Town, Cape Town, South Africa
| | - Ayanda Trevor Mnguni
- Department of Medicine, Khayelitsha Hospital, Cape Town, South Africa
- Department of Medicine, Stellenbosch University, Stellenbosch, South Africa
| | - Thomas Crede
- Department of Medicine, University of Cape Town, Cape Town, South Africa
- Department of Medicine, Mitchells Plain Hospital, Cape Town, South Africa
| | - Patryk Szymanski
- Department of Medicine, University of Cape Town, Cape Town, South Africa
- Department of Medicine, Mitchells Plain Hospital, Cape Town, South Africa
| | - Jonathan Naude
- Department of Medicine, University of Cape Town, Cape Town, South Africa
- Department of Medicine, Mitchells Plain Hospital, Cape Town, South Africa
| | - Sakeena Ebrahim
- Department of Medicine, University of Cape Town, Cape Town, South Africa
- Department of Medicine, Mitchells Plain Hospital, Cape Town, South Africa
| | - Yakoob Vallie
- Department of Medicine, New Somerset Hospital, Cape Town, South Africa
| | | | - Ismail Bandeker
- Department of Medicine, New Somerset Hospital, Cape Town, South Africa
| | - Shakeel Hoosain
- Department of Medicine, New Somerset Hospital, Cape Town, South Africa
| | - Mark P Nicol
- Division of Medical Microbiology, Department of Pathology, University of Cape Town, Cape Town, South Africa
- Division of Infection and Immunity School of Biomedical Sciences, University of Western Australia, Perth, Australia
| | - Nazlee Samodien
- Division of Medical Microbiology, Department of Pathology, University of Cape Town, Cape Town, South Africa
| | - Chad Centner
- Division of Medical Microbiology, Department of Pathology, University of Cape Town, Cape Town, South Africa
| | - Wentzel Dowling
- Division of Medical Microbiology, Department of Pathology, University of Cape Town, Cape Town, South Africa
| | - Paolo Denti
- Division of Clinical Pharmacology, Department of Medicine, University of Cape Town, Cape Town, South Africa
| | - Freedom Gumedze
- Department of Statistical Sciences, University of Cape Town, Cape Town, South Africa
| | - Francesca Little
- Department of Statistical Sciences, University of Cape Town, Cape Town, South Africa
| | - Arifa Parker
- Department of Medicine, Stellenbosch University, Stellenbosch, South Africa
| | - Brendon Price
- Division of Anatomical Pathology, Department of Pathology, University of Cape Town, Cape Town, South Africa
| | - Denzil Schietekat
- Department of Medicine, Khayelitsha Hospital, Cape Town, South Africa
- Department of Medicine, Stellenbosch University, Stellenbosch, South Africa
| | - Bryony Simmons
- LSE Health, London School of Economics and Political Science, London, UK
| | - Andrew Hill
- LSE Health, London School of Economics and Political Science, London, UK
| | - Robert J Wilkinson
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
- Department of Medicine, University of Cape Town, Cape Town, South Africa
- Francis Crick Institute, London, UK
- Department of Medicine, Imperial College London, London, UK
| | - Ida Oliphant
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
| | - Siphokazi Hlungulu
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
| | - Ivy Apolisi
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
| | - Monica Toleni
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
| | - Zimkhitha Asare
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
| | - Mkanyiseli Kenneth Mpalali
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
| | - Erica Boshoff
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
| | - Denise Prinsloo
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
| | - Francisco Lakay
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
| | - Abulele Bekiswa
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
| | - Amanda Jackson
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
| | - Ashleigh Barnes
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
| | - Ryan Johnson
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
| | - Sean Wasserman
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
- Department of Medicine, University of Cape Town, Cape Town, South Africa
| | - Gary Maartens
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
- Division of Clinical Pharmacology, Department of Medicine, University of Cape Town, Cape Town, South Africa
| | - David Barr
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
| | - Charlotte Schutz
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
- Department of Medicine, University of Cape Town, Cape Town, South Africa
| | - Graeme Meintjes
- Wellcome Centre for Infectious Diseases Research in Africa (CIDRI-Africa), Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Cape Town, South Africa
- Department of Medicine, University of Cape Town, Cape Town, South Africa
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2
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Atkinson A, Zwahlen M, Barger D, d’Arminio Monforte A, De Wit S, Ghosn J, Girardi E, Svedhem V, Morlat P, Mussini C, Noguera-Julian A, Stephan C, Touloumi G, Kirk O, Mocroft A, Reiss P, Miro JM, Carpenter JR, Furrer H. Withholding Primary Pneumocystis Pneumonia Prophylaxis in Virologically Suppressed Patients With Human Immunodeficiency Virus: An Emulation of a Pragmatic Trial in COHERE. Clin Infect Dis 2021; 73:195-202. [PMID: 32448894 PMCID: PMC8516510 DOI: 10.1093/cid/ciaa615] [Citation(s) in RCA: 8] [Impact Index Per Article: 2.7] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/09/2020] [Accepted: 05/19/2020] [Indexed: 01/06/2023] Open
Abstract
BACKGROUND Using data from the COHERE collaboration, we investigated whether primary prophylaxis for pneumocystis pneumonia (PcP) might be withheld in all patients on antiretroviral therapy (ART) with suppressed plasma human immunodeficiency virus (HIV) RNA (≤400 copies/mL), irrespective of CD4 count. METHODS We implemented an established causal inference approach whereby observational data are used to emulate a randomized trial. Patients taking PcP prophylaxis were eligible for the emulated trial if their CD4 count was ≤200 cells/µL in line with existing recommendations. We compared the following 2 strategies for stopping prophylaxis: (1) when CD4 count was >200 cells/µL for >3 months or (2) when the patient was virologically suppressed (2 consecutive HIV RNA ≤400 copies/mL). Patients were artificially censored if they did not comply with these stopping rules. We estimated the risk of primary PcP in patients on ART, using the hazard ratio (HR) to compare the stopping strategies by fitting a pooled logistic model, including inverse probability weights to adjust for the selection bias introduced by the artificial censoring. RESULTS A total of 4813 patients (10 324 person-years) complied with eligibility conditions for the emulated trial. With primary PcP diagnosis as an endpoint, the adjusted HR (aHR) indicated a slightly lower, but not statistically significant, different risk for the strategy based on viral suppression alone compared with the existing guidelines (aHR, .8; 95% confidence interval, .6-1.1; P = .2). CONCLUSIONS This study suggests that primary PcP prophylaxis might be safely withheld in confirmed virologically suppressed patients on ART, regardless of their CD4 count.
