PubMed Health⌕ Search

PubMed · 8027337

Mixed-effect models for predicting microbial interactions in the vaginal ecosystem.

Abstract

Three statistical models that predict microbial interactions within the vaginal environment are presented. A large data set was assembled from in vivo studies describing the healthy vaginal environment, and the data set was analyzed to determine whether statistical models which would accurately predict the interactions of the microflora in this environment could be formulated. During assembly of the data set, two new variables were defined and were added to the data set, that is, cycle (sequence of menstrual cycle) and flow stage (subdivision of cycle determined by day of menstrual cycle). Concentrations of total aerobic (includes facultative) bacteria, total anaerobic bacteria, and a Corynebacterium sp. were identified by correlation analysis as variables with significant predictors. By using a regression method with a backward elimination procedure, significant predictors of these outcome variables were identified as the concentrations of Lactobacillus spp., anaerobic Streptococcus spp., and Staphylococcus spp., respectively. For all three outcome variables, pH and flow stage were also identified as significant independent variables. Because some of the data in the data set are repeated measurements for a subject, a mixed-effect model that accounts for the random effects of repeated-measurement data fit best the data set for predicting interactions between various members of the vaginal microflora. The predictive accuracies of the three models were tested by a comparison of model-predicted outcome-variable values with actual mean in vivo outcome-variable values. From these results, we concluded that it is possible to accurately predict vaginal microflora interactions by using a mixed-effect modeling system. The application of this type of modeling strategy and its future use are discussed.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

R A Ross, M L Lee, M L Delaney, A B Onderdonk. 1994. Mixed-effect models for predicting microbial interactions in the vaginal ecosystem.. https://doi.org/10.1128/jcm.32.4.871-875.1994

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Fluorochrome and flow cytometry to monitor microorganisms in treated hospital wastewater.

Flow cytometry with a fluorescent technique (FCM/FL), epifluorescence microscopy with a fluorescent technique (EFM/FL), and a culture method were used and compared to study the microorganism population profiles in wastewater treatment. In the two non-culture methods (FCM/FL and EFM/FL), four fluorescent dyes [acridine orange (AO), 4',6-diamino-2-phenylindole dihydrochloride (DAPI), propidium iodide (PI), and YOPRO-1] were used to determine the total concentration and viability of microorganisms in the wastewater samples. Results showed that the total cell concentrations (both the bacteria and fungi) determined by using the non-culture-based methods were 18 to 67 times higher than those by the culture method (p = 0.036): the total cell concentration ranged from 1.10 x 10(7) to 2.44 x 10(8) cells/mL determined by both FCM and EFM with AO-staining method, and from 1.02 x 10(7) to 2.00 x 10(8) cells/mL by EFM with DAPI-staining method, whereas the culturable concentration of bacteria and fungi ranged from 0 to 3.22 x 10(6) CFU/mL and from 0 to 4.13 x 10(5) CFU/mL, respectively. No difference in total concentrations between dyes (AO and DAPI) and methods (FCM and EFM) were observed. By using EFM method, the microorganism viability ranged from 0.24 to 0.86 with PI staining and from 0.09 to 0.74 with YOPRO-1 staining. In the FCM analysis, the microorganism viability ranged from 0.23 to 0.87 with PI staining and from 0.18 to 0.73 with YOPRO-1 staining. In addition, the cultivability of microorganism ranged from 0 to 0.105 by the culture method. The total concentrations and viabilities of microorganisms were highly underestimated by the culture method. Results also showed that the viabilities determined by using either EFM/FL or FCM/FL were significantly higher than the cultivabilities. In addition, significant difference in viability between PI and YOPRO-1 for both EFM and FCM analysis was observed. However, the difference in viability between EFM and FCM depended on dyes. In regard to the difference between bacteria and fungi, significant difference in total concentration, viability, and cultivability was observed. In conclusion, the EFM/FL and FCM/FL methods can effectively assess total concentration and viability of microorganisms in environmental samples.

Colony Count, Microbial↗

Mechanisms of heat inactivation in Salmonella serotype Typhimurium as affected by low water activity at different temperatures.

AIMS: To determine the effect of reduced water activity (a(w)) on thermal inactivation of Salmonella serotype Typhimurium at different temperatures and its mechanism. METHODS AND RESULTS: D-value determinations at a range of different temperatures showed that heating at reduced a(w) (0.94, produced by addition of glucose or sodium chloride to nutrient broth) was protective at temperatures above 53-55 degrees C but sensitizing below this temperature. Using selective enumeration media to determine injury, it was shown that at lower heating temperatures cells survived at high a(w) with cytoplasmic injury whereas at low a(w) these cells were killed. At higher temperatures ribosome degradation was a more important cause of death and was inhibited by low a(w) heating media thereby providing greater heat resistance. CONCLUSIONS: The observed change in behaviour reflects the different reactions responsible for thermal death at different temperatures and their different response to reduced a(w). SIGNIFICANCE AND IMPACT OF THE STUDY: This work qualifies the previous assumption that reduced a(w) is protective and suggests that the efficacy of low temperature pasteurization regimes may be increased by reduced a(w).

Colony Count, Microbial↗

Diversity and abundance of sulfate-reducing microorganisms in the sulfate and methane zones of a marine sediment, Black Sea.

The Black Sea, with its highly sulfidic water column, is the largest anoxic basin in the world. Within its sediments, the mineralization of organic matter occurs essentially through sulfate reduction and methanogenesis. In this study, the sulfate-reducing community was investigated in order to understand how these microorganisms are distributed relative to the chemical zonation: in the upper sulfate zone, at the sulfate-methane transition zone, and deeply within the methane zone. Total bacteria were quantified by real-time PCR of 16S rRNA genes whereas sulfate-reducing microorganisms (SRM) were quantified by targeting their metabolic key gene, the dissimilatory (bi)sulfite reductase (dsrA). Sulfate-reducing microorganisms were predominant in the sulfate zone but occurred also in the methane zone, relative proportion was maximal around the sulfate-methane transition, c. 30%, and equally high in the sulfate and methane zones, 5-10%. The dsrAB clone library from the sulfate-methane transition zone, showed mostly sequences affiliated with the Desulfobacteraceae. While, the dsrAB clone libraries from the upper, sulfate-rich zone and the deep, sulfate-poor zone were dominated by similar, novel deeply branching sequences which might represent Gram-positive spore-forming sulfate- and/or sulfite-reducing microorganisms. We thus hypothesize that terminal carbon mineralization in surface sediments of the Black Sea is largely due to the sulfate reduction activity of previously hidden SRM. Although these novel SRM were also abundant in sulfate-poor, methanogenic areas of the Black Sea sediment, their activities and possibly very versatile metabolic capabilities remain subject of further study.

Colony Count, Microbial↗