Preimplantation genetic testing of Robertsonian translocation by SNP array-based preimplantation genetic haplotyping

2018 ◽  
Vol 38 (8) ◽  
pp. 547-554 ◽  
Author(s):  
Jing Wang ◽  
Yanhong Zeng ◽  
Chenhui Ding ◽  
Bin Cai ◽  
Baomin Lu ◽  
...  
Genes ◽  
2020 ◽  
Vol 11 (8) ◽  
pp. 871 ◽  
Author(s):  
Martine De Rycke ◽  
Veerle Berckmoes

Preimplantation genetic testing (PGT) has evolved into a well-established alternative to invasive prenatal diagnosis, even though genetic testing of single or few cells is quite challenging. PGT-M is in theory available for any monogenic disorder for which the disease-causing locus has been unequivocally identified. In practice, the list of indications for which PGT is allowed may vary substantially from country to country, depending on PGT regulation. Technically, the switch from multiplex PCR to robust generic workflows with whole genome amplification followed by SNP array or NGS represents a major improvement of the last decade: the waiting time for the couples has been substantially reduced since the customized preclinical workup can be omitted and the workload for the laboratories has decreased. Another evolution is that the generic methods now allow for concurrent analysis of PGT-M and PGT-A. As innovative algorithms are being developed and the cost of sequencing continues to decline, the field of PGT moves forward to a sequencing-based, all-in-one solution for PGT-M, PGT-SR, and PGT-A. This will generate a vast amount of complex genetic data entailing new challenges for genetic counseling. In this review, we summarize the state-of-the-art for PGT-M and reflect on its future.


2020 ◽  
Vol 20 (1) ◽  
Author(s):  
Wenbin Niu ◽  
Linlin Wang ◽  
Jiawei Xu ◽  
Ying Li ◽  
Hao Shi ◽  
...  

2020 ◽  
Author(s):  
Songchang Chen ◽  
Xuyang Yin ◽  
Sijia Zhang ◽  
Jun Xia ◽  
Ping Liu ◽  
...  

Abstract STUDY QUESTION Can whole genome sequencing (WGS) offer a relatively cost-effective approach for embryonic genome-wide haplotyping and preimplantation genetic testing (PGT) for monogenic disorders (PGT-M), aneuploidy (PGT-A) and structural rearrangements (PGT-SR)? SUMMARY ANSWER Reliable genome-wide haplotyping, PGT-M, PGT-A and PGT-SR could be performed by WGS with 10× depth of parental and 4× depth of embryonic sequencing data. WHAT IS KNOWN ALREADY Reduced representation genome sequencing with a genome-wide next-generation sequencing haplarithmisis-based solution has been verified as a generic approach for automated haplotyping and comprehensive PGT. Several low-depth massively parallel sequencing (MPS)-based methods for haplotyping and comprehensive PGT have been developed. However, an additional family member, such as a sibling, or a proband, is required for PGT-M haplotyping using low-depth MPS methods. STUDY DESIGN, SIZE, DURATION In this study, 10 families that had undergone traditional IVF-PGT and 53 embryos, including 13 embryos from two PGT-SR families and 40 embryos from eight PGT-M families, were included to evaluate a WGS-based method. There were 24 blastomeres and 29 blastocysts in total. All embryos were used for PGT-A. Karyomapping validated the WGS results. Clinical outcomes of the 10 families were evaluated. PARTICIPANTS/MATERIALS, SETTING, METHODS A blastomere or a few trophectoderm cells from the blastocyst were biopsied, and multiple displacement amplification (MDA) was performed. MDA DNA and bulk DNA of family members were used for library construction. Libraries were sequenced, and data analysis, including haplotype inheritance deduction for PGT-M and PGT-SR and read-count analysis for PGT-A, was performed using an in-house pipeline. Haplotyping with a proband and parent-only haplotyping without additional family members were performed to assess the WGS methodology. Concordance analysis between the WGS results and traditional PGT methods was performed. MAIN RESULTS AND THE ROLE OF CHANCE For the 40 PGT-M and 53 PGT-A embryos, 100% concordance between the WGS and single-nucleotide polymorphism (SNP)-array results was observed, regardless of whether additional family members or a proband was included for PGT-M haplotyping. For the 13 embryos from the two PGT-SR families, the embryonic balanced translocation was detected and 100% concordance between WGS and MicroSeq with PCR-seq was demonstrated. LIMITATIONS, REASONS FOR CAUTION The number of samples in this study was limited. In some cases, the reference embryo for PGT-M or PGT-SR parent-only haplotyping was not available owing to failed direct genotyping. WIDER IMPLICATIONS OF THE FINDINGS WGS-based PGT-A, PGT-M and PGT-SR offered a comprehensive PGT approach for haplotyping without the requirement for additional family members. It provided an improved complementary method to PGT methodologies, such as low-depth MPS- and SNP array-based methods. STUDY FUNDING/COMPETING INTEREST(S) This research was supported by the research grant from the National Key R&D Program of China (2018YFC0910201 and 2018YFC1004900), the Guangdong province science and technology project of China (2019B020226001), the Shenzhen Birth Defect Screening Project Lab (JZF No. [2016] 750) and the Shenzhen Municipal Government of China (JCYJ20170412152854656). This work was also supported by the National Natural Science Foundation of China (81771638, 81901495 and 81971344), the National Key R&D Program of China (2018YFC1004901 and 2016YFC0905103), the Shanghai Sailing Program (18YF1424800), the Shanghai Municipal Commission of Science and Technology Program (15411964000) and the Shanghai ‘Rising Stars of Medical Talent’ Youth Development Program Clinical Laboratory Practitioners Program (201972). The authors declare no competing interests. TRIAL REGISTRATION NUMBER N/A.


