Current partner codePEPTIDESDE
NCT07076719·Not applicable·OBSERVATIONAL

Cell-free DNA Analysis of Spent Embryo Culture Media as a Non-invasive Approach for Preimplantation Genetic Diagnosis

Status

Completed

Phase

Not applicable

Enrollment

20

Locations

1

Results

Not posted

Publications

12

Study summary

What the protocol is testing.

This study aims to evaluate the feasibility and accuracy of using cfDNA analysis of spent embryo culture media as a non-invasive approach for PGD. Specifically, the objectives of the study are: 1. To collect SCM from blastocysts of good quality obtained from IVF cycles. 2. To extract cfDNA from the collected SCM using a commercially available kit. 3. To assess the chromosomal content in both cfDNA and gDNA samples via array-based comparative genomic hybridization (aCGH). 4. To compare the results obtained using cfDNA analysis to those obtained using conventional invasive PGD methods, such as blastomere biopsy. 5. To evaluate the potential advantages of using cfDNA analysis of spent embryo culture media for PGD, including reduced risk of harm to the embryo, reduced cost, and increased efficiency.

Full detailed description

Materials and Methods: 1. Study Design * Type of Study: This is a retrospective study. * Location: The study was conducted at the Assisted Reproductive Technology Unit Life Zena Center, Baghdad, Baghdad Governorate, Iraq. * Duration: The study was conducted from October 2023 to August 2024. * Patient Criteria: * Included: All patients referred for PGT-A. * Excluded: Patients who had no blastocyst for biopsy were excluded. * Ethical Approval: The study was approved by the Committee for the Scientific Research Ethics of Sohag University (CSRE-16-24). 2. Ovarian Stimulation and Oocyte Retrieval • Protocols: Patients underwent controlled ovarian stimulation using either: o A long down-regulation protocol with buserelin nasal spray (Suprecur, Hoechst, Germany) (Ravhon et al., 2000). A short protocol incorporating a gonadotropin-releasing hormone (GnRH) antagonist (Cetrotide, Merck Serono, Germany) (Hohmann et al., 2003). * Gonadotropin Administration: Daily administration included highly purified human menopausal gonadotropin (Menopur, Ferring, USA) or recombinant FSH (rFSH; Gonal-F, Serono, Switzerland, or Puregon, MSD, USA). Doses ranged from 150 to 450 IU (Bosch et al., 2024). * Ovulation Trigger: Ovulation was triggered when at least three follicles reached ≥18 mm in diameter. The trigger agents used were either 5,000 IU of hCG (Pregnyl, MSD, USA) or 0.2 mg triptorelin (Decapeptyl, Ferring, Sweden) (Schachter et al., 2008)). * Oocyte Retrieval: Transvaginal oocyte retrieval was performed 36 hours post-trigger, followed by intracytoplasmic sperm injection (ICSI). 3. Fertilization and Embryo Culture * Oocyte Preparation: Collected oocytes were denuded using hyaluronidase (Ref. 10017, Vitrolife, Goteborg, Sweden). They were then incubated for a minimum of one hour before insemination. * Insemination: Oocytes were inseminated via ICSI after 4-6 hours of recovery. * Initial Culture: Fertilized oocytes were cultured in G-1 medium (Ref. 10127, Vitrolife, Goteborg, Sweden) supplemented with 10% serum substitute supplement (SSS; Ref. 99193, Irvine Scientific, USA). * Day 3 Processing: On day 3 of development, each embryo was gently washed and rinsed using a 200 µm pipette (K-FPIP-1170-10, Cook Medical, USA). A \~10 µm hole was drilled in the zona pellucida using a non-contact laser (Saturn 5 Active Laser System, Research Instrument, UK) (Desai et al., 2020). * Blastocyst Culture: Embryos were then cultured individually to the blastocyst stage in G-2 medium (Ref. 10131, Vitrolife, Goteborg, Sweden) with 10% SSS. * Culture Conditions: The sequential culture was carried out in 30 µl microdrops of media under oil (Ref. 10029, Vitrolife, Goteborg, Sweden). Incubation was performed at 37.0°C in a gas environment of 5% CO₂ and 5% O₂ balanced with N₂ (Zeng et al., 2024). 