This Article
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrowReprints and Permissions
Right arrow Copyright Information
Right arrow Books from ASM Press
Right arrow MicrobeWorld
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Wang, R. F.
Right arrow Articles by Cerniglia, C. E.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Wang, R. F.
Right arrow Articles by Cerniglia, C. E.
Agricola
Right arrow Articles by Wang, R. F.
Right arrow Articles by Cerniglia, C. E.

 Previous Article  |  Next Article 

Appl. Environ. Microbiol., 04 1996, 1242-1247, Vol 62, No. 4
Copyright © 1996, American Society for Microbiology

PCR detection and quantitation of predominant anaerobic bacteria in human and animal fecal samples

RF Wang, WW Cao and CE Cerniglia
National Center for Toxicological Research, Food and Drug Administration, Jefferson, Arkansas 72079, USA.

PCR procedures based on 16S rRNA gene sequences specific for 12 anaerobic bacteria that predominate in the human intestinal tract were developed and used for quantitative detection of these species in human (adult and baby) feces and animal (rat, mouse, cat, dog, monkey, and rabbit) feces. Fusobacterium prausnitzii, Peptostreptococcus productus, and Clostridium clostridiiforme had high PCR titers (the maximum dilutions for positive PCR results ranged from 10(-3) to 10(-8)) in all of the human and animal fecal samples tested. Bacteroides thetaiotaomicron, Bacteroides vulgatus, and Eubacterium limosum also showed higher PCR titers (10(-2) to 10(-6)) in adult human feces. The other bacteria tested, including Escherichia coli, Bifidobacterium adolescentis, Bifidobacterium longum, Lactobacillus acidophilus, Eubacterium biforme, and Bacteroides distasonis, were either at low PCR titers (less than 10(-2)) or not detected by PCR. The reported PCR procedure including the fecal sample preparation method is simplified and rapid and eliminates the DNA isolation steps.


This article has been cited by other articles:

  • Chee-Sanford, J. C., Mackie, R. I., Koike, S., Krapac, I. G., Lin, Y.-F., Yannarell, A. C., Maxwell, S., Aminov, R. I. (2009). Fate and Transport of Antibiotic Residues and Antibiotic Resistance Genes following Land Application of Manure Waste. J. Environ. Qual. 38: 1086-1108 [Abstract] [Full Text]  
  • Possemiers, S., Rabot, S., Espin, J. C., Bruneau, A., Philippe, C., Gonzalez-Sarrias, A., Heyerick, A., Tomas-Barberan, F. A., De Keukeleire, D., Verstraete, W. (2008). Eubacterium limosum Activates Isoxanthohumol from Hops (Humulus lupulus L.) into the Potent Phytoestrogen 8-Prenylnaringenin In Vitro and in Rat Intestine. J. Nutr. 138: 1310-1316 [Abstract] [Full Text]  
  • Chen, H.-L., Cheng, H.-C., Wu, W.-T., Liu, Y.-J., Liu, S.-Y. (2008). Supplementation of Konjac Glucomannan into a Low-Fiber Chinese Diet Promoted Bowel Movement and Improved Colonic Ecology in Constipated Adults: A Placebo-Controlled, Diet-Controlled Trial. J. Am. Coll. Nutr. 27: 102-108 [Abstract] [Full Text]  
  • Ahmed, S., Macfarlane, G. T., Fite, A., McBain, A. J., Gilbert, P., Macfarlane, S. (2007). Mucosa-Associated Bacterial Diversity in Relation to Human Terminal Ileum and Colonic Biopsy Samples. Appl. Environ. Microbiol. 73: 7435-7442 [Abstract] [Full Text]  
  • Finley, J. W., Burrell, J. B., Reeves, P. G. (2007). Pinto Bean Consumption Changes SCFA Profiles in Fecal Fermentations, Bacterial Populations of the Lower Bowel, and Lipid Profiles in Blood of Humans. J. Nutr. 137: 2391-2398 [Abstract] [Full Text]  
  • Conte, M P, Schippa, S, Zamboni, I, Penta, M, Chiarini, F, Seganti, L, Osborn, J, Falconieri, P, Borrelli, O, Cucchiara, S (2006). Gut-associated bacterial microbiota in paediatric patients with inflammatory bowel disease. Gut 55: 1760-1767 [Abstract] [Full Text]  
  • RANI, R., MURTHY, R.S., BHATTACHARYA, S., AHUJA, V., RIZVI, M.A., PAUL, J. (2006). CHANGES IN BACTERIAL PROFILE DURING AMEBIASIS: DEMONSTRATION OF ANAEROBIC BACTERIA IN ALA PUS SAMPLES. Am J Trop Med Hyg 75: 880-885 [Abstract] [Full Text]  
  • Warren, Y. A., Tyrrell, K. L., Citron, D. M., Goldstein, E. J. C. (2006). Clostridium aldenense sp. nov. and Clostridium citroniae sp. nov. Isolated from Human Clinical Infections.. J. Clin. Microbiol. 44: 2416-2422 [Abstract] [Full Text]  
  • Layton, A., McKay, L., Williams, D., Garrett, V., Gentry, R., Sayler, G. (2006). Development of Bacteroides 16S rRNA Gene TaqMan-Based Real-Time PCR Assays for Estimation of Total, Human, and Bovine Fecal Pollution in Water.. Appl. Environ. Microbiol. 72: 4214-4224 [Abstract] [Full Text]  
  • Bower, P. A., Scopel, C. O., Jensen, E. T., Depas, M. M., McLellan, S. L. (2005). Detection of Genetic Markers of Fecal Indicator Bacteria in Lake Michigan and Determination of Their Relationship to Escherichia coli Densities Using Standard Microbiological Methods. Appl. Environ. Microbiol. 71: 8305-8313 [Abstract] [Full Text]  
  • Coolen, M. J. L., Post, E., Davis, C. C., Forney, L. J. (2005). Characterization of Microbial Communities Found in the Human Vagina by Analysis of Terminal Restriction Fragment Length Polymorphisms of 16S rRNA Genes. Appl. Environ. Microbiol. 71: 8729-8737 [Abstract] [Full Text]  
  • Clavel, T., Henderson, G., Alpert, C.-A., Philippe, C., Rigottier-Gois, L., Dore, J., Blaut, M. (2005). Intestinal Bacterial Communities That Produce Active Estrogen-Like Compounds Enterodiol and Enterolactone in Humans. Appl. Environ. Microbiol. 71: 6077-6085 [Abstract] [Full Text]  
  • Smirnov, A., Perez, R., Amit-Romach, E., Sklan, D., Uni, Z. (2005). Mucin Dynamics and Microbial Populations in Chicken Small Intestine Are Changed by Dietary Probiotic and Antibiotic Growth Promoter Supplementation. J. Nutr. 135: 187-192 [Abstract] [Full Text]  
  • Matsuki, T., Watanabe, K., Fujimoto, J., Takada, T., Tanaka, R. (2004). Use of 16S rRNA Gene-Targeted Group-Specific Primers for Real-Time PCR Analysis of Predominant Bacteria in Human Feces. Appl. Environ. Microbiol. 70: 7220-7228 [Abstract] [Full Text]  
  • Song, Y., Liu, C., Finegold, S. M. (2004). Real-Time PCR Quantitation of Clostridia in Feces of Autistic Children. Appl. Environ. Microbiol. 70: 6459-6465 [Abstract] [Full Text]  
  • Gueimonde, M., Tolkko, S., Korpimaki, T., Salminen, S. (2004). New Real-Time Quantitative PCR Procedure for Quantification of Bifidobacteria in Human Fecal Samples. Appl. Environ. Microbiol. 70: 4165-4169 [Abstract] [Full Text]  
  • Bartosch, S., Fite, A., Macfarlane, G. T., McMurdo, M. E. T. (2004). Characterization of Bacterial Communities in Feces from Healthy Elderly Volunteers and Hospitalized Elderly Patients by Using Real-Time PCR and Effects of Antibiotic Treatment on the Fecal Microbiota. Appl. Environ. Microbiol. 70: 3575-3581 [Abstract] [Full Text]  
  • Fite, A, Macfarlane, G T, Cummings, J H, Hopkins, M J, Kong, S C, Furrie, E, Macfarlane, S (2004). Identification and quantitation of mucosal and faecal desulfovibrios using real time polymerase chain reaction. Gut 53: 523-529 [Abstract] [Full Text]  
  • Zoetendal, E. G., Collier, C. T., Koike, S., Mackie, R. I., Gaskins, H. R. (2004). Molecular Ecological Analysis of the Gastrointestinal Microbiota: A Review. J. Nutr. 134: 465-472 [Abstract] [Full Text]  