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Affiliation(s)
- Andrew Atkinson
- Department of Infectious Diseases, Bern University Hospital, Inselspital, University of Bern, Bern, Switzerland
- Department of Medical Statistics, London School of Hygiene and Tropical Medicine, London, United Kingdom
| | - Marcel Zwahlen
- Institute of Social and Preventive Medicine, University of Bern, Bern, Switzerland
| | - Diana Barger
- University of Bordeaux, ISPED, Inserm Bordeaux Population Health, Team MORPH3EUS, UMR 1219, Bordeaux, France
| | | | - Stephane De Wit
- Department of Infectious Diseases, Saint Pierre University Hospital, Université Libre de Bruxelles, Brussels, Belgium
| | - Jade Ghosn
- APHP, Nord-Université de Paris, Service des Maladies Infectieuses et Tropicales, Hôpital Bichat, Paris, France
- INSERM UMR 1137 IAME, Université de Paris, Faculté de Médecine, Paris, France
| | - Enrico Girardi
- Clinical Epidemiology Unit, National Institute for Infectious Diseases L. Spallanzani–IRCCS, Rome, Italy
| | - Veronica Svedhem
- Department of Infectious Diseases, Karolinska University Hospital, Stockholm, Sweden
- Unit of Infectious Diseases, Department of Medicine, Karolinska Institute, Stockholm, Sweden
| | - Philippe Morlat
- University of Bordeaux, ISPED, Inserm Bordeaux Population Health, Team MORPH3EUS, UMR 1219, Bordeaux, France
- Centre Hospitalier Universitaire de Bordeaux (CHU), Services de Médecine Interne et Maladies Infectieuses, Bordeaux, France
| | - Cristina Mussini
- Clinic of Infectious Diseases, University of Modena and Reggio Emilia, Modena, Italy
| | - Antoni Noguera-Julian
- Malalties Infeccioses i Resposta Inflamatòria Sistèmica en Pediatria, Unitat d´Infeccions, Servei de Pediatria, Institut de Recerca Pediàtrica Hospital Sant Joan de Déu, Barcelona, Spain
- Departament de Pediatria, Universitat de Barcelona, Barcelona, Spain
- CIBER de Epidemiología y Salud Pública, CIBERESP, Madrid, Spain
- Red de Investigación Translacional en Infectología Pediátrica, RITIP, Madrid, Spain
| | - Christoph Stephan
- Infectious Diseases Unit at Medical Center No. 2, Frankfurt University Hospital, Goethe University, Frankfurt, Germany
| | - Giota Touloumi
- Department of Hygiene, Epidemiology, and Medical Statistics, Medical School, National and Kapodistrian University of Athens, Athens, Greece
| | - Ole Kirk
- CHIP, Department of Infectious Diseases, Rigshospitalet, University of Copenhagen, Denmark
| | - Amanda Mocroft
- Centre for Clinical Research, Epidemiology, Modelling, and Evaluation (CREME), Institute for Global Health, University College London, London, United Kingdom
| | - Peter Reiss
- HIV Monitoring Foundation, Amsterdam, The Netherlands
- Department of Global Health, Amsterdam University Medical Centers, University of Amsterdam and Amsterdam Institute for Global Health and Development, Amsterdam, The Netherlands
| | - Jose M Miro
- Infectious Diseases Service, Hospital Clinic–IDIBAPS, University of Barcelona, Barcelona, Spain
| | - James R Carpenter
- Department of Medical Statistics, London School of Hygiene and Tropical Medicine, London, United Kingdom
- MRC Clinical Trials Unit, University College London, London, United Kingdom
| | - Hansjakob Furrer
- Department of Infectious Diseases, Bern University Hospital, Inselspital, University of Bern, Bern, Switzerland
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3
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Atkinson A, Miro JM, Mocroft A, Reiss P, Kirk O, Morlat P, Ghosn J, Stephan C, Mussini C, Antoniadou A, Doerholt K, Girardi E, De Wit S, Kraus D, Zwahlen M, Furrer H. No need for secondary Pneumocystis jirovecii pneumonia prophylaxis in adult people living with HIV from Europe on ART with suppressed viraemia and a CD4 cell count greater than 100 cells/µL. J Int AIDS Soc 2021; 24:e25726. [PMID: 34118121 PMCID: PMC8196713 DOI: 10.1002/jia2.25726] [Citation(s) in RCA: 6] [Impact Index Per Article: 2.0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/16/2020] [Revised: 03/31/2021] [Accepted: 04/15/2021] [Indexed: 12/16/2022] Open
Abstract
INTRODUCTION Since the beginning of the HIV epidemic in resource-rich countries, Pneumocystis jirovecii pneumonia (PjP) is one of the most frequent opportunistic AIDS-defining infections. The Collaboration of Observational HIV Epidemiological Research Europe (COHERE) has shown that primary Pneumocystis jirovecii Pneumonia (PjP) prophylaxis can be safely withdrawn in patients with CD4 counts of 100 to 200 cells/µL if plasma HIV-RNA is suppressed on combination antiretroviral therapy. Whether this holds true for secondary prophylaxis is not known, and this has proved difficult to determine due to the much lower population at risk. METHODS We estimated the incidence of secondary PjP by including patient data collected from 1998 to 2015 from the COHERE cohort collaboration according to time-updated CD4 counts, HIV-RNA and use of PjP prophylaxis in persons >16 years of age. We fitted a Poisson generalized additive model in which the smoothed effect of CD4 was modelled by a restricted cubic spline, and HIV-RNA was stratified as low (<400), medium (400 to 10,000) or high (>10,000copies/mL). RESULTS There were 373 recurrences of PjP during 74,295 person-years (py) in 10,476 patients. The PjP incidence in the different plasma HIV-RNA strata differed significantly and was lowest in the low stratum. For patients off prophylaxis with CD4 counts between 100 and 200 cells/µL and HIV-RNA below 400 copies/mL, the incidence of recurrent PjP was 3.9 (95% CI: 2.0 to 5.8) per 1000 py, not significantly different from patients on prophylaxis in the same stratum (1.9, 95% CI: 0.1 to 3.7). CONCLUSIONS HIV viraemia importantly affects the risk of recurrent PjP. In virologically suppressed patients on ART with CD4 counts of 100 to 200/µL, the incidence of PjP off prophylaxis is below 10/1000 py. Secondary PjP prophylaxis may be safely withheld in such patients. While European guidelines recommend discontinuing secondary PjP prophylaxis only if CD4 counts rise above 200 cells/mL, the latest US Guidelines consider secondary prophylaxis discontinuation even in patients with a CD4 count above 100 cells/µL and suppressed viral load. Our results strengthen and support this US recommendation.