4. Trophectoderm (TE) Biopsy * Blastocyst Grading: Blastocyst grading was based on criteria that classified embryos as good, fair, or poor using the simplified SART embryo scoring system (Heitmann et al., 2013): * Good: AA or AB. * Fair: BA, BB, BC. * Poor: CB or CC. * Biopsy Criteria: TE biopsy was performed when an embryo had at least one grade B or better for either the ICM or TE on day 5 of development. When no good-quality blastocysts were available in the same cohort, CC grade blastocysts were biopsied. * Biopsy Procedure: 5-8 cells were laser-biopsied from the TE. These cells were then rinsed and tubed for PGT. * Cryopreservation: The biopsied embryo was cryopreserved by vitrification (Ref. 90133, Vit Kit-Freeze, Irvine Scientific, Santa Ana, USA) (Richardson et al., 2015). 5. Sample Collection and Processing * DNA Contamination Minimization: * Embryos and culture media were managed under stringent sterile conditions. * Laboratory personnel received comprehensive training in embryo handling protocols and consistently utilized personal protective equipment (masks, caps, gloves). * All laboratory materials and equipment were exclusively dedicated to the study to prevent cross-contamination. * Meticulous removal of surrounding cumulus cells was performed prior to microinjection in ICSI cycles or at the time of fertilization in conventional IVF cycles to reduce maternal DNA contamination. * These practices align with established guidelines for good laboratory practices in IVF settings (Krasic et al., 2021). * Sample Collection: Paired samples were obtained from 50 embryos that had reached the Day-5 blastocyst stage. From each embryo, we collected the SCM in which it was developing. Subsequently, a corresponding biopsy of the TE was performed and the tissue was collected. All embryos were sourced from a cohort of 20 patients. * SCM was harvested after embryo culture with care taken not to include cellular material. * TE biopsies were performed according to standard protocols under strict aseptic conditions. * Sample Storage: Samples were stored immediately at -80°C until further processing to prevent degradation of DNA. * Processing for Genetic Analysis: TE samples were processed directly for genetic analysis (Magli et al., 2008). 6. DNA Extraction and Sample Preparation * cfDNA Extraction: cfDNA was extracted from SCM using the QIAamp Circulating Nucleic Acid Kit (Qiagen, Hilden, Germany). This kit includes a centrifugation step, protein digestion, and silica membrane-based DNA binding optimized for low-yield samples. * gDNA Extraction: Genomic DNA (gDNA) was concurrently isolated from the TE biopsy samples using the DNeasy Blood and Tissue Kit (Qiagen), following the manufacturer's instructions (Rubio et al., 2020). 7. Microarray Comparative Genomic Hybridization (aCGH) * Chromosomal Assessment: Chromosomal content was assessed in both cfDNA and gDNA samples via array-based comparative genomic hybridization (aCGH). * BAC-chip Slides: MACArray Karyo 1440 BAC-chip slides were employed to enable high-resolution, whole-genome profiling. * Labeling and Hybridization: * Extracted DNA was fluorescently labeled: cfDNA with Cy3 (green) and TE DNA with Cy5 (red). * Labeled DNA was hybridized onto oligonucleotide microarrays containing probes across all 23 chromosomes (Mertzanidou et al., 2013). * Scanning and Data Acquisition: * Post-hybridization, arrays were scanned using an Agilent SureScan microarray scanner (Agilent Technologies, Santa Clara, USA). * Signal intensities were quantified, and log₂ ratios of Cy3 to Cy5 fluorescence were calculated to identify chromosomal gains and losses. * Data Processing and Analysis: * Chromosomal imbalances were analyzed using Agilent CytoGenomics and Genomic Workbench v7.0.4.0 software. * Signal data were converted into log₁₀ ratios to determine DNA copy number variations (CNVs). * Statistical thresholds were applied to minimize false positives and negatives, regarding established concordance frameworks (Yatsenko et al., 2009). 8. Validation and Quality Control • Robust quality control measures included: * Negative controls during DNA extraction to detect contamination. * Evaluation of hybridization efficiency via reference DNA consistency. * Exclusion of results with poor signal-to-noise ratios (Rubio et al., 2019). 9. Statistical Analysis * Comparison of Profiles: Chromosomal profiles of cfDNA and TE samples were compared using Chi-square tests. * Statistical Significance: P-values \<0.05 were considered statistically significant. 10. Software Tools * Statistical Analyses: All statistical analyses were performed using SPSS. * Visual Data Representations: Visual data representations were generated using GraphPad Prism.

