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Concomitant Administration of FSH With HCG Improves Oocyte Maturation and Quality Double -Blinded Randomized Trial

Concomitant Administration of FSH With HCG Improves Oocyte Maturation and Quality Double -Blinded Randomized Trial

Status
Completed
Phases
Phase 4
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT00854373
Enrollment
232
Registered
2009-03-03
Start date
2007-06-01
Completion date
2010-04-20
Last updated
2025-12-12

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Infertility

Keywords

Infertility, Pregnancy, in vitro fertilization

Brief summary

Marcelle Cedars, M.D., Victor Fujimoto, M.D., Mitch Rosen, M.D., Heather Huddleston, M.D., Paolo Rinaudo, M.D., Anthony Dobson, M.D., and Shehua Shen, M.D. from the UCSF Department of Obstetrics and Gynecology and Reproductive Sciences are conducting a study to learn about ovarian stimulation and oocyte maturation to improve fertilization, embryo quality, implantation and clinical pregnancy rates in patients undergoing in vitro fertilization (IVF). Two hormones, follicle stimulating hormone and human chorionic gonadotropin (FSH/hCG) will be compared to the standard one hormone, hCG, for the ovulation trigger. Over the past two decades, the success rate of assisted reproductive technology (ART) has dramatically increased. This increase has largely been attributed to improvements in the laboratory conditions and improvements in ovarian stimulation protocols (those medications used to increase the number of eggs maturing each cycle). Less work has been done on different ways to cause the final maturation of the eggs and the release of the egg from the ovary. The investigators propose to change the final injection prior to the egg retrieval (the ovulation trigger) so that it looks more like what happens in a normal menstrual cycle, where two hormones (both luteinizing hormone (LH) and FSH) increase. The investigators want to find out if this will improve egg quality and increase chances for pregnancy.

Detailed description

We observe during (In vitro fertilization) IVF, there are deviations in oocyte morphology and maturity within an individual cohort and that oocyte degeneration, and failed fertilization exist. Regardless, even if fertilization occurs, a large proportion of embryos fail to progress through the pre-implantation stages of development. In order for fertilization and embryo development to occur, the oocyte must mature or develop competence. FSH may be a fundamental component to the final stages of oocyte maturation. Evidence suggests that with exogenous ovarian stimulation not all follicles achieve equal vascularity, and hence they are exposed to different amounts of FSH. We hypothesize FSH is required, within each follicle, at the time of ovulation trigger for oocyte maturation and prevention of atresia. The ovarian stimulation prior to IVF attempts to mimic, and yet augment, normal physiology. The stimulation begins with gonadotropins to rescue antral follicles and stimulate growth. Subsequently hCG, which shares 80% homology with LH, is administered to facilitate maturation of the oocyte. However, the ovulatory phase in the normal menstrual cycle encompasses a concomitant LH and FSH prior to ovulation (see figure). Maturation is a process whereby the oocyte undergoes changes in preparation for fertilization and embryo development. This entails both nuclear and cytoplasmic transformation. Nuclear maturation pertains to the resumption of meiosis to metaphase II (MII). It is well established that the LH surge is intimately involved in this process. Although the mechanism is not completely known, there are several steps. It is thought germinal vesicle breakdown requires a burst of calcium oscillations. During folliculogenesis, nuclear maturation of the oocyte is normally under tonic inhibition by a putative factor, oocyte-meiotic inhibitor (OMI). Some evidence suggests, prior to ovulation, LH inhibits the release of OMI from either the granulosa or theca cells. OMI likely acts as a paracrine factor and increases cAMP production in the granulosa cells (cumulus), which then acts as a messenger to the oocyte to maintain minimal calcium levels. In addition, LH is thought to decrease the gap junction communication between the cumulus and granulosa. Other evidence points to a putative signal that is synthesized by the granulosa cells, called follicular fluid meiotic activating substance. Both elements involved in nuclear maturation involve LH activity. The induction of LH receptors is via FSH. Under physiologic conditions there is a co-existent FSH surge with the LH surge. LH usually rises about 10 fold from baseline and FSH rises roughly 4 fold from baseline. It is possible that the surge of FSH ensures the required amount of LH receptors to complete nuclear maturation. Cytoplasmic maturation is more difficult to identify. The process entails the synthesis of new proteins and post-translational modifications of existing proteins to allow for calcium activated pathways facilitating fertilization and embryo development. It is known that there is extensive cross-talk between the oocyte and granulosa cells. Few morphogenetic determinants of cytoplasmic maturation have been identified, but this remains an area of intense investigation From a clinical perspective, it is possible that FSH is required in this process of nuclear and/or cytoplasmic maturation, and that a minimal threshold of FSH may be required to maintain the gap junctions for completion of oocyte development. This evidence may be further supported by in-vitro maturation studies that show that FSH has a stimulatory effect on cytoplasmic and nuclear maturation. Oocyte degeneration (atresia) is observed in 5-15% of the oocytes at the time of, or after, intracytoplasmic sperm injection. The etiology of degeneration has not been determined. The fate of the oocyte is likely determined prior to oocyte retrieval. At the time of retrieval, the apoptotic process in oocytes destined to undergo atresia has probably already been initiated. Under physiologic conditions, the granulosa cells die prior to the oocyte. There is evidence that atretic follicles have a high androgen to estrogen ratio. It is likely an indication of the deteriorating health of the granulosa cells. It is known that FSH has potent anti-apoptotic activity (inhibition of atresia), and the mechanism may be indirect via estradiol production. There is evidence that FSH primed follicles can grow with LH administration, in spite of low FSH levels. However, observations have shown that this process favors large follicles and that in the smaller follicles a critical ratio of FSH activity to LH activity is needed for survival. In support of this theory, others have suggested there is a narrow therapeutic window for LH. If E2 production is not adequate, LH may be detrimental to the follicle. The LH surge might hasten this process, in those follicles with a relative lack of vascularity (and/or lack of maturity), by a massive development of androgens and a relative lack of aromatase activity.

