The
Prophylactic antibiotics are commonly used as part of IVF-ET protocols to prevent infections after invasive pelvic procedures. Moore et al 53 found no evidence of reduced virulent bacteria or H 2 O 2 -producing lactobacilli with the use of doxycycline in IVF-ET setting. Other studies conducted with prophylactic administration of ceftriaxone or intravenous metronidazole demonstrated reduction in virulent bacteria on the transfer catheter and improved pregnancy rate, but were lacking a control group and did not check for the presence of H 2 O 2 -producing lactobacilli. 54 , 55 Thus, the role of prophylactic antibiotics and its effect on implantation in the setting of IVF-ET still remains to be determined.
Pathogens
BV describes a perturbation in the Lactobacillus -dominated environment of the vagina and historically refers to an overgrowth of Gardnerella vaginalis . BV is the most common vaginal disorder in reproductive age women and results in millions of health care visits per year in the United States. It is associated with infertility, PTB, endometritis, pelvic inflammatory disease, and increased risk of acquiring human immunodeficiency virus. Thus, the term BV is deceptive since it is a disease of both the lower and upper genital tracts. 42
In 1932, Curtis discovered that in women with “white discharge syndrome,” there was a paucity of Lactobacillus and overgrowth of black-pigmented anaerobes, curved anaerobic motile rods, anaerobic cocci, and gram-variable diphtheroidal rods. Drs. Gardner and Duke reported a strong association of nonspecific vaginitis with Haemophilus vaginalis . 43 They believed that this organism was the cause of the syndrome despite the fact that direct inoculation of cultivated G. vaginalis did not reproduce the disease. BV is most likely a polymicrobial disease dominated by anaerobes that produce a biofilm. Since anaerobic bacteria are very difficult to culture, sequencing techniques employed by microbiome profiling provide an innovative method of identifying other key culprits other than G. vaginalis , this furthering our understanding of BV and creating treatments to prevent its well-known sequelae. In the clinical setting, the Amsel criteria are used for diagnosis. 44 , 45 In the laboratory setting, the gold standard is the Nugent score which is calculated by assessing for the presence of large gram-positive rods, small gram-variable rods (morphotypes), and curved gram-variable rods. A score of 7 to 10 is consistent with BV. 46
Although BV is strongly associated with late fetal loss and PTB, several studies demonstrate a higher prevalence of BV in the infertile population but do not confirm negative effects on pregnancy outcomes. 47 – 50 Previous studies report that up to 40% of patients undergoing IVF cycles have abnormal reproductive tract microbiota. 51 , 52 One study conducted on 91 women undergoing IVF with embryo transfer (IVF-ET), a reduction of LBR was associated with the recovery of Streptococcus viridans from the embryo transfer-catheter tip, but not with other virulent pathogens, including H 2 O 2 -nonproducing Lactobacillus, Enterococcus, Staphylococcus epidermidis, Escherichia coli, anaerobic gram-positive cocci, Ureaplasma urealyticum , and M. hominis . 53 However, in other studies, a 50% reduction in pregnancy rate was reported when these bacteria were recovered from the embryo transfer-catheter tip, 54 – 57 with dominant microorganisms differing by patient’s geographic location. 53 , 54 , 56
A recent ART study attempted to correlate patterns of vaginal microbiota during in vitro cycles using modern 16S sequencing method. Thirty-one patients undergoing IVF cycles were enrolled, none of whom had signs of active infection. Swabs of the posterior fornix were obtained on day of baseline ultrasound, day of oocyte retrieval, day of embryo transfer, and at 6 to 8 weeks gestation. They found a diverse vaginal microflora at the time of embryo transfer appeared to be an important factor in the success of the IVFET procedure with a vaginal microbiome composed solely of Lactobacillus yielding the most successful outcome. 37
A recent meta-analysis attempted to elucidate if there is a negative effect of BV on conception rates. Twelve studies that used the Nugent criteria were evaluated. Meta-analysis demonstrated that BV is significantly more prevalent in women with infertility (odds ratio [OR], 3.32; 95% confidence interval [CI], 1.53–7.20). Women with tubal factor had significantly higher prevalence BV (OR, 2.77; 95% CI, 1.62–4.75) compared with women with other causes of infertility. BV was not associated with decreased conception rates (OR, 1.03; 95% CI, 0.79–1.33) but was associated with significantly elevated risk of preclinical pregnancy loss (OR, 2.36; 95% CI, 1.24–4.51). BV was not associated with an increased risk of first trimester miscarriage (OR, 1.20; 95%CI, 0.53–2.75). 6
Association
Measurement of hormone concentrations in the stages of the IVF cycle is a routine matter, but little is known about the effect of these hormones on the uterine microbiome. In 2008, Bezirtzoglou et al 75 revealed that in the reproductive-tract microbiota of rats that underwent ovariectomy, lactobacilli concentrations depend on estrogen (E2) levels. In a recent study using the metagenomic approach, Hyman et al 37 examined the association of the reproductive-tract microbiome composition with circulating E2 and progesterone (P4) levels. A substantial decrease in serum-E2 concentration between the time of human chorionic gonadotropin (hCG) administration and that of embryo transfer was found in all women who had a live birth. 37 These findings are consistent with previous studies that proved this decrease in E2 to be a necessary, but not sufficient, condition for successful outcome of IVF-ET cycles. 76 , 77 Correlation between changes in serum-E2 concentration and changes in the reproductive-tract microbiome showed that 54% of the women had a change in their flora while all serum-E2 concentrations rose significantly between the baseline swab and the late-follicular-stage swab. During the time elapsed from the administration of hCG to embryo transfer, 76% of the patients’ reproductive-tract microbiota changed, while their serum E2 decreased. 37 In addition, measurements of serum P4 at time of embryo transfer were not statistically significant between women who had a live birth and those who did not.
