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HELIOS: Human Embryo Illumination to Enhance Development

HELIOS: Human Embryo Illumination to Enhance Development

Status
Active, not recruiting
Phases
Unknown
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT07311928
Acronym
HELIOS
Enrollment
200
Registered
2025-12-31
Start date
2025-12-03
Completion date
2028-06-01
Last updated
2026-03-25

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

Conditions

IVF Outcomes

Keywords

infertility, embryo arrest, recurrent implantation failure, recurrent pregnancy loss, fertility, sperm dna fragmentation

Brief summary

Embryos need a lot of energy to grow, but as women get older, the "power plants" of the cells (called mitochondria) don't work as well. This makes it harder for embryos to develop normally. One possible way to help is with a gentle light treatment called photobiomodulation (PBM). This uses a special type of red light that boosts energy production in cells and helps them stay healthy. This study will test whether adding this light treatment during in vitro fertilization (IVF) can improve embryo growth and pregnancy chances.

Detailed description

Embryo development is highly energy-dependent, and impaired mitochondrial function is a well-established hallmark of reproductive aging. As women age, reactive oxygen species (ROS) accumulate and cause mitochondrial DNA (mtDNA) damage, leading to reduced oxidative phosphorylation, ATP (Adenosine 5'-triphosphate) depletion, and developmental arrest of embryos. Enhancing mitochondrial function represents a promising strategy to improve embryo quality, particularly in women of advanced maternal age. Photobiomodulation (PBM), also known as low-level light therapy (LLLT), involves the application of low-intensity red or near-infrared (NIR) light to modulate mitochondrial activity. NIR light specifically activates cytochrome c oxidase, leading to increased ATP production, reduced oxidative stress, and improved cellular resilience. Numerous preclinical studies, including isolated mitochondria, cell cultures, and in vivo animal models, have confirmed the safety and efficacy of NIR light in restoring mitochondrial function without inducing DNA damage or chromosomal abnormalities. The investigators previously conducted IRB-approved laboratory studies using mouse and donated human embryos, demonstrating that brief exposure to PBM improved blastocyst formation without adversely affecting chromosomal status. The current study builds upon this foundational work to evaluate the clinical impact of PBM during embryo culture in IVF. In a randomized, blinded, sibling-embryo design, the investigators will test whether PBM improves blastocyst formation, embryo quality, and pregnancy outcomes in participants undergoing IVF or ICSI (Intracytoplasmic sperm injection) with PGT-A (preimplantation genetic testing for aneuploidy) using their autologous oocytes.

Interventions

OTHERPhotobiomodulation

Photobiomodulation (PBM), also known as low-level light therapy (LLLT), involves the application of low-intensity red or near-infrared (NIR) light to modulate mitochondrial activity.

Sponsors

Columbia University
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
TREATMENT
Masking
TRIPLE (Subject, Caregiver, Investigator)

Masking description

All embryos will be coded and tracked with blinded identifiers. Embryologists selecting embryos for transfer will be blinded to treatment group. Selection will follow routine morphological and PGT-A criteria.

Intervention model description

Prospective, sibling-embryo-randomized, double-blind controlled trial. All participants will receive the same treatment (IVF/ICSI cycle with PGT-A). Each participant's resultant embryos will be randomized into two groups (one group receiving PBM, the other not).

Eligibility

Sex/Gender
FEMALE
Age
18 Years to 48 Years
Healthy volunteers
No

Inclusion criteria

* Female age between 18-48 years at time of IVF/ICSI cycle * Undergoing blastocyst culture and PGT-A * Using own oocytes * Have at least two fertilized eggs available for randomization * Consenting to embryo-level randomization * Plan to transfer euploid embryo within 6 months

Exclusion criteria

* Use of donor eggs * Known uterine or genetic anomalies * Refusal of randomization or request for non-standard handling

Design outcomes

Primary

MeasureTime frameDescription
Number of usable blastocystsSeven days after egg retrievalUsable blastocysts are defined as blastocysts that can be biopsied and frozen on Day 5, 6, or 7 of development for PGT-A testing (preimplantation genetic testing for aneuploidy).

Secondary

MeasureTime frameDescription
Time to 2-cell stageUp to seven days post egg retrievalTime (hours) for embryo to reach the 2-cell stage from insemination/ICSI as assessed by embryology using Time-lapse imaging.
Time to 3-cell stageUp to seven days post egg retrievalTime (hours) for embryo to reach the 3-cell stage from insemination/ICSI as assessed by embryology using Time-lapse imaging.
Time to 6-cell stageUp to seven days post egg retrievalTime (hours) for embryo to reach the 6-cell stage from insemination/ICSI as assessed by embryology using Time-lapse imaging.
Time to 8-cell stageUp to seven days post egg retrievalTime (hours) for embryo to reach the 8-cell stage from insemination/ICSI as assessed by embryology using Time-lapse imaging.
Time to morulaUp to seven days post egg retrievalTime (hours) for embryo to reach the morula stage from insemination/ICSI as assessed by embryology using Time-lapse imaging.
Time to start of blastulationUp to seven days post egg retrievalTime (hours) for embryo to start blastulation from insemination/ICSI as assessed by embryology using Time-lapse imaging.
Time to blastocystUp to seven days post egg retrievalTime (hours) for embryo to reach the blastocyst stage from insemination/ICSI as assessed by embryology using Time-lapse imaging.
Time to hatching blastocystUp to seven days post egg retrievalTime (hours) for embryo to reach the hatching blastocyst stage from insemination/ICSI as assessed by embryology using Time-lapse imaging.
Number of good quality blastocysts as defined by the Gardner grading systemUp to seven days post egg retrievalFinal blastocyst quality at the time of cryopreservation (Day 5, 6, or 7) will be assessed using the Gardner grading system, which consists of three parameters: expansion and hatching status (graded 1 - 6), inner cell mass (graded A - D) and trophectoderm (graded A D). A good-quality blastocyst will be defined as a blastocyst of grade 3BB or higher.
Euploidy RateWithin 30 days post egg retrievalThe chromosomal ploidy status of cryopreserved blastocysts is assessed as the presence of two copies of each autosome and the expected complement of sex chromosomes. The euploidy rate is defined as the number of cryopreserved blastocysts that have the correct number of chromosomes divided by the total number of cryopreserved blastocysts.
Proportion of Embryo Selected for TransferWithin 1 year post egg retrievalIn cases with no stated embryo sex preference, the proportion of cycles in which the embryo selected for transfer is from the PBM-treated group versus the control group will be reported.
Implantation rateWithin 1 year post egg retrievalImplantation rate is defined as the number of cycles with positive beta hCG (human chorionic gonadotropin) nine days or more post frozen embryo transfer divided by the total number of frozen embryo transfer cycles.
Clinical pregnancy rateWithin 1 year post egg retrievalClinical pregnancy rate is defined as the number of cycles with the presence of a gestational sac visualized on transvaginal ultrasound divided by the total number of frozen embryo transfer cycles.
Miscarriage rateWithin 1 year of egg retrievalMiscarriage rate is defined as number of cycles with clinical pregnancy losses divided by number of cycles that had positive hCGs post frozen embryo transfer.
Live Birth RateUp to two years post egg retrievalLive birth rate is defined as the number of cycles with a live born infant after 24 weeks gestation divided by the total number of frozen embryo transfer cycles.

Countries

United States

Contacts

PRINCIPAL_INVESTIGATORSamuel Zev Williams, MD, PhD

Columbia University

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Mar 26, 2026