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Affiliation(s)
- Andrew Atkinson
- Department of Infectious Diseases, Bern University Hospital, Inselspital, University of Bern, Bern, Switzerland
| | - Jose M Miro
- Infectious Diseases Service, Hospital Clinic - IDIBAPS, University of Barcelona, Barcelona, Spain
| | - Amanda Mocroft
- Centre for Clinical Research, Epidemiology, Modelling and Evaluation (CREME), Institute for Global Health, UCL, London, UK
| | - Peter Reiss
- Department of Global Health, Amsterdam University Medical Centers, University of Amsterdam, Amsterdam, The Netherlands.,Amsterdam Institute for Global Health and Development, and HIV Monitoring Foundation, Amsterdam, The Netherlands
| | - Ole Kirk
- CHIP, Department of Infectious Diseases, Rigshospitalet, University of Copenhagen, Copenhagen, Denmark
| | - Philippe Morlat
- Internal Medicine and Infectious Diseases Department, University Hospital of Bordeaux, Bordeaux, France
| | - Jade Ghosn
- Service des Maladies Infectieuses et Tropicales, Groupe Hospitalier Universitaire Bichat-Claude Bernard, Paris, France.,INSERM U 1137 IAME, Université de Paris, Paris, France
| | - Christoph Stephan
- Infectious Diseases Unit at Medical Center no.2, Frankfurt University Hospital, Goethe University, Frankfurt, Germany
| | - Cristina Mussini
- Clinic of Infectious Diseases, University of Modena and Reggio Emilia, Modena, Italy
| | - Anastasia Antoniadou
- Fourth Department of Internal Medicine, ATTIKON University Hospital, National and Kapodistrian University of Athens, Athens, Greece
| | - Katja Doerholt
- Paediatric Infectious Diseases Unit, St. George's University Hospital, London, UK
| | - Enrico Girardi
- Clinical Epidemiology Unit, National Institute for Infectious Diseases L. Spallanzani-IRCCS, Rome, Italy
| | - Stéphane De Wit
- Department of Infectious Diseases, St Pierre University Hospital, Université Libre de Bruxelles, Brussels, Belgium
| | - David Kraus
- Department of Infectious Diseases, Bern University Hospital, Inselspital, University of Bern, Bern, Switzerland.,Department of Mathematics and Statistics, Masaryk University, Brno, Czech Republic
| | - Marcel Zwahlen
- Institute of Social and Preventive Medicine, University of Bern, Bern, Switzerland
| | - Hansjakob Furrer
- Department of Infectious Diseases, Bern University Hospital, Inselspital, University of Bern, Bern, Switzerland
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Eriksen J, Carlander C, Albert J, Flamholc L, Gisslén M, Navér L, Svedhem V, Yilmaz A, Sönnerborg A. Antiretroviral treatment for HIV infection: Swedish recommendations 2019. Infect Dis (Lond) 2020; 52:295-329. [PMID: 31928282 DOI: 10.1080/23744235.2019.1707867] [Citation(s) in RCA: 8] [Impact Index Per Article: 2.0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Indexed: 12/14/2022] Open
Abstract
The Swedish Reference Group for Antiviral Therapy (RAV) published recommendations for the treatment of HIV infection in this journal most recently in 2017. An expert group under the guidance of RAV here provides updated recommendations. The most important updates in the present guidelines are the following: (a) The risk of HIV transmission through condomless sex from individuals with fully suppressed HIV viral load is effectively zero. (b) Pre-exposure prophylaxis (PrEP) is recommended for groups with a high risk of HIV infection. (c) Since the last update, two new substances have been registered: bictegravir and doravirine. (d) Dual treatment may be an alternative in selected patients, using lamivudine + dolutegravir or lamivudine + boosted darunavir/atazanavir. As with previous publications, recommendations are evidence-graded in accordance with the Oxford Centre for Evidence Based Medicine. This document does not cover treatment of opportunistic infections and tumours.
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Affiliation(s)
- Jaran Eriksen
- Unit of Infectious Diseases/Venhälsan, Södersjukhuset, Stockholm, Sweden.,Division of Clinical Pharmacology, Department of Laboratory Medicine, Karolinska Institutet, Stockholm, Sweden
| | - Christina Carlander
- Department of Infectious Diseases, Västmanland County Hospital, Västerås, Sweden.,Division of Infectious Diseases, Department of Medicine Huddinge, Karolinska Institutet, Stockholm, Sweden
| | - Jan Albert
- Department of Microbiology, Tumor and Cell Biology, Karolinska Institutet, Stockholm, Sweden.,Department of Clinical Microbiology, Karolinska University Hospital, Stockholm, Sweden
| | - Leo Flamholc
- Department of Infectious Diseases, Skåne University Hospital, Malmö, Sweden
| | - Magnus Gisslén
- Department of Infectious Diseases, Sahlgrenska Academy, University of Gothenburg, Gothenburg, Sweden.,Department of Infectious Diseases, Region Västra Götaland, Sahlgrenska University Hospital, Gothenburg, Sweden
| | - Lars Navér
- Division of Paediatrics, Department of Clinical Science, Intervention and Technology (CLINTEC), Karolinska Institutet, Stockholm, Sweden.,Department of Paediatrics, Karolinska University Hospital, Stockholm, Sweden
| | - Veronica Svedhem
- Division of Infectious Diseases, Department of Medicine Huddinge, Karolinska Institutet, Stockholm, Sweden.,Department of Infectious Diseases, Karolinska University Hospital, Stockholm, Sweden
| | - Aylin Yilmaz
- Department of Infectious Diseases, Sahlgrenska Academy, University of Gothenburg, Gothenburg, Sweden
| | - Anders Sönnerborg
- Division of Infectious Diseases, Department of Medicine Huddinge, Karolinska Institutet, Stockholm, Sweden.,Department of Clinical Microbiology, Karolinska University Hospital, Stockholm, Sweden.,Department of Infectious Diseases, Karolinska University Hospital, Stockholm, Sweden.,Division of Clinical Microbiology, Department of Laboratory Medicine, Karolinska Institutet, Stockholm, Sweden
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5
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Anyimadu H, Pingili C, Sivapalan V, Hirsch-Moverman Y, Mannheimer S. The Impact of Absolute CD4 Count and Percentage Discordance on Pneumocystis Jirovecii Pneumonia Prophylaxis in HIV-Infected Patients. J Int Assoc Provid AIDS Care 2019. [PMID: 29534652 PMCID: PMC6748489 DOI: 10.1177/2325958218759199] [Citation(s) in RCA: 7] [Impact Index Per Article: 1.4] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/16/2022] Open
Abstract
Current guidelines suggest that HIV-infected patients should receive chemoprophylaxis against Pneumocystis jirovecii pneumonia (PJP) if they have a cluster determinant 4 (CD4) count <200 cells/mm3 or oropharyngeal candidiasis. Persons with CD4 percentage (CD4%) below 14% should also be considered for prophylaxis. Discordance between CD4 count and CD4% occurs in 16% to 25% of HIV-infected patients. Provider compliance with current PJP prophylaxis guidelines when such discordance is present was assessed. Electronic medical records of 429 HIV-infected individuals who had CD4 count and CD4% measured at our clinic were reviewed. CD4 count and percentage discordance was seen in 57 (13%) of 429. Patients with CD4 count >200 but CD4% <14 were significantly less likely to be prescribed PJP prophylaxis compared with those who had CD4 count <200 and CD4% >14 (29% versus 86%; odds ratio = 0.064, 95% confidence interval: 0.0168-0.2436; P < .0001). We emphasize monitoring both the absolute CD4 count and percentage to appropriately guide PJP primary and secondary prophylaxis.
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Affiliation(s)
| | - Chandra Pingili
- 2 Columbia University Affiliated with Harlem Hospital Center, New York, NY, USA
| | - Vel Sivapalan
- 2 Columbia University Affiliated with Harlem Hospital Center, New York, NY, USA
| | | | - Sharon Mannheimer
- 2 Columbia University Affiliated with Harlem Hospital Center, New York, NY, USA
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6
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Braga BP, Prieto-González S, Hernández-Rodríguez J. Pneumocystis jirovecii pneumonia prophylaxis in immunocompromised patients with systemic autoimmune diseases. Med Clin (Barc) 2019; 152:502-507. [PMID: 30853123 DOI: 10.1016/j.medcli.2019.01.010] [Citation(s) in RCA: 10] [Impact Index Per Article: 2.0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/11/2018] [Revised: 01/16/2019] [Accepted: 01/20/2019] [Indexed: 02/07/2023]
Abstract
Pneumocystis jirovecii (P. jirovecii) causes a potentially fatal pneumonia in immunocompromised individuals (Pneumocystis pneumonia or PcP), particularly in HIV-infected patients and those treated with immunosuppressive drugs, such as transplant patients and those with systemic autoimmune diseases. P. jirovecii colonization can be found in almost a third of patients with systemic autoimmune diseases. Although the incidence of PcP in such patients is usually low, mortality is quite high, ranging between 30% and 50% in the majority of autoimmune diseases. PcP development is almost always observed in patients not receiving prophylaxis for the infection. Despite the above, there are no clinical guidelines established for PcP prophylaxis in patients with autoimmune diseases treated with glucocorticoids, cytotoxic drugs, or more recently, biological agents. The objective of this review is to analyze the available data on the incidence of PcP and the effect of PcP prophylaxis in patients with autoimmune diseases that may be useful in clinical practice.
