Literature DB >> 24402367

16S rRNA gene pyrosequencing reveals shift in patient faecal microbiota during high-dose chemotherapy as conditioning regimen for bone marrow transplantation.

Emmanuel Montassier1, Eric Batard, Sébastien Massart, Thomas Gastinne, Thomas Carton, Jocelyne Caillon, Sophie Le Fresne, Nathalie Caroff, Jean Benoit Hardouin, Philippe Moreau, Gilles Potel, Françoise Le Vacon, Marie France de La Cochetière.   

Abstract

Gastrointestinal disturbances are a side-effect frequently associated with haematological malignancies due to the intensive cytotoxic treatment given in connection with bone marrow transplantation (BMT). However, intestinal microbiota changes during chemotherapy remain poorly described, probably due to the use of culture-based and low-resolution molecular methods in previous studies. The objective of our study was to apply a next generation DNA sequencing technology to analyse chemotherapy-induced changes in faecal microbiota. We included eight patients with non-Hodgkin's lymphoma undergoing one course of BMT conditioning chemotherapy. We collected a prechemotherapy faecal sample, the day before chemotherapy was initiated, and a postchemotherapy sample, collected 1 week after the initiation of chemotherapy. Total DNA was extracted from faecal samples, denaturing high-performance liquid chromatography based on amplification of the V6 to V8 region of the 16S ribosomal RNA (rRNA) gene, and 454-pyrosequencing of the 16 S rRNA gene, using PCR primers targeting the V5 and V6 hypervariable 16S rRNA gene regions were performed. Raw sequence data were screened, trimmed, and filtered using the QIIME pipeline. We observed a steep reduction in alpha diversity and significant differences in the composition of the intestinal microbiota in response to chemotherapy. Chemotherapy was associated with a drastic drop in Faecalibacterium and accompanied by an increase of Escherichia. The chemotherapy-induced shift in the intestinal microbiota could induce severe side effects in immunocompromised cancer patients. Our study is a first step in identifying patients at risk for gastrointestinal disturbances and to promote strategies to prevent this drastic shift in intestinal microbiota.

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Year:  2014        PMID: 24402367     DOI: 10.1007/s00248-013-0355-4

Source DB:  PubMed          Journal:  Microb Ecol        ISSN: 0095-3628            Impact factor:   4.552


  49 in total

1.  Resilience of the dominant human fecal microbiota upon short-course antibiotic challenge.

Authors:  M F De La Cochetière; T Durand; P Lepage; A Bourreille; J P Galmiche; J Doré
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2.  Application of denaturing high-performance liquid chromatography for intestinal microbiota analysis of newborns.

Authors:  Gaëlle Caillaux; Marie France de La Cochetière; Thomas Carton; Françoise Le Vacon; Jean Christophe Rozé; Gilles Potel; Jocelyne Caillon; Christèle Gras-Le Guen
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3.  Investigation of the intestinal microbiota in preterm infants using different methods.

Authors:  Carole Rougé; Oliver Goldenberg; Laurent Ferraris; Bernard Berger; Florence Rochat; Arnaud Legrand; Ulf B Göbel; Michel Vodovar; Marcel Voyer; Jean-Christophe Rozé; Dominique Darmaun; Hugues Piloquet; Marie-José Butel; Marie-France de La Cochetière
Journal:  Anaerobe       Date:  2010-06-09       Impact factor: 3.331

4.  An obesity-associated gut microbiome with increased capacity for energy harvest.

Authors:  Peter J Turnbaugh; Ruth E Ley; Michael A Mahowald; Vincent Magrini; Elaine R Mardis; Jeffrey I Gordon
Journal:  Nature       Date:  2006-12-21       Impact factor: 49.962

5.  Total artificial nutrition is associated with major changes in the fecal flora.

Authors:  S M Schneider; P Le Gall; F Girard-Pipau; T Piche; A Pompei; J L Nano; X Hébuterne; P Rampal
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6.  Characterizing a model human gut microbiota composed of members of its two dominant bacterial phyla.

