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中华口腔医学研究杂志(电子版) ›› 2011, Vol. 5 ›› Issue (04) : 341 -346. doi: 10.3877/cma.j.issn.1674-1366.2011.04.001

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新一代高通量技术在龋病相关的口腔菌群宏基因组学研究中的应用
凌均棨1,(), 杨芳1, 滕飞1   
  1. 1.510055 广州,中山大学光华口腔医学院·附属口腔医院·口腔医学研究所
  • 收稿日期:2011-07-01 出版日期:2011-08-01
  • 通信作者: 凌均棨

The application of new generation high throughput technology on the investigation of caries-associated metagenomic research of oral microbiotas

Jun-qi LING(), Fang YANG, Fui TENG   

  • Received:2011-07-01 Published:2011-08-01
  • Corresponding author: Jun-qi LING
引用本文:

凌均棨, 杨芳, 滕飞. 新一代高通量技术在龋病相关的口腔菌群宏基因组学研究中的应用[J/OL]. 中华口腔医学研究杂志(电子版), 2011, 5(04): 341-346.

Jun-qi LING, Fang YANG, Fui TENG. The application of new generation high throughput technology on the investigation of caries-associated metagenomic research of oral microbiotas[J/OL]. Chinese Journal of Stomatological Research(Electronic Edition), 2011, 5(04): 341-346.

1
Marsh PD. Microbial ecology of dental plaque and its significance in health and disease. Adv Dent Res, 1994,8(2):263-271.
2
Roesch LF, Fulthorpe RR, Riva A, et al. Pyrosequencing enumerates and contrasts soil microbial diversity. ISME J, 2007,1(4):283-290.
3
Theilade E. The non-specific theory in microbial etiology of inflammatory periodontal diseases. J Clin Periodontol, 1986,13(10):905-911.
4
Marsh PD. Dental plaque as a biofilm and a microbial community-implications for health and disease. BMC Oral Health, 2006,6 Suppl 1:S14.
5
Loesche WJ. Role of Streptococcus mutans in human dental decay. Microbiol Rev, 1986,50(4):353-380.
6
Kleinberg I. A mixed-bacteria ecological approach to understanding the role of the oral bacteria in dental caries causation: an alternative to Streptococcus mutans and the specific-plaque hypothesis. Crit Rev Oral Biol Med, 2002,13(2):108-125.
7
Beighton D. The complex oral microflora of high-risk individuals and groups and its role in the caries process. Community Dent Oral Epidemiol, 2005,33(4):248-255.
8
Marsh PD. Dental diseases--are these examples of ecological catastrophes? Int J Dent Hyg, 2006,4 Suppl 1:3-10; discussion 50-52.
9
Marsh PD. Are dental diseases examples of ecological catastrophes? Microbiology, 2003,149(Pt 2):279-294.
10
Peterson J, Garges S, Giovanni M, et al. The NIH Human Microbiome Project. Genome Res, 2009,19(12):2317-2323.
11
Aas JA, Paster BJ, Stokes LN, et al. Defining the normal bacterial flora of the oral cavity. J Clin Microbiol, 2005,43(11):5721-5732.
12
Kroes I, Lepp PW, Relman DA. Bacterial diversity within the human subgingival crevice. Proc Natl Acad Sci U S A, 1999,96(25):14547-14552.
13
Whitman WB, Coleman DC, Wiebe WJ. Prokaryotes: the unseen majority. Proc Natl Acad Sci U S A, 1998,95(12):6578-6583.
14
Rappé MS, Giovannoni SJ. The uncultured microbial majority. Annu Rev Microbiol, 2003,57:369-394.
15
Woese CR, Fox GE. Phylogenetic structure of the prokaryotic domain: the primary kingdoms. Proc Natl Acad Sci U S A, 1977,74(11):5088-5090.
16
Aas JA, Griffen AL, Dardis SR, et al. Bacteria of dental caries in primary and permanent teeth in children and young adults. J Clin Microbiol, 2008,46(4):1407-1417.
17
Becker MR, Paster BJ, Leys EJ, et al. Molecular analysis of bacterial species associated with childhood caries. J Clin Microbiol, 2002,40(3):1001-1009.
18
Kanasi E, Johansson I, Lu SC, et al. Microbial risk markers for childhood caries in pediatricians' offices. J Dent Res, 2010,89(4):378-383.
19
Li Y, Ku CY, Xu J, et al. Survey of oral microbial diversity using PCR-based denaturing gradient gel electrophoresis. J Dent Res, 2005,84(6):559-564.
20
Schloss PD, Handelsman J. Status of the microbial census. Microbiol Mol Biol Rev, 2004,68(4):686-691.
21
Kazor CE, Mitchell PM, Lee AM, et al. Diversity of bacterial populations on the tongue dorsa of patients with halitosis and healthy patients. J Clin Microbiol, 2003,41(2):558-563.
22
Paster BJ, Boches SK, Galvin JL, et al. Bacterial diversity in human subgingival plaque. J Bacteriol, 2001,183(12):3770-3783.
23
Bonin PC, Michotey VD, Mouzdahir A, et al Anaerobic biodegradation of squalene: Using DGGE to monitor the isolation of denitrifying Bacteria taken from enrichment cultures. FEMS Microbiol Ecol, 2002,42(1):37-49.
24
Keijser BJ, Zaura E, Huse SM, et al. Pyrosequencing analysis of the oral microflora of healthy adults. J Dent Res, 2008,87(11):1016-1020.
25
Zaura E, Keijser BJ, Huse SM, et al. Defining the healthy "core microbiome" of oral microbial communities. BMC Microbiol, 2009,9:259.
26
Ling Z, Kong J, Jia P, et al. Analysis of oral microbiota in children with dental caries by PCR-DGGE and barcoded pyrosequencing.Microb Ecol, 2010,60(3):677-690.
27
He Z, Deng Y, Van Nostrand JD, et al. GeoChip 3.0 as a high-throughput tool for analyzing microbial community composition, structure and functional activity. ISME J, 2010,4(9):1167-1179.
28
Liu W, Wang A, Cheng S, et al. Geochip-based functional gene analysis of anodophilic communities in microbial electrolysis cells under different operational modes. Environ Sci Technol, 2010,44(19):7729-7735.
29
Xie J, He Z, Liu X, et al. GeoChip-based analysis of the functional gene diversity and metabolic potential of microbial communities in acid mine drainage. Appl Environ Microbiol, 2011,77(3):991-999.
30
Rothberg JM, Leamon JH The development and impact of 454 sequencing. Nat Biotechnol, 2008,26(10):1117-1124.
31
Mardis ER. Next-generation DNA sequencing methods. Annu Rev Genomics Hum Genet, 2008,9:387-402.
32
Shendure J, Ji H. Next-generation DNA sequencing. Nat Biotechnol, 2008,26(10):1135-1145.
33
Yang F, Zeng X, Ning K, et al. Saliva microbiomes distinguish caries-active from healthy human populations. ISME J, 2011 Jun 30.[Epub ahead of print]
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