Persistent microbial dysbiosis in preterm premature rupture of membranes from onset until delivery

Elizabeth A Baldwin1, Marina Walther-Antonio2, Allison M MacLean3

  • 1Department of Maternal Fetal Medicine, Mayo Clinic, Rochester, MN, USA.

Peerj
|December 9, 2015
PubMed

Insights

Preterm Premature Rupture of Membranes (PPROM) is linked to vaginal dysbiosis, with a deficiency in beneficial Lactobacillus species. Antibiotic treatment for PPROM did not restore Lactobacillus levels or eliminate common pathogens, indicating persistent microbial imbalance.

Area of Science:

  • Microbiology
  • Obstetrics
  • Genomics

Background:

  • Preterm Premature Rupture of Membranes (PPROM) is a leading cause of preterm birth.
  • Subclinical infection and vaginal dysbiosis are suspected contributors to PPROM.
  • Chorioamnionitis is present in a significant proportion of PPROM cases.

Purpose of the Study:

  • To characterize the vaginal microbiome in PPROM patients.
  • To identify pathogens and microbial alterations during latency antibiotic treatment.
  • To assess the microbial response to treatment until delivery.

Main Methods:

  • Serial vaginal swabs collected from 15 PPROM subjects from diagnosis to delivery.
  • 16S rRNA gene sequencing (V3-V5 region) to analyze microbial composition.
  • Comparison with vaginal swabs from uncomplicated pregnancies.

Main Results:

  • Lactobacillus species were significantly decreased in PPROM subjects compared to controls.
  • Prevotella and Peptoniphilus were prevalent at PPROM presentation.
  • Antibiotic treatment reduced certain taxa but did not restore Lactobacillus or eliminate Prevotella/Peptoniphilus.

Conclusions:

  • The vaginal microbiome in PPROM is highly variable and shows significant changes with antibiotic treatment.
  • Persistent deficiency of Lactobacillus and presence of pathogens indicate ongoing dysbiosis.
  • Further investigation into mitigating approaches for PPROM-associated dysbiosis is warranted.

Related Concept Videos

Development of the Oral Microbiota01:28

Development of the Oral Microbiota

The establishment of the oral microbiome begins before birth, challenging the long-held belief that the fetal oral cavity is sterile. The presence of oral microbes such as Streptococcus and Fusobacterium in amniotic fluid suggests that microbial exposure may occur in utero, potentially through translocation from the maternal oral or gastrointestinal tract. This early colonization primes the neonatal immune system and sets the stage for subsequent microbial succession. Maternal health,...
25
Development of Human Microbiota01:30

Development of Human Microbiota

The human microbiota begins developing at birth and undergoes continual change as we age. Infancy marks a critical period of microbial sensitivity, offering a “window of opportunity” during which beneficial microbes help mature the immune system. By age three, children typically develop a more stable and diverse microbial community. Newborns acquire microbes from their immediate environment; vaginal delivery favors maternal vaginal microbes, while cesarean births favor microbes from...
21
Introduction to the Human Microbiota01:22

Introduction to the Human Microbiota

Microorganisms colonize various regions of the human body, including the mouth, nasal passages, throat, stomach, intestines, urogenital tract, and skin. The total number of microbial cells is estimated to range from 10¹³ to 10¹⁴—comparable to, or exceeding, the number of human somatic cells. This host–microbiome relationship has led to the conceptualization of humans as supraorganisms, wherein microbial communities perform vital roles in development, immunity,...
48
Anatomy of the Intestines01:23

Anatomy of the Intestines

Although digestion of proteins, carbohydrates, and lipids may begin in the stomach, it is completed in the intestine. The absorption of nutrients, water, and electrolytes from food and drink also occurs in the intestine. The intestines can be divided into two structurally distinct organs—the small and large intestines.
Small Intestines
The small intestine is an ~7 meter-long tube with an inner diameter of just 2.5 cm. Since most nutrients are absorbed here, the inner lining of the...
91.4K
Microbiota of the Urogenital Tract01:28

Microbiota of the Urogenital Tract

The human urogenital system, once thought to be sterile in healthy individuals, is now recognized as a complex microbial habitat. Advancements in molecular sequencing techniques have revealed that even in healthy adults, the kidneys and bladder harbor microbial populations similar to those found in the distal urethra, albeit in much lower abundance. These resident microorganisms, while generally innocuous, can become opportunistic pathogens under conditions that alter the urogenital...
23
Microbiota of the Respiratory Tract01:29

Microbiota of the Respiratory Tract

The human respiratory tract, comprising the upper and lower segments, serves as a critical interface with the external environment. The upper respiratory tract (URT)—including the nostrils, sinuses, pharynx, and oropharynx—is heavily colonized by microbes, while the lower respiratory tract (LRT), composed of the larynx, trachea, bronchi, and lungs, was long thought to be sterile. However, recent molecular studies have revealed that the lungs are not devoid of microbes but act more...
18