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Journal:  Proc Natl Acad Sci U S A       Date:  2009-03-24       Impact factor: 11.205

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Journal:  Nature       Date:  2012-02-01       Impact factor: 49.962

8.  Changes in human fecal microbiota due to chemotherapy analyzed by TaqMan-PCR, 454 sequencing and PCR-DGGE fingerprinting.

Authors:  Jutta Zwielehner; Cornelia Lassl; Berit Hippe; Angelika Pointner; Olivier J Switzeny; Marlene Remely; Elvira Kitzweger; Reinhard Ruckser; Alexander G Haslberger
Journal:  PLoS One       Date:  2011-12-14       Impact factor: 3.240

9.  Testing the limits of 454 pyrotag sequencing: reproducibility, quantitative assessment and comparison to T-RFLP fingerprinting of aquifer microbes.

Authors:  Giovanni Pilloni; Michael S Granitsiotis; Marion Engel; Tillmann Lueders
Journal:  PLoS One       Date:  2012-07-12       Impact factor: 3.240

10.  Comparative analysis of human gut microbiota by barcoded pyrosequencing.

Authors:  Anders F Andersson; Mathilda Lindberg; Hedvig Jakobsson; Fredrik Bäckhed; Pål Nyrén; Lars Engstrand
Journal:  PLoS One       Date:  2008-07-30       Impact factor: 3.240

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  52 in total

1.  Functional and phylogenetic alterations in gut microbiome are linked to graft-versus-host disease severity.

Authors:  Mathilde Payen; Ioannis Nicolis; Marie Robin; David Michonneau; Johanne Delannoye; Camille Mayeur; Nathalie Kapel; Béatrice Berçot; Marie-José Butel; Jérôme Le Goff; Gérard Socié; Clotilde Rousseau
Journal:  Blood Adv       Date:  2020-05-12

2.  Potential of Omega-3 Polyunsaturated Fatty Acids in Managing Chemotherapy- or Radiotherapy-Related Intestinal Microbial Dysbiosis.

Authors:  Yue Zhang; Boyan Zhang; Lihua Dong; Pengyu Chang
Journal:  Adv Nutr       Date:  2019-01-01       Impact factor: 8.701

Review 3.  Gut microbiota modulation of chemotherapy efficacy and toxicity.

Authors:  James L Alexander; Ian D Wilson; Julian Teare; Julian R Marchesi; Jeremy K Nicholson; James M Kinross
Journal:  Nat Rev Gastroenterol Hepatol       Date:  2017-03-08       Impact factor: 46.802

Review 4.  Gut microbiota-immune-brain interactions in chemotherapy-associated behavioral comorbidities.

Authors:  Kelley R Jordan; Brett R Loman; Michael T Bailey; Leah M Pyter
Journal:  Cancer       Date:  2018-07-05       Impact factor: 6.860

5.  Gut microbiome analysis as a predictive marker for the gastric cancer patients.

Authors:  Yangyang Zhang; Jian Shen; Xinwei Shi; Yaoqiang Du; Yaofang Niu; Gulei Jin; Zhen Wang; Jianxin Lyu
Journal:  Appl Microbiol Biotechnol       Date:  2021-01-06       Impact factor: 4.813

Review 6.  The Microbiota in Hematologic Malignancies.

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Journal:  Curr Treat Options Oncol       Date:  2020-01-11

7.  A mixture of milk and vegetable lipids in infant formula changes gut digestion, mucosal immunity and microbiota composition in neonatal piglets.

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Review 8.  Sensing danger: toll-like receptors and outcome in allogeneic hematopoietic stem cell transplantation.

Authors:  B Kornblit; K Müller
Journal:  Bone Marrow Transplant       Date:  2016-12-12       Impact factor: 5.483

9.  The gut microbiome, symptoms, and targeted interventions in children with cancer: a systematic review.

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Journal:  Support Care Cancer       Date:  2017-11-22       Impact factor: 3.603

Review 10.  The intestinal microbiota in allogeneic hematopoietic cell transplant and graft-versus-host disease.

Authors:  Anna Staffas; Marina Burgos da Silva; Marcel R M van den Brink
Journal:  Blood       Date:  2016-12-09       Impact factor: 22.113

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