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Affiliation(s)
- Beatriz P Braga
- Department of Internal Medicine, Hospital do Divino Espírito Santo de Ponta Delgada, São Miguel, Portugal
| | - Sergio Prieto-González
- Vasculitis Research Unit, Department of Autoimmune Diseases, Hospital Clínic, University of Barcelona, Institut d'Investigacions Biomèdiques August Pi I Sunyer (IDIBAPS), Barcelona, Spain
| | - José Hernández-Rodríguez
- Vasculitis Research Unit, Department of Autoimmune Diseases, Hospital Clínic, University of Barcelona, Institut d'Investigacions Biomèdiques August Pi I Sunyer (IDIBAPS), Barcelona, Spain.
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Huang YS, Yang JJ, Lee NY, Chen GJ, Ko WC, Sun HY, Hung CC. Treatment of Pneumocystis jirovecii pneumonia in HIV-infected patients: a review. Expert Rev Anti Infect Ther 2017; 15:873-892. [PMID: 28782390 DOI: 10.1080/14787210.2017.1364991] [Citation(s) in RCA: 29] [Impact Index Per Article: 4.1] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/19/2022]
Abstract
INTRODUCTION Pneumocystis pneumonia is a potentially life-threatening pulmonary infection that occurs in immunocompromised individuals and HIV-infected patients with a low CD4 cell count. Trimethoprim-sulfamethoxazole has been used as the first-line agent for treatment, but mutations within dihydropteroate synthase gene render potential resistance to sulfamide. Despite advances of combination antiretroviral therapy (cART), Pneumocystis pneumonia continues to occur in HIV-infected patients with late presentation for cART or virological and immunological failure after receiving cART. Areas covered: This review summarizes the diagnosis and first-line and alternative treatment and prophylaxis for Pneumocystis pneumonia in HIV-infected patients. Articles for this review were identified through searching PubMed. Search terms included: 'Pneumocystis pneumonia', 'Pneumocystis jirovecii pneumonia', 'Pneumocystis carinii pneumonia', 'trimethoprim-sulfamethoxazole', 'primaquine', 'trimetrexate', 'dapsone', 'pentamidine', 'atovaquone', 'echinocandins', 'human immunodeficiency virus infection', 'acquired immunodeficiency syndrome', 'resistance to sulfamide' and combinations of these terms. We limited the search to English language papers that were published between 1981 and March 2017. We screened all identified articles and cross-referenced studies from retrieved articles. Expert commentary: Trimethoprim-sulfamethoxazole will continue to be the first-line agent for Pneumocystis pneumonia given its cost, availability of both oral and parenteral formulations, and effectiveness or efficacy in both treatment and prophylaxis. Whether resistance due to mutations within dihydropteroate synthase gene compromises treatment effectiveness remains controversial. Continued search for effective alternatives with better safety profiles for Pneumocystis pneumonia is warranted.
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Affiliation(s)
- Yu-Shan Huang
- a Department of Internal Medicine , National Taiwan University Hospital Hsin-Chu Branch , Hsin-Chu , Taiwan
| | - Jen-Jia Yang
- b Department of Internal Medicine , Po Jen General Hospital , Taipei , Taiwan
| | - Nan-Yao Lee
- c Department of Internal Medicine , National Cheng Kung University Hospital , Tainan , Taiwan.,d Department of Medicine , College of Medicine, National Cheng Kung University , Tainan , Taiwan
| | - Guan-Jhou Chen
- e Department of Internal Medicine , National Taiwan University Hospital and National Taiwan University College of Medicine , Taipei , Taiwan
| | - Wen-Chien Ko
- c Department of Internal Medicine , National Cheng Kung University Hospital , Tainan , Taiwan.,d Department of Medicine , College of Medicine, National Cheng Kung University , Tainan , Taiwan
| | - Hsin-Yun Sun
- e Department of Internal Medicine , National Taiwan University Hospital and National Taiwan University College of Medicine , Taipei , Taiwan
| | - Chien-Ching Hung
- e Department of Internal Medicine , National Taiwan University Hospital and National Taiwan University College of Medicine , Taipei , Taiwan.,f Department of Parasitology , National Taiwan University College of Medicine , Taipei , Taiwan.,g Department of Medical Research , China Medical University Hospital , Taichung , Taiwan.,h China Medical University , Taichung , Taiwan
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8
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Jung Y, Song KH, Choe PG, Park WB, Bang JH, Kim ES, Kim HB, Park SW, Kim NJ, Oh MD. Incidence of disseminated Mycobacterium avium-complex infection in HIV patients receiving antiretroviral therapy with use of Mycobacterium avium-complex prophylaxis. Int J STD AIDS 2017; 28:1426-1432. [PMID: 28592210 DOI: 10.1177/0956462417713432] [Citation(s) in RCA: 4] [Impact Index Per Article: 0.6] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/16/2022]
Abstract
The incidence of disseminated Mycobacterium avium complex (MAC) infection in HIV patients has fallen markedly since the introduction of effective antiretroviral therapy (ART). However, current guidelines still recommend primary prophylaxis. We conducted a retrospective cohort study in a university-affiliated hospital from January 1998 to January 2014. During that period, HIV patients who had at least one CD4 cell count below 50 cells/mm3 and had been treated with ART were enrolled. We compared incidence of disseminated MAC infection in the 12 months after the first CD4 cell count below 50 cells/mm3 between prophylaxis and nonprophylaxis groups. A total of 157 patients were enrolled and the total observation period was 144 patient-years (PY). Thirty-three patients (21%) received primary MAC prophylaxis. The initial CD4 cell count of the prophylaxis group was lower than that of the nonprophylaxis group ( P = 0.024), but the proportion of patients who reached a CD4 cell count >100 cells/mm3 ( P = 0.234) and were virologically suppressed ( P = 0.513) 12 months after ART commencement was not different in the prophylaxis and nonprophylaxis groups. The incidence of MAC did not differ significantly between the groups (3.4/100 PY versus 0.8/100 PY, P = 0.368). Routine MAC prophylaxis may be not required in the era of effective ART.