Interventions

DRUGBravelle(follicle stimulating hormone)

One dose of 6 amps of Bravelle given at the same time as HCG ovulation trigger.

OTHERSaline ( placebo)

1 cc of Normal Saline (placebo) given at the same time as HCG ovulation trigger.

Sponsors

University of California, San Francisco
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
TREATMENT
Masking
QUADRUPLE (Subject, Caregiver, Investigator, Outcomes Assessor)

Eligibility

Sex/Gender
FEMALE
Age
18 Years to No maximum
Healthy volunteers
No

Inclusion criteria

* patients undergoing in vitro fertilization

Exclusion criteria

* risk of ovarian hyperstimulation syndrome

Design outcomes

Primary

MeasureTime frameDescription
Mean Fertilization Proportion (2PN/Oocytes Collected)24 hours after IVF or intracytoplasmic sperm injection (ICSI)Number of normally fertilized oocytes (2PNs) divided by the total number of oocytes collected (i.e., not just the number of inseminated metaphase II state (MII) oocytes). This accounted for the possibility of both an enhanced oocyte maturation and improved fertilization of the mature oocytes. This also permitted inclusion of both IVF and intracytoplasmic sperm injection (ICSI) cycles in a way that allowed for evaluation of collective fertilization rates (i.e., typically, the denominator in IVF in calculating fertilization rate is all eggs collected, but in ICSI it is calculated using only the number of MII oocytes injected).

