Results
A total of 2,929 eligible treatment cycles were available for analysis. Mean demographic characteristics and treatment cycle outcomes are summarized in Table 1 . Sixteen percent of treatment cycles resulted in a clinical pregnancy.
Figure 1 illustrates a flow diagram indicating all of the statistically significant independent associations among patient age, BMI, follicle number, serum E 2 concentration, and endometrial thickness as determined by multiple regression analysis adjusting for other correlated variables. Unadjusted univariate relationships between selected pairs of these variables are illustrated in Figure 2 . Age, BMI, and follicle numbers each contributed independently to serum E 2 concentrations ( Fig. 1 ; model R 2 = 0.24). Serum E 2 concentrations at trigger increased by approximately 18 pg/mL per year of age ( P <.0001; Fig. 1 ; unadjusted univariate relationship illustrated in Fig. 2A ), decreased by approximately 16 pg/mL per unit increase in BMI ( P <.0001; Fig. 1 ; unadjusted univariate relationship illustrated in Fig. 2B ), and increased by approximately 119 pg/mL per additional mature follicle ( P <.0001; Fig. 1 ). Age, BMI, and serum E 2 were each independently associated with endometrial thickness ( Fig. 1 ; model R 2 = 0.03). Endometrial thickness decreased by approximately 0.032 mm per year of age ( P =.004; Fig. 1 ; unadjusted univariate relationship illustrated in Fig. 2C ), increased by approximately 0.05 mm per unit increase in BMI ( P <.0001; Fig. 1 ; unadjusted univariate relationship illustrated in Fig. 2B ), and decreased by approximately 0.057 mm per 100 pg/mL increase in E 2 ( P <.0001; Fig. 1 ; unadjusted univariate relationship illustrated in Fig. 2D ).
Not unexpectedly, there was modest and weak but statistically significant increase in BMI with increasing age. A 10-year increase in age was associated with an approximate increase of 1.3 BMI units ( P <.0001; R 2 = 0.01; Fig. 1 ). Age and BMI were also independently associated with mature follicle numbers at trigger, albeit only very weakly (model R 2 = 0.009), with follicle numbers increasing by approximately 0.26 per 10-year increase in age ( P <.0001; Fig. 1 ), whereas decreasing by approximately 0.16 per 10 unit increase in BMI ( P =.0009; Fig. 1 ).
By univariate logistic regression analysis, endometrial thickness was significantly predictive of clinical pregnancy ( P =.004). As illustrated in Figure 3 , PRs increase gradually with increasing endometrial thickness through 10 mm. In the present study there were no pregnancies among cycles with an endometrial thickness of less than 4 mm.
Univariate logistic regression analyses also indicated that clinical PRs were positively associated with both serum E 2 (rising from 9.5% with serum E 2 <200 pg/mL to 17.5% with serum E 2 ≥500 g/mL; P =.027) and follicle numbers (rising from 12% with one mature follicle to 19% with four or more mature follicles; P =.018). However, clinical pregnancy was not significantly associated with patient age ( P =.36), BMI ( P =.16), or total motile sperm ( P =.24) according to univariate logistic regression analyses.
In a multiple logistic regression model ( P =.0013, R 2 = 0.0086) adjusting for age ( P =.26), BMI ( P =.087), serum E 2 ( P =.0027), and follicles ≥14 mm ( P =.18), the association between endometrial thickness and pregnancy remained significant ( P =.0034). Total motile sperm was not correlated with endometrial thickness after adjusting for other variables ( P =.34) and was not included in this multivariate model.
The only variable that was predictive of multiple pregnancy was the number of mature follicles ( P =.004). Only 7% of all clinical pregnancies were multiples when only one mature follicle was noted on the day of trigger, but multiple PRs increased gradually with each additional mature follicle ( Supplemental Fig. 1 , available online). Most triplet pregnancies occurred when there were four or more follicles. None of the other variables evaluated (age, BMI, serum E 2 , endometrial thickness, or total motile sperm) approached statistical significance in relation to multiple pregnancy ( P >.3 for all) in either univariate analyses or multivariate analysis adjusting for follicle numbers.
Discussion
Achieving adequate endometrial thickness is widely considered an important element for success of infertility treatments. The thickness and sonographic pattern of the endometrium has been shown to impact implantation, and ultimately, clinical PRs ( 16 , 17 ). It has been suggested that there may be an “all-or-none” phenomenon of endometrial receptivity, supported by elective single ET studies noting that increasing the number of embryos transferred only increases the multiple gestation rate, yet not increasing the overall PR ( 18 ).
Numerous studies have published results affirming a positive association between endometrial thickness and PRs in IVF populations ( 3 – 5 , 8 , 19 ). Here we provide evidence to conclude that endometrial thickness is also a significant predictor of clinical pregnancy in IUI cycles. Pregnancy rates were found to increase gradually with increasing endometrial thickness through 10 mm, beyond which there was a plateau in this rate. Adverse outcomes were not seen for an endometrium that measured more than 14mm ( Fig. 3 ), as previously reported ( 20 , 21 ). Despite widely contrasting results published for PRs among cycles with an endometrial thickness ≥14 mm ( 22 ), our data provide further evidence of nondetrimental effects of very thick endometrial linings (>14 mm) for IUI cycles.
Although endometrial thickness is significantly associated with pregnancy, we did observe that PRs were still more than 10%, even among the cycles with thin endometria (4–7 mm), supporting the notion that a thin endometrium can still support implantation and pregnancy. In this study there were no pregnancies among cycles with an endometrial thickness of less than 4 mm, although our sample included only six such cycles and therefore we cannot conclude that pregnancy is not possible even among patients with these thinnest linings. We have in fact noted successful pregnancies and births resulting from IUI in patients with endometrial thickness less than 4 mm among our patients not meeting the inclusion criteria for this particular study.
