Article Data

  • Views 799
  • Dowloads 143

Original Research

Open Access

Effect of Human Milk and its Components on Streptococcus Mutans Biofilm Formation

  • Allison LM1,*,
  • Walker LA1
  • Sanders BJ1
  • Yang Z1
  • Eckert G1
  • Gregory RL1,*,

1,Indiana University School of Dentistry

DOI: 10.17796/1053-4628-39.3.255 Vol.39,Issue 3,May 2015 pp.255-261

Published: 01 May 2015

*Corresponding Author(s): Allison LM E-mail: lealliso@iupui.edu lesa.allison@gmail.com
*Corresponding Author(s): Gregory RL E-mail: rgregory@iu.edu

Abstract

Objective: This study investigated the effects of human breast milk and its components on the nutritional aspect of the caries process due to Streptococcus mutans UA159 biofilm formation. Study design: Human breast milk was collected from 11 mothers during 3-9 months postpartum. To test for the effect on biofilm formation, a 16-hour culture of S. mutans was treated with dilutions of human breast milk and several major components of human breast milk, lactose, lactoferrin, IgA, and bovine casein in sterile 96-well flat bottom microtiter plates for 24 hours. The biofilms were fixed, washed, stained with crystal violet, and extracted. Absorbance was measured to evaluate biofilm growth mass. Results: Dilutions 1:10-1:2,560 of the human breast milk samples increased biofilm formation by 1.5-3.8 fold compared to the control. Lactoferrin decreased biofilm formation significantly in all dilutions (average milk concentration of 3 mg/ml). Lactose had no effect at average breast milk concentrations (60 mg/ml) except at its lowest concentration (15 mg/ml) where it was increased. IgA significantly decreased biofilm formation at its highest concentration of 2,400 μg/ml (average milk concentration 600 μg/ml). Casein caused significantly increased biofilm formation at all concentrations tested above the average milk content (2.3 mg/ml). Conclusions: The results of this study demonstrate an increase in S. mutans biofilm formation by human breast milk 3-9 months post partum. Among its major components, only casein significantly increased biofilm formation among the concentrations analyzed. Lactose had no effect except at 15 mg/ml. Lactoferrin and IgA significantly decreased S. mutans biofilm formation at their highest concentrations. This information expands the current knowledge regarding the nutritional influence of breastfeeding and validates the necessity to begin an oral hygiene regimen once the first tooth erupts.

Keywords

human milk, breast milk, breastfeeding, lactose, lactoferrin, casein, secretory IgA, early childhood caries (ECC), S. mutans

Cite and Share

Allison LM,Walker LA,Sanders BJ,Yang Z,Eckert G,Gregory RL. Effect of Human Milk and its Components on Streptococcus Mutans Biofilm Formation. Journal of Clinical Pediatric Dentistry. 2015. 39(3);255-261.

References

1. American Academy of Pediatrics. Policy Statement: Breastfeeding and the Use of Human Milk. Pediatrics. March; 129(3): e827-e841. 2012.

2. World Health Organization. Fifty-Fourth World Health Assembly. Global Strategy for Infant and Young Child Feeding; the optimal duration of exclusive breastfeeding. Provisional agenda item 13.1 Geneva: World Health Organization; 2001.

3. Salone LR, Vann WF, Dee DL. Breastfeeding: An Overview of Oral and General Health Benefits. JADA.; 144(2): 143-151. 2013.

4. American Academy of Pediatric Dentistry Guideline on Infant Oral Health Care. AAPD Reference Manual. Ped Den.; 34(6): 132-6. 2012.

5. Peres RC, Coppi LC, Volpato MC, Groppo FC, Cury JA, Rosalen PL. Cariogenic potential of cows’, human, and infant formula milks and effect of fluoride supplementation. Br J of Nutr. 2009 Feb; 101(3): 376-82.

6. Thomson ME, Thomson CW, Chandler NP. In vitro and intra-oral inves-tigations into the cariogenic potential of human milk. Caries Res.; 30(6): 434- 8. 1996.