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Affiliation(s)
- Younghee Jung
- 1 Department of Internal Medicine, Seoul National University College of Medicine, Seoul, Korea.,2 Department of Internal Medicine, Hallym University Sacred Heart Hospital, Anyang, South Korea
| | - Kyoung-Ho Song
- 1 Department of Internal Medicine, Seoul National University College of Medicine, Seoul, Korea
| | - Pyoeng Gyun Choe
- 1 Department of Internal Medicine, Seoul National University College of Medicine, Seoul, Korea
| | - Wan Beom Park
- 1 Department of Internal Medicine, Seoul National University College of Medicine, Seoul, Korea
| | - Ji Hwan Bang
- 1 Department of Internal Medicine, Seoul National University College of Medicine, Seoul, Korea
| | - Eu Suk Kim
- 1 Department of Internal Medicine, Seoul National University College of Medicine, Seoul, Korea
| | - Hong Bin Kim
- 1 Department of Internal Medicine, Seoul National University College of Medicine, Seoul, Korea
| | - Sang Won Park
- 1 Department of Internal Medicine, Seoul National University College of Medicine, Seoul, Korea
| | - Nam Joong Kim
- 1 Department of Internal Medicine, Seoul National University College of Medicine, Seoul, Korea
| | - Myoung-Don Oh
- 1 Department of Internal Medicine, Seoul National University College of Medicine, Seoul, Korea
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Kaur R, Panda PS, Dewan R. Profile of pneumocystis infection in a tertiary care institute in North India. Indian J Sex Transm Dis AIDS 2016; 37:143-146. [PMID: 27890947 DOI: 10.4103/0253-7184.185501] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/04/2022] Open
Abstract
CONTEXT Pneumocystis jirovecii pneumonia (PcP) is still remains a common opportunistic disease in human immunodeficiency virus (HIV) infected individuals. Study on PcP in developing countries are scarce. AIMS To study the occurrence of P. jirovecii infection in clinically suspected individuals in a tertiary care institute. SETTINGS AND DESIGN Retrospective study conducted in a tertiary care hospital. MATERIALS AND METHODS Two years data regarding respiratory sample analysis, HIV status, and cluster of differentiation 4 (CD4) cell count of clinically suspected pneumocystis infection patients with known/unknown HIV status were analyzed. RESULTS Data of 45 eligible patients were analyzed. The majority of the patients were male (between 21 and 50 years of age). Total 26 (57.7%) patients were HIV reactive, of which 14 had CD4 count of <200 cells/mm3. 20 patients (9 HIV reactive and 11 unknown HIV status) were confirmed with pneumocystosis by direct fluorescent antibody (DFA) staining. Four of 14 HIV reactive individuals who had CD4 count of <200 cells/mm3 and 5 of 12 HIV reactive individuals who had CD4 count of >200 cells/mm3 were positive for pneumocystosis. CONCLUSIONS Pneumocystis pneumonia is still prevalent in North India and is mainly affecting patients in economically productive and sexually active age group. To diagnose pneumocystosis, DFA is an easily available method in resource-limited settings. Appreciating the actual HIV or immunodeficiency status and the CD4 profile of an individual with symptoms of pneumocystis infection will help the clinicians in early diagnosis and initiation appropriate therapy in individuals living with the disease.
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Affiliation(s)
- Ravinder Kaur
- Department of Microbiology, Maulana Azad Medical College and Associated Hospitals, New Delhi, India
| | - Pragyan Swagatika Panda
- Department of Microbiology, Maulana Azad Medical College and Associated Hospitals, New Delhi, India
| | - Richa Dewan
- Department of Medicine, Maulana Azad Medical College and Associated Hospitals, New Delhi, India
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10
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Bender Ignacio RA, Ramchandani MS, Laing KJ, Johnston CM, Koelle DM. T Cell Immunity to Varicella-Zoster Virus in the Setting of Advanced HIV and Multiple Varicella-Zoster Virus Recurrences. Viral Immunol 2016; 30:77-80. [PMID: 27870601 DOI: 10.1089/vim.2016.0097] [Citation(s) in RCA: 7] [Impact Index Per Article: 0.9] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/30/2022] Open
Abstract
A woman presented with at least four manifestations of varicella-zoster virus (VZV) infection, including central nervous system vasculitis, during her first 2 years of HIV infection. We evaluated her CD4 T cell responses to VZV given the infrequency with which multiple recurrences of VZV occurred, especially following immune reconstitution on antiretroviral therapy.
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Affiliation(s)
- Rachel A Bender Ignacio
- 1 Division of Allergy and Infectious Diseases, Department of Medicine, University of Washington , Seattle, Washington.,2 Vaccine and Infectious Disease Division, Fred Hutchinson Cancer Research Center , Seattle, Washington
| | - Meena S Ramchandani
- 1 Division of Allergy and Infectious Diseases, Department of Medicine, University of Washington , Seattle, Washington
| | - Kerry J Laing
- 1 Division of Allergy and Infectious Diseases, Department of Medicine, University of Washington , Seattle, Washington
| | - Christine M Johnston
- 1 Division of Allergy and Infectious Diseases, Department of Medicine, University of Washington , Seattle, Washington.,2 Vaccine and Infectious Disease Division, Fred Hutchinson Cancer Research Center , Seattle, Washington
| | - David M Koelle
- 1 Division of Allergy and Infectious Diseases, Department of Medicine, University of Washington , Seattle, Washington.,2 Vaccine and Infectious Disease Division, Fred Hutchinson Cancer Research Center , Seattle, Washington.,3 Benaroya Research Institute , Seattle, Washington
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11
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Eriksen J, Albert J, Blaxhult A, Carlander C, Flamholc L, Gisslén M, Josephson F, Karlström O, Navér L, Svedhem V, Yilmaz A, Sönnerborg A. Antiretroviral treatment for HIV infection: Swedish recommendations 2016. Infect Dis (Lond) 2016; 49:1-34. [PMID: 27804313 DOI: 10.1080/23744235.2016.1247495] [Citation(s) in RCA: 22] [Impact Index Per Article: 2.8] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Indexed: 10/20/2022] Open
Abstract
The Swedish Medical Products Agency and the Swedish Reference Group for Antiviral Therapy (RAV) have jointly published recommendations for the treatment of HIV infection on seven previous occasions (2002, 2003, 2005, 2007, 2009, 2011 and 2014). In February 2016, an expert group under the guidance of RAV once more revised the guidelines. The most important updates in the present guidelines are as follows: Tenofovir alafenamide (TAF) has recently been registered. TAF has several advantages over tenofovir disoproxilfumarate (TDF) and is recommended instead of TDF in most cases. First-line treatment for previously untreated individuals includes dolutegravir, boosted darunavir or efavirenz with either abacavir/lamivudine or tenofovir (TDF/TAF)/emtricitabine. Pre-exposure prophylaxis (PrEP) is recommended for high-risk individuals. As in the case of the previous publication, recommendations are evidence-graded in accordance with the Oxford Centre for Evidence Based Medicine ( http://www.cebm.net/oxford-centre-evidence-based-medicine-levels-evidence-march-2009/ ) ( Table 1 ). This document does not cover treatment of opportunistic infections and tumours. [Table: see text].