Conclusions
The majority of data pertaining to the reproductive-tract microbiome in ART have been gleaned from studies on the cervicovaginal flora. The upper genital tract is generally considered to be sterile, but previous studies using endometrial cultures obtained via surgical hysterotomy have demonstrated growth of one or more microorganisms in the uterus, with Lactobacillus species, M. hominis, G. vaginalis , and Enterobacter species the most frequently recovered. 102 , 103 Svenstrup et al 104 further supported the concept of a non-sterile uterine environment; they demonstrated the ability of certain bacteria to attach to spermatozoa and be transported into the uterine cavity.
In the era of metagenomic studies, the molecular-based techniques have revolutionized our knowledge of the vaginal microbiome. With the combination of cultivation-dependent and independent molecular-based techniques, we are now able to explore microorganisms that were not detected previously, adding missing pieces to the puzzle called “the reproductive-tract microbiome.”
Our ability to discover different species of lactobacilli, previously underappreciated, has shed light on the composition of the reproductive-tract flora during IVF-ET cycles. It is now clear that only specific Lactobacillus species are present with numerical supremacy in the healthy flora; these species are likely to play a pivotal role in maintaining a supportive environment for implantation and future pregnancy outcome.
Several studies have supported the hypothesis that the reproductive-tract microbiome on the day of embryo transfer affects pregnancy outcome, but no study has used the metagenomic approach for analyzing samples from the transfer-catheter tip. Therefore, further studies are needed to evaluate the association of H 2 O 2 -producing Lactobacillus recovered from the transfer-catheter tip with implantation and LBR by using the cultivation-independent molecular-based techniques, and compare results to those measured with the cultivation-dependent techniques.
The idea of colonizing the reproductive tract flora with different species of Lactobacillus to achieve healthy, “normal” flora has been a topic of interest. Probiotic species not numerically dominant in the vagina were used to colonize the already-infected vaginal environment, but unfavorable results were observed. When a more common species, H 2 O 2 -producing L. crispatus , was used to colonize vaginas of sexually active healthy women, the success rate was 69 to 90%. This result may support the hypothesis that colonizing the transfer-catheter tip with L. crispatus at the time of IVF-ET would increase the rates of implantation and LBR while decreasing the rate of infection.
It is unclear if the use of prophylactic antibiotics in IVF-ET cycles has an effect on implantation and LBR. Previous studies have recommended using broad-spectrum antibiotics for prophylaxis, but by doing so, there is always a risk of diminishing the dominant H 2 O 2 -producing Lactobacillus species in the reproductive tract. Another potential direction for future research would be to identify prophylactic antibiotics that are specific for the virulent microorganisms in the flora of the reproductive tract, while not affecting the H 2 O 2 -producing lactobacilli, and compare rates of implantation, infection, and LBR with and without the use of these antibiotics.
On the basis of the previous studies on the progesterone-resistant endometrium, it is possible that failure of implantation might be explained, in part, by alteration in the uterine microbiome in response to inflammation, leading to the development of a progesterone-resistant endometrium. Many questions about the interaction between genes and environment are still to be answered. When these answers are in hand, we envision that appropriately controlling for these factors and the common environmental factors described earlier would create a supportive habitat for the embryo in cases of IVF-ET, resulting in a successful implantation, healthy pregnancy, and healthy neonate.