Consistent with previous reports, BMI was correlated with increased endometrial thickness ( 23 ). Overproliferation of the endometrium leading to atypical hyperplasia and cancer is widely accepted as a risk of obesity; however, the mechanism is typically thought to be excess E 2 ( 24 ). Generally, obesity is thought of as a hyperestrogenic state, and therefore the observed endometrial responses (increase thickness and endometrial hyperplasia or cancer) could be due to this estrogenic effect. However, it somewhat counterintuitive that increasing BMI was associated with decreasing serum E 2 concentrations in our study. The increased risk of endometrial hyperplasia and cancer is classically thought to be due increased E 2 effect in obesity due to peripheral conversion of androgens. However, these results are consistent with previous groups who have shown that serum E 2 concentrations negatively correlate with BMI ( 23 , 25 ). This relationship warrants further investigation to examine the E 2 independent proliferative effect of obesity, and could suggest that in obese women, endometrial growth may be more strongly influenced by influences other than peak serum E 2 .
Age was associated with surprising findings in this cohort: increasing E 2 level at trigger, increasing numbers of mature follicles at trigger, and lack of correlation with clinical pregnancy. A higher number of mature follicles (and therefore E 2 levels) would likely be tolerated during IUI stimulation in an older patient, who generally has a lower risk for high-order multiples with similar number of mature follicles compared with younger patients. Furthermore, the difference in E 2 level and mature follicle number with age could be attributed to cancellation due to over-response in younger patients and increased likelihood of cancellation of poor response in older patients, skewing this comparison. This clinical management of pushing older patients to have more follicles may also explain why PRs are maintained despite increasing age.
Alternately, similar PRs across groups could suggest a common source of age-independent infertility (i.e., not age-related decline in oocyte quality) common to an unexplained infertility cohort such as fertilization defects or implantation abnormalities. Other possibilities include underlying etiologies of infertility readily amenable to clomid/IUI therapy, and these good prognosis patients are successfully treated in their first cycle of IUI at similar rates between younger and older women. Previous studies have shown that age is significantly associated with PR after IUI in a general infertility population ( 26 , 27 ). One study found an inverse association between age and PRs in an unexplained population undergoing IUI cycles, but this study was limited by a smaller sample size, the inclusion of multiple IUI cycles for each patient, and a limitation to age less than 35 years old ( 28 ). One strength of our study was the inclusion of only the first IUI cycle for each patient with unexplained infertility through age 42 years, which has not been extensively studied previously. It is possible that age may not be as critical for IUI outcome in an unexplained infertility population, as women with diminished ovarian reserve were excluded in this analysis.
Here we present a comprehensive evaluation of a large unexplained infertility population to synthesize a new understanding of the complex interactions affecting endometrial development and treatment success. We provide a model to help clinicians understand normative data in patients undergoing IUI. The strengths of our study include the large population studied, and the use of an unexplained infertility population to elucidate aspects of putative endometrial factor infertility. The limitations of our study include lack of a prospective design, instead relying on a retrospective analysis.
In conclusion, the influence of the endometrium on fertility treatment success may be under-recognized. Here we further characterize relationships influencing endometrial development in a large unexplained infertility cohort undergoing IUI. Our findings demonstrate that PRs increase as endometrial thickness increased from 4–10 mm beyond which there was a plateau in the rate. It is possible that future therapies might optimize endometrial receptivity to improve on current fertility success rates.
Materials|Methods
In this retrospective analysis, we identified 2,929 initial, consecutive, completed IUI cycles from 2004 through 2011 at a large private infertility practice for which we had complete clinical pregnancy outcomes. All consecutive patients less than 43 years of age with a diagnosis of unexplained infertility and undergoing their first cycle of clomiphene citrate (CC)/FSH IUI with more than 8 million total motile sperm were included in this retrospective review under an approved Institutional Review Board protocol. Those with total motile sperm <8 million were excluded to minimize the effect of male factor infertility on clinical PRs, as this threshold has previously been shown to be associated with PRs in our practice ( 15 ). Typically, patients received 100 mg of CC on menstrual cycle days 3–7, followed by 150 U of FSH on cycle day 9. Ultrasound and blood monitoring of E 2 were performed on cycle day 13. Once follicles reached 18 mm, trigger was induced with 10,000 U of SC hCG.
A series of univariate and multiple logistic regression analyses were conducted to clarify the complex relationships among patient age, body mass index (BMI, in kilograms per meter squared), trigger day follicle number (≥14 mm), trigger day serum E 2 concentration (in picograms per milliliter), and trigger day endometrial thickness (in millimeters). In these analyses, all other variables were considered to be potentially dependent in relation to patient age. The BMI was treated as an independent variable in relation to trigger day follicle number, serum E 2 , and endometrial thickness. Serum E 2 was treated as a dependent variable in relation to follicle numbers, as it is the maturing follicles that are the source of E 2 production. Endometrial thickness was considered to be potentially dependent in relation to E 2 concentration.
The relationships between endometrial thickness on the day of hCG trigger, as well as the potentially confounding variables, and clinical pregnancy (defined as ultrasound identification of a gestational sac) were evaluated by univariate logistic regression analyses. Ectopic pregnancies (EPs) were included as a negative clinical pregnancy. The independent association between endometrial thickness and clinical pregnancy, after adjusting for potential confounding variables, was investigated using multiple logistic regression analysis.
Text is read by the "Ask this paper" AI Q&A widget below.
Extraction quality varies by source — PMC NXML preserves structure
cleanly, OA-HTML may include some navigation residue, and OA-PDF can
have broken hyphenation. The publisher copy
(via DOI)
is the canonical version.