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Affiliation(s)
- Jaran Eriksen
- a Department of Clinical Pharmacology , Karolinska University Hospital and Division of Clinical Pharmacology and Department of Laboratory Medicine, Karolinska Institutet , Stockholm , Sweden
| | - Jan Albert
- b Department of Microbiology, Tumor and Cell Biology , Karolinska Institutet and Department of Clinical Microbiology, Karolinska University Hospital , Stockholm , Sweden
| | - Anders Blaxhult
- c Venhälsan, Södersjukhuset and The Swedish Agency for Public Health , Stockholm , Sweden
| | - Christina Carlander
- d Clinic of Infectious Diseases , Västmanland County Hospital , Västerås , Sweden
| | - Leo Flamholc
- e Department of Infectious Diseases , Skåne University Hospital , Malmö , Sweden
| | - Magnus Gisslén
- f Department of Infectious Diseases , Sahlgrenska Academy, University of Gothenburg , Sweden
| | | | - Olof Karlström
- h The Swedish Medical Products Agency, Uppsala and Department of Infectious Diseases , Karolinska University Hospital , Stockholm , Sweden
| | - Lars Navér
- i Division of Pediatrics, Department of Clinical Science, Intervention and Technology (CLINTEC), Karolinska Institutet and Department of Pediatrics , Karolinska University Hospital , Stockholm , Sweden
| | - Veronica Svedhem
- j Department of Infectious Diseases , Karolinska University Hospital and Division of Infectious Diseases and Department of Medicine Huddinge, Karolinska Institutet , Stockholm , Sweden
| | - Aylin Yilmaz
- k Department of Infectious Diseases , Sahlgrenska Academy, University of Gothenburg , Sweden
| | - Anders Sönnerborg
- l Division of Infectious Diseases, Department of Medicine Huddinge , Karolinska Institutet , Stockholm , Sweden ; All members of the Swedish Reference Group for Antiviral Therapy
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12
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Lin X, Garg S, Mattson CL, Luo Q, Skarbinski J. Prescription of Pneumocystis Jiroveci Pneumonia Prophylaxis in HIV-Infected Patients. J Int Assoc Provid AIDS Care 2016; 15:455-458. [PMID: 27629868 DOI: 10.1177/2325957416667486] [Citation(s) in RCA: 8] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/16/2022] Open
Abstract
The US treatment guidelines recommend Pneumocystis jiroveci pneumonia (PCP) prophylaxis for all HIV-infected persons with a CD4 count <200 cells/mm3 (ie, eligible for PCP prophylaxis). However, some studies suggest PCP prophylaxis may be unnecessary in virally suppressed patients. Using national data of HIV-infected adults receiving medical care in the United States during 2009 to 2012, the authors assessed the weighted percentage of eligible patients who were prescribed PCP prophylaxis and the independent association between PCP prophylaxis prescription and viral suppression. Overall, 81% of eligible patients were prescribed PCP prophylaxis. Virally suppressed eligible patients were less likely to be prescribed PCP prophylaxis (prevalence ratio: 0.84; 95% confidence interval: 0.80-0.89). Although guidelines recommend PCP prophylaxis for all eligible patients, some HIV care providers might not prescribe PCP prophylaxis to virally suppressed patients. Additional data on the risk for PCP among virally suppressed patients are needed to clarify this controversy.
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Affiliation(s)
- Xia Lin
- Epidemic Intelligence Service, Centers for Disease Control and Prevention (CDC), Atlanta, GA, USA .,Division of HIV/AIDS Prevention, National Center for HIV/AIDS, Viral Hepatitis, STD, and TB Prevention, CDC, Atlanta, GA, USA
| | - Shikha Garg
- Division of HIV/AIDS Prevention, National Center for HIV/AIDS, Viral Hepatitis, STD, and TB Prevention, CDC, Atlanta, GA, USA
| | - Christine L Mattson
- Division of HIV/AIDS Prevention, National Center for HIV/AIDS, Viral Hepatitis, STD, and TB Prevention, CDC, Atlanta, GA, USA
| | | | - Jacek Skarbinski
- Division of HIV/AIDS Prevention, National Center for HIV/AIDS, Viral Hepatitis, STD, and TB Prevention, CDC, Atlanta, GA, USA
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13
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Scully EP, Lockhart A, Garcia-Beltran W, Palmer CD, Musante C, Rosenberg E, Allen TM, Chang JJ, Bosch RJ, Altfeld M. Innate immune reconstitution with suppression of HIV-1. JCI Insight 2016; 1:e85433. [PMID: 27158667 DOI: 10.1172/jci.insight.85433] [Citation(s) in RCA: 11] [Impact Index Per Article: 1.4] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/13/2022] Open
Abstract
Progressive HIV-1 infection leads to both profound immune suppression and pathologic inflammation in the majority of infected individuals. While adaptive immune dysfunction, as evidenced by CD4+ T cell depletion and exhaustion, has been extensively studied, less is known about the functional capacity of innate immune cell populations in the context of HIV-1 infection. Given the broad susceptibility to opportunistic infections and the dysregulated inflammation observed in progressive disease, we hypothesized that there would be significant changes in the innate cellular responses. Using a cohort of patients with multiple samplings before and after antiretroviral therapy (ART) initiation, we demonstrated increased responses to innate immune stimuli following viral suppression, as measured by the production of inflammatory cytokines. Plasma viral load itself had the strongest association with this change in innate functional capacity. We further identified epigenetic modifications in the TNFA promoter locus in monocytes that are associated with viremia, suggesting a molecular mechanism for the observed changes in innate immune function following initiation of ART. These data indicate that suppression of HIV-1 viremia is associated with changes in innate cellular function that may in part determine the restoration of protective immune responses.
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Affiliation(s)
- Eileen P Scully
- Ragon Institute of Massachusetts General Hospital, Massachusetts Institute of Technology and Harvard, Cambridge, Massachusetts, USA; Division of Infectious Diseases, Brigham and Women's Hospital, Boston, Massachusetts, USA
| | - Ainsley Lockhart
- Ragon Institute of Massachusetts General Hospital, Massachusetts Institute of Technology and Harvard, Cambridge, Massachusetts, USA
| | - Wilfredo Garcia-Beltran
- Ragon Institute of Massachusetts General Hospital, Massachusetts Institute of Technology and Harvard, Cambridge, Massachusetts, USA
| | - Christine D Palmer
- Ragon Institute of Massachusetts General Hospital, Massachusetts Institute of Technology and Harvard, Cambridge, Massachusetts, USA
| | - Chelsey Musante
- Ragon Institute of Massachusetts General Hospital, Massachusetts Institute of Technology and Harvard, Cambridge, Massachusetts, USA
| | - Eric Rosenberg
- Massachusetts General Hospital, Boston, Massachusetts, USA
| | - Todd M Allen
- Ragon Institute of Massachusetts General Hospital, Massachusetts Institute of Technology and Harvard, Cambridge, Massachusetts, USA
| | - J Judy Chang
- Ragon Institute of Massachusetts General Hospital, Massachusetts Institute of Technology and Harvard, Cambridge, Massachusetts, USA
| | - Ronald J Bosch
- Harvard School of Public Health, Boston, Massachusetts, USA
| | - Marcus Altfeld
- Ragon Institute of Massachusetts General Hospital, Massachusetts Institute of Technology and Harvard, Cambridge, Massachusetts, USA; Heinrich-Pette-Institut, Hamburg, Germany
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14
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Kaur R, Panda PS, Dewan R. Profile of pneumocystis infection in a tertiary care institute in North India. Indian J Sex Transm Dis AIDS 2016. [PMID: 27890947 PMCID: PMC5111298 DOI: 10.4103/2589-0557.185501] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/28/2022] Open
Abstract
CONTEXT Pneumocystis jirovecii pneumonia (PcP) is still remains a common opportunistic disease in human immunodeficiency virus (HIV) infected individuals. Study on PcP in developing countries are scarce. AIMS To study the occurrence of P. jirovecii infection in clinically suspected individuals in a tertiary care institute. SETTINGS AND DESIGN Retrospective study conducted in a tertiary care hospital. MATERIALS AND METHODS Two years data regarding respiratory sample analysis, HIV status, and cluster of differentiation 4 (CD4) cell count of clinically suspected pneumocystis infection patients with known/unknown HIV status were analyzed. RESULTS Data of 45 eligible patients were analyzed. The majority of the patients were male (between 21 and 50 years of age). Total 26 (57.7%) patients were HIV reactive, of which 14 had CD4 count of <200 cells/mm3. 20 patients (9 HIV reactive and 11 unknown HIV status) were confirmed with pneumocystosis by direct fluorescent antibody (DFA) staining. Four of 14 HIV reactive individuals who had CD4 count of <200 cells/mm3 and 5 of 12 HIV reactive individuals who had CD4 count of >200 cells/mm3 were positive for pneumocystosis. CONCLUSIONS Pneumocystis pneumonia is still prevalent in North India and is mainly affecting patients in economically productive and sexually active age group. To diagnose pneumocystosis, DFA is an easily available method in resource-limited settings. Appreciating the actual HIV or immunodeficiency status and the CD4 profile of an individual with symptoms of pneumocystis infection will help the clinicians in early diagnosis and initiation appropriate therapy in individuals living with the disease.