7. Hackett AF, Rugg-Gunn AJ, Murray JJ, Roberts GJ. Can breastfeeding cause dental caries? Human Nutr Appl Nutr. Feb; 38(1): 23-8. 1984.

8. Bowen WH, Lawrence RA. Comparison of cariogenicity of cola, honey, cow milk, human milk, and sucrose. Pediatrics. Oct; 116(4): 921-6. 2005.

9. Ribeiro NM, Ribeiro MA. Breastfeeding and early childhood caries: a critical review. J de Pediatr (Rio J). Nov; 80(5 Suppl): S199-210. 2004.

10. Wernersson J, Danielsson Niemi L, Einarson S, Hernell O, Johansson I. Effects of human milk on adhesion of Streptococcus mutans to sali-va-coated hydroxyapatite in vitro. Caries Res.; 40: 412-7. 2006.

11. Paes Leme AF, Bellato CM, Bedi G, Cury JA. The role of sucrose in cariogenic dental biofilm formation – new insight. J Dent Res. Oct; 85(10): 878-87. 2006.

12. Ballard O, Morrow AL. Human milk composition: nutrients and bioactive factors. Pediatr Clin North Am. Feb; 60(1): 49-74. 2013.

13. Campbell RG, Zinner DD. Effect of certain dietary sugars on hamster caries. J Nutr. 1970 Jan; 100(1): 11-20.

14. Napimoga MH, Hofling JF, Klein MI, Kamiya RU, Goncalves RB. Transmission, diversity, and virulence factors of Streptococcus mutans genotypes. J Oral Sci. Jun; 47(2): 59-64. 2005.

15. Hamada S, Slade H. Biology, immunology, and cariogenicity of Strep-tococcus mutans. Microbiological Reviews. June; 44(2): 331-284. 1980.

16. Huang R, Li M, Gregory RL. Bacterial interactions in dental biofilm. Virulence. Sept/Oct; 2(5): 435-444. 2011.

17. Huang R, Li M, Gregory RL. Effect of nicotine on growth and metabo-lism of Streptococcus mutans. Eur J Oral Sci. Aug; 120(4): 319-25. 2012.

18. Prabhakar AR, Kurthukoti AJ, Gupta P. Cariogenicity and acidogenicity of human milk, plain and sweetened bovine milk: an in-vitro study. J Clin Pediatr Dent. Spring; 34(3): 238-47. 2010.

19. Hegde AM, Vikyath R. Cariogenic potential of stored human milk – an in-vitro study. J Clin Pediatr Dent. Fall; 32(1): 27-32. 2007.

20. Shetty V, Hegde AM, Nandan S, Shetty S. Caries protective agents in human milk and bovine milk: an in-vitro study. J Clin Pediatr Dent. Summer; 35(4): 389-92. 2011.

21. Schüpbach P, Neeser JR, Golliard M, Rouvet M, Guggenheim B. Incorpo-ration of caseinoglycomacropeptide and caseinophosphopeptide into the salivary pellicle inhibits adherence of mutans streptococci. J Dent Res. Oct; 75(10): 1779-88. 1996.

22. Lönnerdal B, Forsum E. Casein content of human milk. Am J Clin Nutr. 1985 Jan; 41(1): 113-20.

23. Hambraeus L. Human milk composition. Nutrition Abstracts and Reviews in Clinical Nutrition. Apr; 54(4): 219-236. 1984.

24. Hirai Y, Kawakata N, Satoh K, Ikeda Y, Hisayasu S, Orimo H, Yoshino Y. Concentrations of lactoferrin and iron in human milk at different stages of lactation. J Nutr Sci Vitaminol (Tokyo). Dec; 36(6): 531-44. 1990.

25. Brandtzaeg, P. The mucosal immune system and its integration with the mammary glands. J Pediatr. Feb; 156(2 Suppl): S8-15. 2010.

26. Kawano A, Emori Y. Changes in maternal secretory immunoglobulin a levels in human milk during 12 weeks after parturition. Am J Hum Biol. May-Jun; 25(3): 399-403. 2013.

27. Weaver LT, Arthur HM, Bunn JE, Thomas JE. Human milk IgA concen-trations during the first year of lactation. Arch Dis Child. Mar; 78(3): 235- 9. 1998.

