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Completed

NCT Number: NCT04983173

INTEnsity of ovariaN Stimulation and Embryo Quality

The management of suboptimal ovarian responders remains a challenging task in IVF. These patients are frequently managed with an intense stimulation protocol of ovarian stimulation in order obtain the maximum number of embryos and, therefore, maximize the cumulative live birth rate. However, the concept of "the more the better" has been recently defied by the one of "mild stimulation". Defenders of this protocol state that with mild stimulation only the best quality oocytes are allowed to grow and, therefore, higher quality embryos will be obtained. However, the impact of the intensity of ovarian stimulation on embryo quality is far from consensual. Moreover, its effect on early embryo development has never been evaluated.

Therefore, the investigators set out to perform this randomized controlled trial comparing the number of GQB and the morphokinetic parameters of early embryo development in infertile patients undergoing two different intensities of ovarian stimulation, a milder approach (CC plus 150 IU daily dose of rFSH) and a more intense approach (300 IU daily dose of rFSH).

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Key information

Age range

35 year–40 year

Sex eligibility

Female

Study type

Interventional

Phase

Phase 4

Primary location

Salud de la Mujer Dexeus

Barcelona, 08028, Spain

About this study

Despite the lack of a consistent definition for "mild stimulation" (MS), the International Society for Mild Approaches in Assisted Reproduction defined it as a protocol performed with gonadotropins, alone or with oral compounds, at lower doses or for a shorter duration, with the aim of achieving 2-7 oocytes. One of the strategies proposed for MS is the use of Clomiphene Citrate (CC). CC acts as a selective estrogen-receptor modulator. By blocking estrogen receptors in the hypothalamic arcuate nucleus, it increases the production of gonadotropin-releasing hormone (GnRH) and, as a result, FSH and luteinizing hormone (LH). Moreover, CC increases the pituitary sensitivity to GnRH and granulosa cell sensitivity to pituitary gonadotropins. Taking these actions into account, several protocols have adopted a combination of CC and exogenous gonadotropins with the aim of improving follicular recruitment and, therefore, ovarian response to stimulation, in patients undergoing in vitro fertilization (IVF). The available evidence has allowed for the inclusion of CC in international guidelines as a treatment option, alone or in combination with gonadotropins, equally recommended in the management of poor responders when compared to gonadotropin stimulation alone.

The concept behind MS is that, with this approach, only the healthier follicles with higher quality oocytes are allowed to grow. Proponents of this protocol state that MS reduces the risk of multiple pregnancy and ovarian hyperstimulation syndrome (OHSS), as well as patient dropout rate and treatment costs. However, evidence regarding clinical outcomes is far from consensual. The best available evidence regarding MS in predicted poor responders comes from the OPTIMIST trial, showing no difference in the cumulative live birth rates when a mild approach, using 150 IU of rFSH, was compared to an individualized protocol of 225/450 IU rFSH. However, several methodological inconsistencies have been pointed out in this randomized controlled trial. In particular, a black hole was left in the management of predicted low responders with an intermediate prognosis (antral follicle count between 8-10), taking into account the allowance for dose adjustments in the second cycle in the 150 IU group. Considering that the control group was treated with rFSH 225 IU daily, a comparison of two identical doses might have been provided.

Evidence regarding the effect of MS on embryo quality is also conflicting. Baart et al. first reported a lower aneuploidy rate following MS when compared to conventional protocols and concluded that mitotic segregation errors might increase with growing gonadotropin dosages. However, this has not been confirmed in recent studies. As for the number of good quality embryos, while previous studies have shown no difference regarding MS and conventional protocols, Vermey et al found a positive correlation between the number of retrieved oocytes and the embryo quality.

Although these previous studies provide some valuable information, the heterogeneity of the available evidence cannot be disregarded. Moreover, to the best our knowledge, the effect of the intensity of ovarian stimulation on early embryo development has not been previously described. Therefore, the investigators set out to perform this randomized controlled trial comparing the number of good quality blastocysts (GQB) and morphokinetic parameters of early embryo development in patients with a predicted suboptimal ovarian response undergoing two different intensities of ovarian stimulation, a milder (CC 50 mg/day from cycle D2-6 + rFSH 150 IU daily from D2 onwards) and a more intense approach (300 IU daily dose of rFSH starting on cycle D2).

Who can participate

Healthy volunteers accepted: No

Only the study team can determine whether someone qualifies for participation.

Inclusion criteria

  • Able and willing to sign the Patient Consent Form and adhere to study visitation schedule
  • Antral follicle count (AFC) ≥ 5 and ≤ 10
  • Anti-Mullerian hormone (AMH) ≤1.5 ng/ml (AMH result of up to one year will be valid)
  • Age ≥ 35 years and ≤40 years
  • BMI ≥18.5 and <25 kg/m2

Exclusion criteria

  • AFC >10
  • History of untreated autoimmune, endocrine or metabolic disorders
  • Contraindication for hormonal treatment
  • Preimplantation genetic diagnosis cycles
  • Severe male factor (sperm concentration <5 M/mL)
  • Recent history of severe disease requiring regular treatment (clinically significant concurrent medical condition that could compromise subject safety or interfered with the trial assessment and patients with any contraindication of being pregnant).