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Affiliation(s)
- Ravinder Kaur
- Department of Microbiology, Maulana Azad Medical College and Associated Hospitals, New Delhi, India,Address for correspondence: Dr. Ravinder Kaur, Department of Microbiology, Maulana Azad Medical College and Associated Hospitals, Bahadur Shah Zafar Marg, New Delhi - 110 002, India. E-mail:
| | - Pragyan Swagatika Panda
- Department of Microbiology, Maulana Azad Medical College and Associated Hospitals, New Delhi, India
| | - Richa Dewan
- Department of Medicine, Maulana Azad Medical College and Associated Hospitals, New Delhi, India
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15
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Colomba C, Trizzino M, Gioè C, Di Bona D, Mularoni A, Cascio A. HIV infection with viro-immunological dissociation in a patient with polycystic kidney disease: Candidate for transplantation? IDCases 2016; 6:74-76. [PMID: 27752472 PMCID: PMC5066192 DOI: 10.1016/j.idcr.2016.09.017] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 09/06/2016] [Revised: 09/27/2016] [Accepted: 09/27/2016] [Indexed: 11/29/2022] Open
Abstract
Autosomal dominant polycystic kidney disease is the most common among inherited cystic kidney diseases. Patients with HIV infection are at risk of developing acute kidney injury and chronic kidney disease. We provide the first report of HIV infection in a patient with polycystic kidney disease. Lymphopenia should not contraindicate kidney transplantation in patients with HIV infection.
Here we describe the case of a HIV-infected patient with polycystic kidney disease and end stage renal diseases not transplantable due to the persistence of a CD4 count <200 notwithstanding a good virological response to highly active antiretroviral therapy and suggest that such limitation to kidney transplantation in such as cases might be bypassed.
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Sidhu VK, Foisy MM, Hughes CA. Discontinuing Pneumocystis jirovecii Pneumonia Prophylaxis in HIV-Infected Patients With a CD4 Cell Count <200 cells/mm3. Ann Pharmacother 2015; 49:1343-8. [PMID: 26358129 DOI: 10.1177/1060028015605113] [Citation(s) in RCA: 4] [Impact Index Per Article: 0.4] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/15/2022] Open
Abstract
OBJECTIVE To review the evidence for discontinuing primary and secondary Pneumocystis jirovecii pneumonia (PJP) prophylaxis in HIV-infected patients with a CD4 count <200 cells/mm(3). DATA SOURCES We conducted a literature search in MEDLINE, EMBASE, Cochrane Library, Google Scholar, and the International Aids Society Library (up to August 2015) using the following key search terms: Pneumocystis jirovecii, pneumonia, human immunodeficiency virus, primary prophylaxis, secondary prophylaxis, and discontinuation. STUDY SELECTION AND DATA EXTRACTION All English-language studies that evaluated discontinuation of primary and/or secondary PJP prophylaxis in HIV-infected patients with CD4 count <200 cells/mm(3) were included. DATA SYNTHESIS Five studies were identified, which varied in design, sample size, outcomes, and duration of follow-up. Three studies examined discontinuation of primary and secondary PJP prophylaxis; 1 study evaluated discontinuing primary PJP prophylaxis; and 1 study evaluated stopping secondary PJP prophylaxis. Two out of the 5 studies pooled data for all opportunistic infections. Overall, there was a low incidence of PJP among HIV-infected patients who discontinued primary PJP prophylaxis and were well controlled on antiretroviral therapy (ART). CONCLUSIONS Discontinuation of primary PJP prophylaxis appears to be safe in patients on combination ART with a suppressed HIV viral load and a CD4 count >100 cells/mm(3). Additional data are needed to support the safety of discontinuing secondary PJP prophylaxis. Decisions to discontinue PJP prophylaxis in patients with a CD4 count <200 cells/mm(3) should be done on an individual patient basis, taking into consideration clinical factors, including ongoing adherence to ART.
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17
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Quantitative Assessment of Intra-Patient Variation in CD4+ T Cell Counts in Stable, Virologically-Suppressed, HIV-Infected Subjects. PLoS One 2015; 10:e0125248. [PMID: 26110761 PMCID: PMC4482322 DOI: 10.1371/journal.pone.0125248] [Citation(s) in RCA: 8] [Impact Index Per Article: 0.9] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 08/04/2014] [Accepted: 03/23/2015] [Indexed: 11/19/2022] Open
Abstract
Objectives Counts of absolute CD4+ T lymphocytes (CD4+ T cells) are known to be highly variable in untreated HIV-infected individuals, but there are no data in virologically-suppressed individuals. We investigated CD4+ T cell variability in stable, virologically-suppressed, HIV-1 infected adults on combination antiretroviral therapy (cART). Methods From a large hospital database we selected patients with stable virological suppression on cART for >3 years with >10 CD4+ T cell measurements performed over a further >2 years; and a control group of 95 patients not on cART. Results We identified 161 HIV-infected patients on cART without active HCV or HBV infection, with stable virological suppression for a median of 6.4 years. Over the study period 88 patients had reached a plateau in their absolute CD4+ T cell counts, while 65 patients had increasing and 8 patients had decreasing absolute CD4+ T cell counts. In patients with plateaued CD4+ T cell counts, variability in absolute CD4+ T cell counts was greater than in percent CD4+ T cells (median coefficient of variation (CV) 16.6% [IQR 13.8-20.1%] and CV 9.6% [IQR 7.4-13.0%], respectively). Patients with increasing CD4+ T cell counts had greater variability in absolute CD4+ T cell counts than those with plateaued CD4 T cell counts (CV 19.5% [IQR 16.1-23.8%], p<0.001) while there was no difference in percent CD4+ T cell variability between the two groups. As previously reported, untreated patients had CVs significantly higher than patients on cART (CVs of 21.1% [IQR 17.2-32.0%], p<0.001 and 15.2% (IQR 10.7-20.0%), p<0.001, respectively). Age or sex did not affect the degree of CD4+ variation. Conclusions Adults with stable, virologically-suppressed HIV infection continue to have significant variations in individual absolute CD4+ T cell and percent CD4+ T cell counts; this variation can be of clinical relevance especially around CD4+ thresholds. However, the variation seen in individuals on cART is substantially less than in untreated subjects.