28. Gregory RL, Kindle JC, Hobbs LC, Filler SJ, Malmstrom HS. Function of anti-Streptococcus mutans antibodies: inhibition of virulence factors and enzyme neutralization. Oral Microbiol Immunol. Aug; 5(4): 181-8. 1990.

29. Ajdic D, McShan WM, McLaughlin RE, Savic G, Chang J, Carson MB, et al. Genome sequence of Streptococcus mutans UA159, a cariogenic dental pathogen. PNAS. Oct; 99 (22): 14434-14439. 2002.

30. Gregory RL, Wallace JP, Gfell LE, Marks J, King BA. Effect of exercise on milk immunoglobulin A. Med Sci Sports Exerc.; 29(12): 1596-601. 1997.

31. Viggiano D, Fasano D, Monaco G, Strohmenger L. Breast feeding, bottle feeding, and non-nutritive sucking; effects on occlusion in deciduous dentition. Arch Dis Child Dec; 89(12): 1121-3. 2004.

32. Muthu MS, Sivakumar N, eds. Pediatric Dentistry: Principles and Prac-tice. Noidia, India: Elsevier; 2009.

33. Moral A, Bolibar I, Seguranyes G, et al. Mechanics of sucking: compar-ison between bottle feeding and breastfeeding. BMC Pediatr. Feb 11; 10: 6. 2010.

34. Dean JA, Avery DR, McDonald RE. McDonald and Avery’s Dentistry for the Child and Adolescent. Maryland Heights, Missouri: Mosby Elsevier,. p182. 2011.

35. Van Palenstein Helderman WH, Soe W, van’t Hof MA. Risk factors of early childhood caries in a Southeast Asian population. J Dent Res. Jan; 85(1): 85-8. 2006.

36. Hallonsten AL, Wendt LK, Mejàre I, et al. Dental caries and prolonged breast-feeding in 18-month-old Swedish children. Int J Paediatr Dent. Sep; 5(3): 149-55. 1995.

Abstracted / indexed in

Science Citation Index Expanded (SciSearch) Created as SCI in 1964, Science Citation Index Expanded now indexes over 9,500 of the world’s most impactful journals across 178 scientific disciplines. More than 53 million records and 1.18 billion cited references date back from 1900 to present.

Biological Abstracts Easily discover critical journal coverage of the life sciences with Biological Abstracts, produced by the Web of Science Group, with topics ranging from botany to microbiology to pharmacology. Including BIOSIS indexing and MeSH terms, specialized indexing in Biological Abstracts helps you to discover more accurate, context-sensitive results.

Google Scholar Google Scholar is a freely accessible web search engine that indexes the full text or metadata of scholarly literature across an array of publishing formats and disciplines.

JournalSeek Genamics JournalSeek is the largest completely categorized database of freely available journal information available on the internet. The database presently contains 39226 titles. Journal information includes the description (aims and scope), journal abbreviation, journal homepage link, subject category and ISSN.

Current Contents - Clinical Medicine Current Contents - Clinical Medicine provides easy access to complete tables of contents, abstracts, bibliographic information and all other significant items in recently published issues from over 1,000 leading journals in clinical medicine.

BIOSIS Previews BIOSIS Previews is an English-language, bibliographic database service, with abstracts and citation indexing. It is part of Clarivate Analytics Web of Science suite. BIOSIS Previews indexes data from 1926 to the present.

Journal Citation Reports/Science Edition Journal Citation Reports/Science Edition aims to evaluate a journal’s value from multiple perspectives including the journal impact factor, descriptive data about a journal’s open access content as well as contributing authors, and provide readers a transparent and publisher-neutral data & statistics information about the journal.

Scopus: CiteScore 2.0 (2022) Scopus is Elsevier's abstract and citation database launched in 2004. Scopus covers nearly 36,377 titles (22,794 active titles and 13,583 Inactive titles) from approximately 11,678 publishers, of which 34,346 are peer-reviewed journals in top-level subject fields: life sciences, social sciences, physical sciences and health sciences.

Submission Turnaround Time

Conferences

Top