Lactobacilli
The “normal” flora of the reproductive tract includes a variety of Lactobacillus species, which promote a healthy, supportive environment for the embryo in the pre- and periconceptual period. Not only by their presence but also by production of lactic acid, 21 hydrogen peroxide (H 2 O 2 ) 22 , bacteriocins, antibiotic toxic hydroxyl radicals, and probiotics, 23 do lactobacilli promote a supportive environment for implantation.
Since 1928, when Stanley Thomas identified Lactobacillus acidophilus , cultivation-based techniques continued to improve dramatically; between those and the recently developed cultivation-independent molecular-based techniques, over 20 lactobacilli species have now been identified in the genital tract environment. 24 – 30
Lactobacillus comprises 90 to 95% of the total bacterial count in the reproductive tract, with four species showing numerical dominance: Lactobacillus crispatus, Lactobacillus iners, Lactobacillus jensenii, and Lactobacillus gasseri . 24 , 25 , 29 , 31 – 37 Jakobsson and Forsum obtained similar results in 2008 while checking for changes in the cultivatable genital tract flora during the in vitro fertilization (IVF) cycle. 38 The Lactobacillus species and their proportions differ among human races and geographical locations, 24 and nutrition may have some effect on the diversity as well, as it affects the gastrointestinal Lactobacillus species. 39
Two main attributes of lactobacilli have been shown to play a pivotal role in shifting the balance of the reproductive tract environment in favor of successful implantation and pregnancy. Lactobacilli produce lactic acid, which lowers the vaginal pH and makes it an unfavorable habitat for many pathogens, including BV. 40 In addition, live birth rate (LBR) has been directly correlated with recovery of H 2 O 2 -producing lactobacilli from the embryo transfer-catheter tip 31 and inversely correlated with BV. 21 , 41
Progesterone
Recent evidence from a study of normal fertile women in an artificial hormonally controlled cycle demonstrated that the minimum P4 concentration needed for endometrial maturation was as low as 4 ng/mL and might be even lower than that seen in ovulatory women. 92 Despite that, supplementation of P4 during IVF cycles has proven to increase the clinical pregnancy rate of infertility patients. 92 – 94 Because P4 concentrations approaching the lowest of those observed in ovulatory women support normal endometrial structural and functional maturation in normal individuals, while infertility patients appear to benefit from higher P4 concentrations, it is possible that it is the resistance of the endometrium to P4, rather than a reduced concentration of P4, that may contribute to infertility.
It has been hypothesized that resistance to P4 is caused by altered P4-receptor expression or activity. 95 Supporting data come from endometriosis studies, which demonstrate local changes in the responsiveness of the tissue to P4 and lower expression of “P4-regulated” genes such as IGFBP-1 and PRL. 83 Resistance to cyclic adenosine monophosphate, an intracellular signaling molecule that enhances P4-receptor activity and supports decidualization, has been found to contribute to P4 resistance in women with endometriosis as well. 96 Savaris et al demonstrated P4-resistant endometria in women with polycystic ovary syndrome (PCOS) and hyperandrogenemia. 97 On the basis of the role of inflammation in the induction of a progesterone-resistant endometrium, we hypothesize that failure of implantation might be explained, perhaps in part, by alteration in the uterine microbiome in response to inflammation.
This hypothesis finds support in the ability of environmental factors to alter progesterone sensitivity. As noted before, environmental factors play an important role in the success of implantation. Bruner-Tran and Osteen showed that exposure to in utero environmental toxins, such as 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD), in mice led to a progesterone-resistant phenotype in adult animals that can persist for several generations. 98 Maternal exposure to TCDD promoted a progesterone-resistant endometrium, similar to the endometrium of women with endometriosis, which manifested as infertility or PTB, 99 – 101 likely due in part to loss of P4-receptor expression.
A very important finding derived from this study demonstrated that TCDD-mediated P4 resistance might increase sensitivity to inflammation, even in subsequent generations not exposed to the toxicants, resulting in PTB. 98 By means of extrapolation, these data support the hypothesis that a combination of environmental factors, taken together, are a risk for recurrent pregnancy loss and PTB in humans; the mechanism being creation of a P4-resistant endometrium and the presence of inflammation.
Therefore, we conclude that the association between the microbiome of the reproductive tract and circulating serum E2 concentrations may reflect the environment and availability of glycogen. However, progesterone resistance, albeit an unproven relationship to the microbiome, might contribute to implantation failure and infertility. This putative role of undetected endometrial colonization and progesterone resistance requires further investigation.
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