2019 ◽  
Author(s):  
Gang Li ◽  
Weiyi Shi ◽  
Wenbin Niu ◽  
Jiawei Xu ◽  
Yihong Guo ◽  
...  

Abstract Background: Balanced complex rearrangements (BCCRs) are balanced chromosomal structural aberrations that involve two or more chromosomes and at least three breakpoints. It is very rare in the population. Whether the couple of BCCRs benefit from preimplantation genetic testing (PGT) need to be further explored. Here, we reported the outcome of PGT in BCCRs carriers. Results: A total of 141 oocytes were retrieved from 7 couples within 10 PGT cycles, including 116 mature oocytes (MII), and 94 (81.03%) oocytes normally fertilized after intracytoplasmic sperm injection (ICSI). Then, 47 embryos were biopsied, including 8 embryos at the cleavage stage and 39 (41.49%) blastocysts. After comprehensive chromosome analysis, the balanced or normal embryo rate was 11.36% (5), the abnormal embryo rate was 88.63% (39), and 3 failed to amplify. Among them, the balanced or normal embryo rate was 33.33% (3) and the abnormal embryo rate was 66.67% (6) in the three-way rearrangements. The balanced or normal embryo rate was 5.6% (1) and the abnormal embryo rate was 94.4% (17) in double two-way translocations. The balanced or normal embryo rate was 5.9% (1) in exceptional CCRs, and the abnormal embryo rate was 94.1% (16). There were no significant differences among the three groups (P=0.11). In the 10 PGT cycles, there were 7 cycles in which no embryo could be transplanted and 3 cycles in which balanced or normal embryos underwent frozen-thawed embryo transplantation. One of the 3 cycles was clinically pregnant, and the prenatal diagnosis of amniocytes using G-band and SNP array at 16 weeks of gestation was 46, XN, and a boy was born alive and healthy. Conclusions: BCCR carriers have a high rate of obtaining abnormal embryos, but they can also have healthy offspring. For BCCR carriers with fertility needs, PGT is recommended to have related offspring, or they can choose sperm donor or ovum donation-assisted reproduction.


2021 ◽  
Author(s):  
Zhongyuan Yao ◽  
Xiaoxia Wang ◽  
Jun Zeng ◽  
Jing Zhao ◽  
Qiuping Xia ◽  
...  

Abstract BackgroundChromosomal mosaicism and aneuploidies are routine phenomena throughout human pre- and post-implantation development. The benefit of implanting mosaicism or aneuploidies is still controversial. The purposes of the study are to investigate the developmental potential of embryos with chromosomally segmental or mosaic abnormalities, and whether precise Next Generation Sequencing (NGS) resolution would reduce the development of an abnormal embryo in preimplantation genetic testing (PGT) cycles.MethodsThe peripheral blood of 17 PGT babies were collected for single nucleotide polymorphism (SNP) array and were compared with trophectoderm (TE) biopsy results at different NGS resolutions.Results76.5% (13/17) of babies’ peripheral blood chromosome analysis was consistent with 10Mb TE biopsies and 58.8% (10/17) of babies’ analysis was consistent with 4Mb TE biopsies. 2 babies who had euploid TE showed abnormal peripheral blood chromosome analysis. 17.6% (3/17) embryos with aberrant TE biopsies produced healthy babies. Although the sensitivity of 10Mb was lower than 4Mb (25% vs. 50%), the specificity (100% vs. 76.9%), PPV (100% vs. 40%) and diagnostic accuracy (82.4% vs. 70.6%) of 10Mb showed better results than 4Mb.Conclusion(s)The chromosomal results between peripheral blood samples and TE biopsies of born babies are not completely congruent. Aneuploid and mosaic embryos have potential to produce healthy babies, whereas normal embryos also have chance to produce babies with chromosomal abnormalities. In spite of low sensitivity of both resolutions, 10Mb has higher specificity, PPV and diagnostic accuracy than 4Mb. It is suggested that TE biopsy be analyzed in both 10Mb and 4Mb resolutions to uncover severely adverse chromosomal aberrations but use 10Mb resolution to guide transfer.Trial registrationThe study was retrospectively registered in the Chinese Clinical Trial Registry (ChiCTR2100042522).


2020 ◽  
Author(s):  
Reda Zenagui ◽  
Izabel Bernicot ◽  
Cendrine Ciabrini ◽  
Alice Ferrieres Hoa ◽  
Christel Castelli ◽  
...  

Abstract Robertsonian translocation (RT) carriers are phenotypically normal, but they are known to be at increased risk of repeated miscarriages compared with the general population estimated at about 15% of pregnancies, and also resulting in the birth of a child with a mental retardation or congenital anomalies. Preimplantation Genetic Testing (PGT) is therefore a solution for RT carriers. An appropriate probe strategy allows to differentiate balanced embryos, unbalanced embryos, and mosaic embryos. We performed the first comparative analysis between two or three probes FISH strategies to analyze if a probe strategy choice for PGT-SR studies of Robertsonian translocations (RT) influences the fate of embryos? Our investigations present 13 years of experience of PGT for Robertsonian translocation carriers to improve the accuracy of abnormality detections. A deeper analysis of 283 PGT-SR attempts by comparing two strategies of probes highlighted the irrelevance of using a third probe for FISH diagnosis and above all a significant difference of mosaic embryo rates between probe strategies. These findings could be used as new recommendations of Robertsonian translocation management in many laboratories to improve their practices. It could be readily run, less expensive, reliable and accurate. Furthermore, the propounded strategy of mosaic embryo transfer should be considered after a detailed genetic counseling.


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