The short report will be focused on the genetic basis and possible mechanisms of tumorigenesis, common types of cancer, the importance of genetic diagnosis of cancer, and the methodology of cancer genetic diagnosis. T...The short report will be focused on the genetic basis and possible mechanisms of tumorigenesis, common types of cancer, the importance of genetic diagnosis of cancer, and the methodology of cancer genetic diagnosis. They will also review presymptomatic testing of hereditary cancers, and the application of expression profiling to identify patients likely to benefit from particular therapeutic approaches.展开更多
T-lymphoblastic lymphoma(T-LBL)is a rare and aggressive form of non-Hodgkin’s lymphoma and little is known about their molecular background.However,complex karyotypes were already related to this group of malignancy ...T-lymphoblastic lymphoma(T-LBL)is a rare and aggressive form of non-Hodgkin’s lymphoma and little is known about their molecular background.However,complex karyotypes were already related to this group of malignancy and associated with poor outcome.Here,we describe a 17-year-old female being diagnosed with T-LBL and a normal karyotype after standard G-banding with trypsin-Giemsa(GTG)-banding.However,further analyses including high-resolution molecular approaches,array-comparative genomic hybridization(aCGH),multiplex ligation-dependent probe amplification,fluorescence in situ hybridization and multicolor chromosome banding revealed a cryptic complex karyotype,NUP214-ABL1 gene fusion,episomes and intra-tumor genetic heterogeneity.In addition,homozygous loss of CDKN2A,as well as amplification of oncogene TLX1(HOX11)were detected.Actually,NUP214-ABL1 fusion gene replicated autonomously in this case as episomes.Overall,highly amplification of NUP214-ABL1 fusion gene defines possibly a new subgroup of T-LBL patients which accordingly could benefit from treatment with tyrosine kinase inhibitors.As episomes are missed in standard karyotyping aCGH should be performed routinely in T-LBL to possibly detect more of such cases.展开更多
Preimplantation genetic testing refers to the procedure to determine the genetic status of embryos formed by in vitro fertilization(IVF) prior to initiating a pregnancy.Traditional genetic methods for preimplantation ...Preimplantation genetic testing refers to the procedure to determine the genetic status of embryos formed by in vitro fertilization(IVF) prior to initiating a pregnancy.Traditional genetic methods for preimplantation genetic diagnosis(PGD) examine distinct parts of an individua genome, require the development of a custom assay for every patient family, and are time consuming and inefficient. In the last decade technologies for wholegenome amplification(WGA) from single cells have led to innovative strategies for preimplantation testing.Applications of WGA technology can lead to a universa approach that uses single-nucleotide polymorphisms(SNPs) and mutations across the entire genome for the analysis. Single-cell WGA by multiple displacement amplification has enabled a linkage approach to PGD known as "preimplantation genetic haplotyping", as well as microarray-based techniques for preimplantation diagnosis. The use of microarrays in preimplantation diagnosis has provided genome-wide testing for gains or losses of single chromosomes(aneuploidies)or chromosomal segments. Properly designed randomized controlled trials are, however, needed to determine whether these new technologies improve IVF outcomes by increasing implantation rates and decreasing mis-carriage rates. In genotype analysis of single cells, allele dropout occurs frequently at heterozygous loci. Preimplantation testing of multiple cells biopsied from blastocysts, however, can reduce allele dropout rates and increase the accuracy of genotyping, but it allows less time for PGD. Future development of fast SNP microarrays will enable a universal preimplantation testing for aneuploidies, single-gene disorders and unbalanced translocations within the time frame of an IVF cycle.展开更多
文摘The short report will be focused on the genetic basis and possible mechanisms of tumorigenesis, common types of cancer, the importance of genetic diagnosis of cancer, and the methodology of cancer genetic diagnosis. They will also review presymptomatic testing of hereditary cancers, and the application of expression profiling to identify patients likely to benefit from particular therapeutic approaches.
文摘T-lymphoblastic lymphoma(T-LBL)is a rare and aggressive form of non-Hodgkin’s lymphoma and little is known about their molecular background.However,complex karyotypes were already related to this group of malignancy and associated with poor outcome.Here,we describe a 17-year-old female being diagnosed with T-LBL and a normal karyotype after standard G-banding with trypsin-Giemsa(GTG)-banding.However,further analyses including high-resolution molecular approaches,array-comparative genomic hybridization(aCGH),multiplex ligation-dependent probe amplification,fluorescence in situ hybridization and multicolor chromosome banding revealed a cryptic complex karyotype,NUP214-ABL1 gene fusion,episomes and intra-tumor genetic heterogeneity.In addition,homozygous loss of CDKN2A,as well as amplification of oncogene TLX1(HOX11)were detected.Actually,NUP214-ABL1 fusion gene replicated autonomously in this case as episomes.Overall,highly amplification of NUP214-ABL1 fusion gene defines possibly a new subgroup of T-LBL patients which accordingly could benefit from treatment with tyrosine kinase inhibitors.As episomes are missed in standard karyotyping aCGH should be performed routinely in T-LBL to possibly detect more of such cases.
基金Supported by Department of Pediatrics,Medical College of Wisconsin,Milwaukee,WI,United States
文摘Preimplantation genetic testing refers to the procedure to determine the genetic status of embryos formed by in vitro fertilization(IVF) prior to initiating a pregnancy.Traditional genetic methods for preimplantation genetic diagnosis(PGD) examine distinct parts of an individua genome, require the development of a custom assay for every patient family, and are time consuming and inefficient. In the last decade technologies for wholegenome amplification(WGA) from single cells have led to innovative strategies for preimplantation testing.Applications of WGA technology can lead to a universa approach that uses single-nucleotide polymorphisms(SNPs) and mutations across the entire genome for the analysis. Single-cell WGA by multiple displacement amplification has enabled a linkage approach to PGD known as "preimplantation genetic haplotyping", as well as microarray-based techniques for preimplantation diagnosis. The use of microarrays in preimplantation diagnosis has provided genome-wide testing for gains or losses of single chromosomes(aneuploidies)or chromosomal segments. Properly designed randomized controlled trials are, however, needed to determine whether these new technologies improve IVF outcomes by increasing implantation rates and decreasing mis-carriage rates. In genotype analysis of single cells, allele dropout occurs frequently at heterozygous loci. Preimplantation testing of multiple cells biopsied from blastocysts, however, can reduce allele dropout rates and increase the accuracy of genotyping, but it allows less time for PGD. Future development of fast SNP microarrays will enable a universal preimplantation testing for aneuploidies, single-gene disorders and unbalanced translocations within the time frame of an IVF cycle.