Interventions

Treatment arms and agents.

DIAGNOSTIC_TEST

Trophectoderm (TE) Biopsy

* Blastocyst Grading: Blastocyst grading was based on criteria that classified embryos as good, fair, or poor using the simplified SART embryo scoring system (Heitmann et al., 2013): * Good: AA or AB. * Fair: BA, BB, BC. * Poor: CB or CC. * Biopsy Criteria: TE biopsy was performed when an embryo had at least one grade B or better for either the ICM or TE on day 5 of development. When no good-quality blastocysts were available in the same cohort, CC grade blastocysts were biopsied. * Biopsy Procedure: 5-8 cells were laser-biopsied from the TE. These cells were then rinsed and tubed for PGT. * Cryopreservation: The biopsied embryo was cryopreserved by vitrification (Ref. 90133, Vit Kit-Freeze, Irvine Scientific, Santa Ana, USA) (Richardson et al., 2015).

DIAGNOSTIC_TEST

Non-invasive Preimplantation Genetic Diagnosis

* DNA Contamination Minimization: o SCM was harvested after embryo culture with care taken not to include cellular material. * Sample Storage: * Processing for Genetic Analysis: 6\. DNA Extraction and Sample Preparation 7. Microarray Comparative Genomic Hybridization (aCGH) * Chromosomal Assessment: * BAC-chip Slides: * Labeling and Hybridization: * Scanning and Data Acquisition: * Data Processing and Analysis: 8\. Validation and Quality Control * Robust quality control measures included:

Timeline

From registration to results.

  1. First posted

    Jul 22, 2025

  2. Study start

    Oct 1, 2023

  3. Primary completion

    Aug 28, 2024

  4. Study completion

    Aug 28, 2024

  5. Results posted

    Not reported

  6. Registry updated

    Jul 22, 2025

Outcomes

What the study measures.

Primary outcomes

Diagnostic accuracy

Time frame · 12 moponths

Accuracy of using cfDNA analysis of spent embryo culture media as a non-invasive approach for PGD in comparison to traditional trophectoderm biopsy.

Secondary outcomes

Not reported in the indexed record.

Eligibility

Who can take part.

Minimum age
Not reported
Maximum age
Not reported
Sex
FEMALE
Healthy volunteers
No

Inclusion Criteria: All patients referred for PGT-A. Exclusion Criteria: Patients who had no blastocyst for biopsy were excluded

Study locations

1 registered sites.

Iraq. Showing up to 24 locations stored in the fast local snapshot.

Unit Life Zena Center

Baghdad, Baghdad Governorate, Iraq

Publications

Results and literature.