  • Matsuki, T., Watanabe, K., Fujimoto, J., Kado, Y., Takada, T., Matsumoto, K., Tanaka, R. (2004). Quantitative PCR with 16S rRNA-Gene-Targeted Species-Specific Primers for Analysis of Human Intestinal Bifidobacteria. Appl. Environ. Microbiol. 70: 167-173 [Abstract] [Full Text]  
  • Lu, J., Idris, U., Harmon, B., Hofacre, C., Maurer, J. J., Lee, M. D. (2003). Diversity and Succession of the Intestinal Bacterial Community of the Maturing Broiler Chicken. Appl. Environ. Microbiol. 69: 6816-6824 [Abstract] [Full Text]  
  • Apajalahti, J. H. A., Kettunen, A., Nurminen, P. H., Jatila, H., Holben, W. E. (2003). Selective Plating Underestimates Abundance and Shows Differential Recovery of Bifidobacterial Species from Human Feces. Appl. Environ. Microbiol. 69: 5731-5735 [Abstract] [Full Text]  
  • Burtscher, C., Wuertz, S. (2003). Evaluation of the Use of PCR and Reverse Transcriptase PCR for Detection of Pathogenic Bacteria in Biosolids from Anaerobic Digestors and Aerobic Composters. Appl. Environ. Microbiol. 69: 4618-4627 [Abstract] [Full Text]  
  • Nebra, Y., Bonjoch, X., Blanch, A. R. (2003). Use of Bifidobacterium dentium as an Indicator of the Origin of Fecal Water Pollution. Appl. Environ. Microbiol. 69: 2651-2656 [Abstract] [Full Text]  
  • Malinen, E., Kassinen, A., Rinttila, T., Palva, A. (2003). Comparison of real-time PCR with SYBR Green I or 5'-nuclease assays and dot-blot hybridization with rDNA-targeted oligonucleotide probes in quantification of selected faecal bacteria. Microbiology 149: 269-277 [Abstract] [Full Text]  
  • Matsuki, T., Watanabe, K., Fujimoto, J., Miyamoto, Y., Takada, T., Matsumoto, K., Oyaizu, H., Tanaka, R. (2002). Development of 16S rRNA-Gene-Targeted Group-Specific Primers for the Detection and Identification of Predominant Bacteria in Human Feces. Appl. Environ. Microbiol. 68: 5445-5451 [Abstract] [Full Text]  
  • Walter, J., Hertel, C., Tannock, G. W., Lis, C. M., Munro, K., Hammes, W. P. (2001). Detection of Lactobacillus, Pediococcus, Leuconostoc, and Weissella Species in Human Feces by Using Group-Specific PCR Primers and Denaturing Gradient Gel Electrophoresis. Appl. Environ. Microbiol. 67: 2578-2585 [Abstract] [Full Text]  
  • Leaphart, A. B., Lovell, C. R. (2001). Recovery and Analysis of Formyltetrahydrofolate Synthetase Gene Sequences from Natural Populations of Acetogenic Bacteria. Appl. Environ. Microbiol. 67: 1392-1395 [Abstract] [Full Text]  
  • Bernhard, A. E., Field, K. G. (2000). Identification of Nonpoint Sources of Fecal Pollution in Coastal Waters by Using Host-Specific 16S Ribosomal DNA Genetic Markers from Fecal Anaerobes. Appl. Environ. Microbiol. 66: 1587-1594 [Abstract] [Full Text]  
  • Barcenilla, A., Pryde, S. E., Martin, J. C., Duncan, S. H., Stewart, C. S., Henderson, C., Flint, H. J. (2000). Phylogenetic Relationships of Butyrate-Producing Bacteria from the Human Gut. Appl. Environ. Microbiol. 66: 1654-1661 [Abstract] [Full Text]  
  • Schwiertz, A., Le Blay, G., Blaut, M. (2000). Quantification of Different Eubacterium spp. in Human Fecal Samples with Species-Specific 16S rRNA-Targeted Oligonucleotide Probes. Appl. Environ. Microbiol. 66: 375-382 [Abstract] [Full Text]  
  • Pryde, S. E., Richardson, A. J., Stewart, C. S., Flint, H. J. (1999). Molecular Analysis of the Microbial Diversity Present in the Colonic Wall, Colonic Lumen, and Cecal Lumen of a Pig. Appl. Environ. Microbiol. 65: 5372-5377 [Abstract] [Full Text]  
  • Suau, A., Bonnet, R., Sutren, M., Godon, J.-J., Gibson, G. R., Collins, M. D., Doré, J. (1999). Direct Analysis of Genes Encoding 16S rRNA from Complex Communities Reveals Many Novel Molecular Species within the Human Gut. Appl. Environ. Microbiol. 65: 4799-4807 [Abstract] [Full Text]  
  • Netherwood, T., Gilbert, H. J., Parker, D. S., O'Donnell, A. G. (1999). Probiotics Shown To Change Bacterial Community Structure in the Avian Gastrointestinal Tract. Appl. Environ. Microbiol. 65: 5134-5138 [Abstract] [Full Text]  
  • Matsuki, T., Watanabe, K., Tanaka, R., Fukuda, M., Oyaizu, H. (1999). Distribution of Bifidobacterial Species in Human Intestinal Microflora Examined with 16S rRNA-Gene-Targeted Species-Specific Primers. Appl. Environ. Microbiol. 65: 4506-4512 [Abstract] [Full Text]  
  • Wood, J., Scott, K. P., Newbold, C. J., Flint, H. J. (1998). Estimation of the Relative Abundance of Different Bacteroides and Prevotella Ribotypes in Gut Samples by Restriction Enzyme Profiling of PCR-Amplified 16S rRNA Gene Sequences. Appl. Environ. Microbiol. 64: 3683-3689 [Abstract] [Full Text]  
  • Zoetendal, E. G., Akkermans, A. D. L., De Vos, W. M. (1998). Temperature Gradient Gel Electrophoresis Analysis of 16S rRNA from Human Fecal Samples Reveals Stable and Host-Specific Communities of Active Bacteria. Appl. Environ. Microbiol. 64: 3854-3859 [Abstract] [Full Text]  
  • Franks, A. H., Harmsen, H. J. M., Raangs, G. C., Jansen, G. J., Schut, F., Welling, G. W. (1998). Variations of Bacterial Populations in Human Feces Measured by Fluorescent In Situ Hybridization with Group-Specific 16S rRNA-Targeted Oligonucleotide Probes. Appl. Environ. Microbiol. 64: 3336-3345 [Abstract] [Full Text]