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18
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Armstrong-James D, Meintjes G, Brown GD. A neglected epidemic: fungal infections in HIV/AIDS. Trends Microbiol 2014; 22:120-7. [PMID: 24530175 DOI: 10.1016/j.tim.2014.01.001] [Citation(s) in RCA: 219] [Impact Index Per Article: 21.9] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/07/2013] [Revised: 01/02/2014] [Accepted: 01/08/2014] [Indexed: 11/17/2022]
Abstract
Invasive fungal infections (IFIs) are a major cause of HIV-related mortality globally. Despite widespread rollout of combined antiretroviral therapy, there are still up to 1 million deaths annually from IFIs, accounting for 50% of all AIDS-related death. A historic failure to focus efforts on the IFIs that kill so many HIV patients has led to fundamental flaws in the management of advanced HIV infection. This review, based on the EMBO AIDS-Related Mycoses Workshop in Cape Town in July 2013, summarizes the current state of the-art in AIDS-related mycoses, and the key action points required to improve outcomes from these devastating infections.
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Affiliation(s)
- Darius Armstrong-James
- Imperial Fungal Diseases Group, Imperial College London, Department of Infectious Diseases and Immunity, Hammersmith Hospital, Du Cane Road, London W12 0NN, UK.
| | - Graeme Meintjes
- Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Observatory, 7925 Cape Town, South Africa
| | - Gordon D Brown
- Institute of Infectious Disease and Molecular Medicine, University of Cape Town, Observatory, 7925 Cape Town, South Africa; Aberdeen Fungal Group, University of Aberdeen, Institute of Medical Sciences, Foresterhill, Aberdeen AB25 2ZD, UK
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19
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Respiratory infections in HIV-infected adults: epidemiology, clinical features, diagnosis and treatment. Curr Opin Pulm Med 2013; 19:238-43. [PMID: 23422413 DOI: 10.1097/mcp.0b013e32835f1b5c] [Citation(s) in RCA: 5] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 02/07/2023]
Abstract
PURPOSE OF REVIEW Using the evidence published over the last 2 years, this review discusses the epidemiology, diagnosis, treatment and prevention of HIV-related pulmonary infections other than mycobacterial disease. RECENT FINDINGS Longstanding, vertically acquired and apparently stable HIV infection is associated with significant and symptomatic small airways disease in African adolescents. The use of population-based pneumococcal vaccination in children is changing the severity and serotypes associated with HIV-related pneumococcal disease. Data on the use of blood 1,3,β-D-glucan show it has promise as a rule-out test for Pneumocystis pneumonia (PCP). SUMMARY With widespread antiretroviral medication usage, the pattern of HIV-associated pulmonary disease is changing. Whereas opportunistic infections such as PCP still occur in people not using antiretroviral therapy (ART), HIV-related infections are similar to those present in the general population. Chronic lung disease is more prevalent, leading to its own infectious complications. The use of specific immunizations against infections is important, though their precise benefit with concomitant widespread ART and population-based vaccination programmes in the non-HIV community is undetermined.
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CD4 count slope and mortality in HIV-infected patients on antiretroviral therapy: multicohort analysis from South Africa. J Acquir Immune Defic Syndr 2013; 63:34-41. [PMID: 23344547 DOI: 10.1097/qai.0b013e318287c1fe] [Citation(s) in RCA: 20] [Impact Index Per Article: 1.8] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/25/2022]
Abstract
BACKGROUND In many resource-limited settings monitoring of combination antiretroviral therapy (cART) is based on the current CD4 count, with limited access to HIV RNA tests or laboratory diagnostics. We examined whether the CD4 count slope over 6 months could provide additional prognostic information. METHODS We analyzed data from a large multicohort study in South Africa, where HIV RNA is routinely monitored. Adult HIV-positive patients initiating cART between 2003 and 2010 were included. Mortality was analyzed in Cox models; CD4 count slope by HIV RNA level was assessed using linear mixed models. RESULTS About 44,829 patients (median age: 35 years, 58% female, median CD4 count at cART initiation: 116 cells/mm) were followed up for a median of 1.9 years, with 3706 deaths. Mean CD4 count slopes per week ranged from 1.4 [95% confidence interval (CI): 1.2 to 1.6] cells per cubic millimeter when HIV RNA was <400 copies per milliliter to -0.32 (95% CI: -0.47 to -0.18) cells per cubic millimeter with >100,000 copies per milliliter. The association of CD4 slope with mortality depended on current CD4 count: the adjusted hazard ratio (aHRs) comparing a >25% increase over 6 months with a >25% decrease was 0.68 (95% CI: 0.58 to 0.79) at <100 cells per cubic millimeter but 1.11 (95% CI: 0.78 to 1.58) at 201-350 cells per cubic millimeter. In contrast, the aHR for current CD4 count, comparing >350 with <100 cells per cubic millimeter, was 0.10 (95% CI: 0.05 to 0.20). CONCLUSIONS Absolute CD4 count remains a strong risk for mortality with a stable effect size over the first 4 years of cART. However, CD4 count slope and HIV RNA provide independently added to the model.
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De P, Farley A, Lindson N, Aveyard P. Systematic review and meta-analysis: influence of smoking cessation on incidence of pneumonia in HIV. BMC Med 2013; 11:15. [PMID: 23339513 PMCID: PMC3606464 DOI: 10.1186/1741-7015-11-15] [Citation(s) in RCA: 31] [Impact Index Per Article: 2.8] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Received: 03/21/2012] [Accepted: 01/22/2013] [Indexed: 11/27/2022] Open
Abstract
BACKGROUND Smoking is common in people infected with HIV but cessation support is not a routine part of clinical care. The aim was to assess whether smoking is a risk factor for pneumonia in people with HIV and whether smoking cessation ameliorates excess risk. METHODS We performed MEDLINE and Embase database searches and included cohort or case-control studies conducted in adult patients infected with HIV extracting a hazard ratio (HR) or odds ratio (OR) that compared the incidence of bacterial pneumonia or pneumonia caused by Pneumocystis jiroveci (PCP) between two smoking categories. Studies were appraised for quality and combined using inverse variance meta-analysis. RESULTS Fourteen cohort and case-control studies were included. Assessment of outcome was good, but assessment of exposure status was poor. Current smokers were at higher risk of bacterial pneumonia than former smokers: HR 1.37 (95% confidence interval (CI): 1.06, 1.78). There was no evidence that former smokers were at higher risk than never smokers: HR 1.24 (95%CI: 0.96, 1.60). Current smokers were at higher risk of bacterial pneumonia than current non-smokers: HR of 1.73 (95%CI: 1.44, 2.06). There was no evidence that smoking increased the incidence of PCP. The HR for current versus non-smokers was 0.94 (95%CI: 0.79, 1.12), but from case-control studies the OR was 1.76 (95%CI: 1.25, 2.48) with heterogeneity. Confined to higher quality studies, the OR was 0.97 (95%CI: 0.81, 1.16). Residual confounding is possible, but available data suggest this is not an adequate explanation. CONCLUSIONS Smoking is a risk factor for bacterial pneumonia but not PCP and smoking cessation reduces this risk.See related article: http://www.biomedcentral.com/1741-7015/11/16.
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Affiliation(s)
- Preeti De
- Primary Care Clinical Sciences, University of Birmingham, Birmingham, B15 2TT, UK
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