Secondary

MeasureTime frameDescription
Mature Oocyte Recovery Rate PercentageFrom the ultrasound done on the HCG trigger date, until the oocyte retrieval time which is up to 36 hours after HCG administrationLikelihood of obtaining an oocyte from a single mature-sized follicle on each ovary. Mature follicles are usually 17mm in diameter or greater.
Clinical Pregnancy Rate Percentage6 weeks after embryo transferThe percentage of participants that achieve a clinical pregnancy as confirmed by Fetal heart motion by transvaginal ultrasound

Countries

United States

Participant flow

Recruitment details

Women undergoing a long agonist suppression IVF protocol at one U.S. academic center were recruited to participate

Pre-assignment details

Between June 2007 and March 2010, 232 participants consented for the study. Prior to randomization date, 44 participants were withdrawn from the study for failing to meet randomization criteria {21 cancelled treatment, 15 had elevated estrogen, 8 required a change in clinical treatment plan for which they no longer met eligibility criteria such as needing serrogacy, freezing all eggs or requiring Pre-Gestational Diagnosis}. 188 participants were randomized and included in the final analysis

Participants by arm

ArmCount
Bravelle
Bravelle Bravelle(follicle stimulating hormone) : One dose of 6 amps of Bravelle given at the same time as HCG ovulation trigger.
95
Placebo
Saline Saline ( placebo) : 1 cc of Normal Saline (placebo) given at the same time as HCG ovulation trigger.
93
Total188

Baseline characteristics

CharacteristicPlaceboTotalBravelle
Age, Categorical
<=18 years
0 Participants0 Participants0 Participants
Age, Categorical
>=65 years
0 Participants0 Participants0 Participants
Age, Categorical
Between 18 and 65 years
93 Participants188 Participants95 Participants
Race and Ethnicity Not Collected0 Participants
Region of Enrollment
United States
93 participants188 participants95 participants
Sex: Female, Male
Female
93 Participants188 Participants95 Participants
Sex: Female, Male
Male
0 Participants0 Participants0 Participants

Adverse events

Event typeEG000
affected / at risk
EG001
affected / at risk
deaths
Total, all-cause mortality
0 / 950 / 93
other
Total, other adverse events
0 / 950 / 93
serious
Total, serious adverse events
0 / 950 / 93

Outcome results

Primary

Mean Fertilization Proportion (2PN/Oocytes Collected)

Number of normally fertilized oocytes (2PNs) divided by the total number of oocytes collected (i.e., not just the number of inseminated metaphase II state (MII) oocytes). This accounted for the possibility of both an enhanced oocyte maturation and improved fertilization of the mature oocytes. This also permitted inclusion of both IVF and intracytoplasmic sperm injection (ICSI) cycles in a way that allowed for evaluation of collective fertilization rates (i.e., typically, the denominator in IVF in calculating fertilization rate is all eggs collected, but in ICSI it is calculated using only the number of MII oocytes injected).

Time frame: 24 hours after IVF or intracytoplasmic sperm injection (ICSI)

Population: Intention to treat

ArmMeasureValue (MEAN)Dispersion
BravelleMean Fertilization Proportion (2PN/Oocytes Collected)0.63 proportion of oocytes fertilizedStandard Deviation 0.21
PlaceboMean Fertilization Proportion (2PN/Oocytes Collected)0.55 proportion of oocytes fertilizedStandard Deviation 0.21
Secondary

Clinical Pregnancy Rate Percentage

The percentage of participants that achieve a clinical pregnancy as confirmed by Fetal heart motion by transvaginal ultrasound

Time frame: 6 weeks after embryo transfer

ArmMeasureValue (NUMBER)
BravelleClinical Pregnancy Rate Percentage56.8 percentage of pregnant participants
PlaceboClinical Pregnancy Rate Percentage46.2 percentage of pregnant participants
Secondary

Mature Oocyte Recovery Rate Percentage

Likelihood of obtaining an oocyte from a single mature-sized follicle on each ovary. Mature follicles are usually 17mm in diameter or greater.

Time frame: From the ultrasound done on the HCG trigger date, until the oocyte retrieval time which is up to 36 hours after HCG administration

ArmMeasureValue (NUMBER)
BravelleMature Oocyte Recovery Rate Percentage69.9 percentage of follicles with egg
PlaceboMature Oocyte Recovery Rate Percentage57.1 percentage of follicles with egg

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026