- THIS ARTICLE
- Full Text (PDF)
- Alert me when this article is cited
- Alert me if a correction is posted
- SERVICES
- Similar articles in this journal
- Similar articles in PubMed
- Alert me to new issues of the journal
- Download to citation manager
- Reprints & Permissions
- CITING ARTICLES
- Citing Articles via HighWire
- Citing Articles via Google Scholar
- GOOGLE SCHOLAR
- Articles by Stewart, F. M.
- Articles by Levin, B. R.
- Search for Related Content
- PUBMED
- PubMed Citation
- Articles by Stewart, F. M.
- Articles by Levin, B. R.
THE POPULATION BIOLOGY OF BACTERIAL PLASMIDS: A PRIORI CONDITIONS FOR THE EXISTENCE OF CONJUGATIONALLY TRANSMITTED FACTORS
Frank M. Stewart 1 and Bruce R. Levin 2
1 Department of Mathematics, Brown University, Providence, Rhode
Island 02912
2 Department of Zoology, University of Massachusetts, Amherst,
Massachusetts 01002
A mathematical model for the population dynamics of conjugationally transmitted plasmids in bacterial populations is presented and its properties analyzed. Consideration is given to nonbacteriocinogenic factors that are incapable of incorporation into the chromosome of their host cells, and to bacterial populations maintained in either continuous (chemostat) or discrete (serial transfer) culture. The conditions for the establishment and maintenance of these infectious extrachromosomal elements and equilibrium frequencies of cells carrying them are presented for different values of the biological parameters: population growth functions, conjugational transfer and segregation rate constants. With these parameters in a biologically realistic range, the theory predicts a broad set of physical conditions, resource concentrations and dilution rates, where conjugationally transmitted plasmids can become established and where cells carrying them will maintain high frequencies in bacterial populations. This can occur even when plasmid-bearing cells are much less fit (i.e., have substantially lower growth rates) than cells free of these factors. The implications of these results and the reality and limitations of the model are discussed and the values of its parameters in natural populations speculated upon.
Submitted on May 21, 1976Revised on July 14, 1977
This article has been cited by other articles:
![]() |
L. De Gelder, J. J. Williams, J. M. Ponciano, M. Sota, and E. M. Top Adaptive Plasmid Evolution Results in Host-Range Expansion of a Broad-Host-Range Plasmid Genetics, April 1, 2008; 178(4): 2179 - 2190. [Abstract] [Full Text] [PDF] |
||||
![]() |
S. M. Krone, R. Lu, R. Fox, H. Suzuki, and E. M. Top Modelling the spatial dynamics of plasmid transfer and persistence Microbiology, August 1, 2007; 153(8): 2803 - 2816. [Abstract] [Full Text] [PDF] |
||||
![]() |
J. M. Ponciano, L. De Gelder, E. M. Top, and P. Joyce The Population Biology of Bacterial Plasmids: A Hidden Markov Model Approach Genetics, June 1, 2007; 176(2): 957 - 968. [Abstract] [Full Text] [PDF] |
||||
![]() |
L. De Gelder, J. M. Ponciano, P. Joyce, and E. M. Top Stability of a promiscuous plasmid in different hosts: no guarantee for a long-term relationship Microbiology, February 1, 2007; 153(2): 452 - 463. [Abstract] [Full Text] [PDF] |
||||
![]() |
G. F. Webb, E. M. C. D'Agata, P. Magal, and S. Ruan A model of antibiotic-resistant bacterial epidemics in hospitals PNAS, September 13, 2005; 102(37): 13343 - 13348. [Abstract] [Full Text] [PDF] |
||||
![]() |
P. E. Turner Phenotypic Plasticity in Bacterial Plasmids Genetics, May 1, 2004; 167(1): 9 - 20. [Abstract] [Full Text] [PDF] |
||||
![]() |
J. Paulsson Multileveled Selection on Plasmid Replication Genetics, August 1, 2002; 161(4): 1373 - 1384. [Abstract] [Full Text] [PDF] |
||||
![]() |
C. T. Bergstrom, M. Lipsitch, and B. R. Levin Natural Selection, Infectious Transfer and the Existence Conditions for Bacterial Plasmids Genetics, August 1, 2000; 155(4): 1505 - 1519. [Abstract] [Full Text] |
||||
![]() |
B. R. Levin and C. T. Bergstrom Bacteria are different: Observations, interpretations, speculations, and opinions about the mechanisms of adaptive evolution in prokaryotes PNAS, June 20, 2000; 97(13): 6981 - 6985. [Abstract] [Full Text] [PDF] |
||||