Treatment and study plan

Ovarian Stimulation with CC+rFSH

Drug

: CC 50 mg/day (Omifin®) + rFSH 150 IU (Ovaleap®) GnRH antagonist: ganirelix 0.25 mg (Orgalutran®) Recombinant human chorionic gonadotropin (rhCG) 250 μg (Ovitrelle®) micronized progesterone 200 mg 3id (Utrogestan®)

Ovarian Stimulation with rFSH

Drug

rFSH 300 IU rFSH (Ovaleap®) GnRH antagonist: ganirelix 0.25 mg (Orgalutran®) Recombinant human chorionic gonadotropin (rhCG) 250 μg (Ovitrelle®) micronized progesterone 200 mg 3id (Utrogestan®)

Primary outcomes

  1. Number of good quality blastocysts

    Time frame: Until 5, 6 or 7 days after oocyte pick-up

Secondary outcomes

  1. Change in Progesterone values

    Time frame: days 1, 6, 8, 10 and the day of ovulation triggering

  2. Change in Estradiol values

    Time frame: days 1, 6, 8, 10 and the day of ovulation triggering

  3. Change in FSH Values

    Time frame: days 1, 6, 8, 10 and the day of ovulation triggering

  4. Change in LH values

    Time frame: days 1, 6, 8, 10 and the day of ovulation triggering

  5. Length of ovarian stimulation

    Time frame: 7 -20 days from initiation of ovarian stimulation

  6. Number of oocytes retrieved

    Time frame: 7 -20 days from initiation of ovarian stimulation

  7. Number of mature oocytes (MIIs) retrieved

    Time frame: 7 -20 days from initiation of ovarian stimulation

  8. Follicle to Oocyte Index (FOI)

    Time frame: 7 -20 days from initiation of ovarian stimulation

    ratio of the number of preovulatory follicles and the number of antral follicles available at the start of stimulation

  9. Total dose of rFSH

    Time frame: 7 -20 days from initiation of ovarian stimulation

  10. Follicular Output Rate (FORT)

    Time frame: 7 -20 days from initiation of ovarian stimulation

    ratio of the number of preovulatory follicles and the number of antral follicles available at the start of stimulation

  11. Cycle cancelation rate

    Time frame: Until 15 days after the beginning of ovarian stimulation

    when no follicle has adequate maturation, or the follicle is lost due to spontaneous LH surge

  12. Reason for cycle cancelation

    Time frame: Until 15 days after the beginning of ovarian stimulation

  13. Fertilization rate

    Time frame: One day after oocyte pick-up

  14. Time of appearance of the 2nd polar body (tPB2)

    Time frame: One day after oocyte pick-up

  15. Time of pronuclei appearance (tPNa)

    Time frame: One day after oocyte pick-up

  16. Evaluation of both pronuclei (PN)

    Time frame: One day after oocyte pick-up

  17. Time of pronuclei disappearance (tPNf)

    Time frame: Day 2 after insemination

  18. Time of division from 2 to 8 cells (t2, t3, t4, t5, t6, t7, t8)

    Time frame: Until Day 2 Day 3 after insemination

  19. Time of compactation (tSC)

    Time frame: Until Day 3 Day 6 after insemination

  20. Time of morula (tM)

    Time frame: Until Day 3 Day 6 after insemination

  21. Time of cavitation (tSB)

    Time frame: Until 5, 6 or 7 days after insemination

  22. Time of full blastulation (tB)

    Time frame: Until 5, 6 or 7 days after insemination

  23. Time of expanded blastocyst (tEB)

    Time frame: Until 5, 6 or 7 days after insemination

  24. Time of hatched blastocyst (tHB)

    Time frame: Until 5, 6 or 7 days after insemination

  25. Time of embryo discarding (tDead)

    Time frame: Until 7 days after insemination

  26. Total number of embryos

    Time frame: Until 5, 6 or 7 days after insemination

  27. Blastocyst formation rate

    Time frame: Until 5, 6 or 7 days after insemination

  28. Number of embryos cryopreserved

    Time frame: Until 5, 6 or 7 days after insemination

  29. Embryo stage (D5, D6, D7)

    Time frame: Until 5, 6 or 7 days after insemination

  30. Clinical pregnancy rate

    Time frame: 5 to 6 weeks after oocyte pick-up

    defined as a viable intrauterine pregnancy of at least 8-10 weeks duration confirmed on an ultrasound scan

  31. Ongoing pregnancy rate

    Time frame: 8 to 10 weeks after oocyte pick-up

Other outcomes

  1. Ovarian hyperstimulation syndrome (OHSS) (percent)

    Time frame: Until 15 days after the end of ovarian stimulation

    Number of subjects with OHSS during the ovarian stimulation period and their severity

  2. Miscarriages

    Time frame: before completion of 12 weeks of gestation

    any spontaneous abortion that occurred after confirmation of clinical pregnancy

  3. Incidence of adverse events and serious adverse events

    Time frame: Until 15 days after the end of ovarian stimulation

Sponsors and collaborators

Lead sponsor

Fundación Santiago Dexeus Font

Other

Registry information

Official study title

The Impact of the Intensity of Ovarian Stimulation on Embryo Quality in Predicted Suboptimal Responders. A Randomized Controlled Trial

Acronym: INTENS-EQ

Important dates

Study start
2021
Primary completion
2026
Study completion
2026
First posted
Jul 30, 2021
Registry last updated
Apr 14, 2026

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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