PMID 31200971Rubio C, Rienzi L, Navarro-Sanchez L, Cimadomo D, Garcia-Pascual CM, Albricci L, Soscia D, Valbuena D, Capalbo A, Ubaldi F, Simon C. Embryonic cell-free DNA versus trophectoderm biopsy for aneuploidy testing: concordance rate and clinical implications. Fertil Steril. 2019 Sep;112(3):510-519. doi: 10.1016/j.fertnstert.2019.04.038. Epub 2019 Jun 11.PMID 19324990Yatsenko SA, Shaw CA, Ou Z, Pursley AN, Patel A, Bi W, Cheung SW, Lupski JR, Chinault AC, Beaudet AL. Microarray-based comparative genomic hybridization using sex-matched reference DNA provides greater sensitivity for detection of sex chromosome imbalances than array-comparative genomic hybridization with sex-mismatched reference DNA. J Mol Diagn. 2009 May;11(3):226-37. doi: 10.2353/jmoldx.2009.080064. Epub 2009 Mar 26.PMID 23054067Mertzanidou A, Wilton L, Cheng J, Spits C, Vanneste E, Moreau Y, Vermeesch JR, Sermon K. Microarray analysis reveals abnormal chromosomal complements in over 70% of 14 normally developing human embryos. Hum Reprod. 2013 Jan;28(1):256-64. doi: 10.1093/humrep/des362. Epub 2012 Oct 9.PMID 32470458Rubio C, Navarro-Sanchez L, Garcia-Pascual CM, Ocali O, Cimadomo D, Venier W, Barroso G, Kopcow L, Bahceci M, Kulmann MIR, Lopez L, De la Fuente E, Navarro R, Valbuena D, Sakkas D, Rienzi L, Simon C. Multicenter prospective study of concordance between embryonic cell-free DNA and trophectoderm biopsies from 1301 human blastocysts. Am J Obstet Gynecol. 2020 Nov;223(5):751.e1-751.e13. doi: 10.1016/j.ajog.2020.04.035. Epub 2020 May 26.PMID 18375408Magli MC, Van den Abbeel E, Lundin K, Royere D, Van der Elst J, Gianaroli L; Committee of the Special Interest Group on Embryology. Revised guidelines for good practice in IVF laboratories. Hum Reprod. 2008 Jun;23(6):1253-62. doi: 10.1093/humrep/den068. Epub 2008 Mar 28.PMID 34552921Krasic J, Abramovic I, Vrtaric A, Nikolac Gabaj N, Kralik-Oguic S, Katusic Bojanac A, Jezek D, Sincic N. Impact of Preanalytical and Analytical Methods on Cell-Free DNA Diagnostics. Front Cell Dev Biol. 2021 Sep 6;9:686149. doi: 10.3389/fcell.2021.686149. eCollection 2021.PMID 38759047Zeng W, Xiao D, Chen R, Lu Y, Liang W, Sun H. A novel method for gas mixing and distribution in multi-chamber embryo incubators. Technol Health Care. 2024;32(S1):169-181. doi: 10.3233/THC-248015.PMID 18023439Schachter M, Friedler S, Ron-El R, Zimmerman AL, Strassburger D, Bern O, Raziel A. Can pregnancy rate be improved in gonadotropin-releasing hormone (GnRH) antagonist cycles by administering GnRH agonist before oocyte retrieval? A prospective, randomized study. Fertil Steril. 2008 Oct;90(4):1087-93. doi: 10.1016/j.fertnstert.2007.07.1316. Epub 2007 Nov 26.PMID 38037188Bosch E, Alama P, Romero JL, Mari M, Labarta E, Pellicer A. Serum progesterone is lower in ovarian stimulation with highly purified HMG compared to recombinant FSH owing to a different regulation of follicular steroidogenesis: a randomized controlled trial. Hum Reprod. 2024 Feb 1;39(2):393-402. doi: 10.1093/humrep/dead251.PMID 10685537Ravhon A, Aurell R, Lawrie H, Margara R, Winston RM. The significance of delayed suppression using buserelin acetate and recombinant follicle-stimulating hormone in a long protocol in vitro fertilization program. Fertil Steril. 2000 Feb;73(2):325-9. doi: 10.1016/s0015-0282(99)00521-x.PMID 20890283Wong CC, Loewke KE, Bossert NL, Behr B, De Jonge CJ, Baer TM, Reijo Pera RA. Non-invasive imaging of human embryos before embryonic genome activation predicts development to the blastocyst stage. Nat Biotechnol. 2010 Oct;28(10):1115-21. doi: 10.1038/nbt.1686. Epub 2010 Oct 3.PMID 21775417Vassena R, Boue S, Gonzalez-Roca E, Aran B, Auer H, Veiga A, Izpisua Belmonte JC. Waves of early transcriptional activation and pluripotency program initiation during human preimplantation development. Development. 2011 Sep;138(17):3699-709. doi: 10.1242/dev.064741. Epub 2011 Jul 20.

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