What does it do?
Reads many DNA fragments simultaneously and generates digital data.
NGS refers to next-generation sequencing platforms that can read many DNA regions in parallel and may be used in some PGT applications for chromosome copy-number or targeted gene analysis.

Using NGS does not by itself mean that all genetic conditions are tested or that the clinical outcome will be better.
Reads many DNA fragments simultaneously and generates digital data.
May support assessment of chromosome copy number, segmental changes or targeted gene analysis.
DNA amplification, sequencing, bioinformatic analysis and report verification.
Not every NGS test has the same scope, resolution or clinical meaning.
NGS is a family of technologies capable of reading DNA sequences in high-throughput parallel workflows.
The limited DNA obtained from an embryo biopsy is first amplified, then read on a sequencing instrument and analysed using software. What NGS can show depends on the panel, library preparation and bioinformatic algorithm used.
In PGT-A, NGS may assess signals of missing or extra chromosome copies by comparing relative amounts of DNA. In PGT-M, different NGS-based methods may be used for direct variant analysis or linkage markers.
The fact that an NGS instrument produces large amounts of data does not mean that the entire genome is interpreted clinically. The test reports only regions within its validated analytical scope and changes above its defined resolution.
Laboratories may differ in DNA-amplification methods, sequencing depth, mosaic thresholds, segmental-reporting policies and quality-control rules. Results should be judged according to validation data and the clinical question, not the platform name alone.

PGT is a group of clinical tests; NGS is one of the analysis technologies that may be used for those tests.
Defines the genetic question being assessed in the embryo.
Reads biopsy DNA and generates copy-number or targeted-sequence data.
No. Current professional assessments do not demonstrate that one PGT-A platform is superior in every setting. Test reliability depends on the entire laboratory workflow.
Its use depends on laboratory validation and the genetic question being asked.
Screening copy number across all 24 chromosomes and, depending on the method, some segmental findings.
Targeted variants, linkage markers or combined-analysis protocols.
Assessment of unbalanced chromosome regions associated with structural rearrangements.
Parallel analysis of many genes in defined gene panels.
Panels, exome sequencing or selected other analyses in a medical genetics laboratory.
Controlled use in research on new algorithms, mosaicism and embryo genetics.
No. Variants outside the panel, resolution or reporting scope may not be detected. Embryo-biopsy testing also has the limitation that sampled cells may not fully represent the whole embryo.
Technology should be selected to answer the clinical question; the clinical question should not be created simply because a technology is available.
The PGT-A, PGT-M or PGT-SR objective is defined.
Embryo biopsy, blood or another DNA source is specified.
Whole-chromosome, targeted-gene, panel or linkage analysis is selected.
Sequencing depth, mosaic threshold, segment size and no-result criteria are explained.
Family DNA or reference samples may be required for tests such as PGT-M.
Policies for incidental findings, data storage and report sharing are explained.
NGS analysis of an embryo-biopsy sample involves several laboratory stages.
The biopsy tube is verified against the embryo code.
DNA from the small number of cells is amplified using whole-genome amplification.
DNA fragments are prepared with appropriate labels for the sequencing instrument.
Many DNA fragments are read in parallel.
Raw data are processed for quality, copy number or targeted variants.
Read count, coverage and control samples are assessed.
Results are converted into the reporting categories of the clinical test.
The report is transferred to the clinical record using the correct embryo code.
Timing depends on sample number, test type and the laboratory workflow.
The sample is prepared for the laboratory after embryo biopsy.
Amplification and sequencing preparation are performed.
Samples may be processed together according to instrument capacity.
Data are analysed and passed through quality filters.
Specialist review and the final result category are completed.
Embryos are used in a separate FET cycle after results.
There is no need to remain in Cyprus while NGS laboratory analysis is underway. The IVF and biopsy schedule is followed, and the report can be explained remotely.
The entire pre-analytical, analytical and bioinformatic pathway matters more than the instrument alone.
Too few or damaged cells can affect the amount of DNA available.
Amplification bias can distort copy-number signals.
Influences data resolution and reliability.
Thresholds for mosaicism and segmental changes may vary between laboratories.
Local validation and quality-control materials are essential.
The analytical result should be interpreted by a specialist in the context of the embryo and patient.
High technical sequencing quality does not guarantee embryo implantation or live birth. Analytical performance and clinical outcome are different concepts.
Cost varies according to analysis scope, sample number and the PGT laboratory service.
PGT-A, PGT-M, PGT-SR or a combined analysis.
Number of embryos or family samples tested.
Reagents, instrument use and sequencing-run costs.
Data analysis, algorithms and specialist interpretation.
Targeted-variant and linkage work for PGT-M.
Treatment, embryo culture and biopsy are separate from the NGS analysis itself.
Clarifying why NGS is being used and exactly what will be reported can help avoid unnecessary analysis and cost.
An NGS result should be supported by a documented chain covering sample identity, instrument run, software version and specialist approval.
Each biopsy tube and library is tracked using a unique identifier.
Controls are used to assess contamination and technical error.
Read count, base quality and coverage are monitored.
Algorithm and reference-genome changes are documented.
Access to raw data, reports and patient information is restricted to authorised users.
If new information or a quality issue arises, changes are version-controlled and documented.

Applying NGS to the right clinical question and integrating results into embryo planning require multidisciplinary management.

Assesses how the NGS result may be used clinically within the IVF and transfer plan.
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Coordinates test scope, scientific validation, consent and data management.
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Manages biopsy, tubing, freezing and the result-to-embryo matching chain.
View profile →Clinical interpretation of genetic risk and test results should involve an appropriately qualified medical geneticist or genetic counsellor. The IVF and embryology team manages integration of testing into reproductive treatment.
If high data capacity is misunderstood, it can create unnecessary confidence or anxiety.
Using NGS does not mean that the entire genome or every disease has been tested.
DNA amplification bias can occur in samples containing very few cells.
Intermediate signals may be reported differently depending on laboratory thresholds.
Small changes may fall below the detection limit.
Algorithms and software versions can influence the result.
More detailed technical data do not necessarily mean a higher live-birth rate.
Answers about the role of NGS in PGT, test scope and technical limitations.
A family of next-generation sequencing technologies that read many DNA fragments in parallel to generate digital genetic data.
No. It is an analysis platform used in genetic testing.
No. PGT is a group of clinical tests; NGS is one of the platforms that may be used for those tests.
No. It can detect only findings within the test scope, resolution and reporting rules.
It assesses relative chromosome copy number and, depending on the platform, some segmental or mosaic signals.
Yes. It may be used in laboratory-validated methods for targeted variants and linkage markers.
One platform has not been shown to be superior in every setting; the whole workflow and laboratory validation are important.
Some intermediate signals may be reported as mosaic; thresholds and clinical interpretation vary between laboratories.
Incorrect or no-result analyses can occur because of sample, amplification, sequencing or algorithm-related factors.
It may take several days or longer depending on the test and laboratory workflow.
For embryo PGT, blastocyst biopsy is generally required.
PGT does not exclude all fetal genetic conditions; prenatal screening and diagnostic options should be offered.
No. Embryos are frozen during analysis and the result can be discussed remotely.
Test type, number of samples or embryos, test development, sequencing and the scope of bioinformatic analysis.