Literature DB >> 19563474

Application of array-based whole genome scanning technologies as a cytogenetic tool in haematological malignancies.

Jaroslaw P Maciejewski1, Ramon V Tiu, Christine O'Keefe.   

Abstract

Karyotypic analysis provides useful diagnostic information in many haematological malignancies. However, standard metaphase cytogenetics has technical limitations that result in the underestimation of the degree of chromosomal changes. Array-based technologies can be used for karyotyping and can supplant some of the shortcomings of metaphase cytogenetics, and include single nucleotide polymorphism arrays (SNP-A) and comparative genomic hybridization arrays (CGH-A). Array-based cytogenetic tools do not rely on cell division, have superb resolution for unbalanced lesions and allow for the detection of copy number-neutral loss of heterozygosity, a type of lesion not seen with metaphase cytogenetics. Moreover, genomic array analysis is automated and results can be objectively and systematically analysed using biostatistical algorithms. As a potential advantage over genomic approaches, metaphase cytogenetics can detect balanced chromosomal defects and resolves clonal mosaicism. Initial studies performed in various haematological malignancies indicate the potential of SNP-A-based karyotyping as a useful clinical cytogenetic detection tool. The current effort is aimed at developing rational diagnostic algorithms for the detection of somatic defects and the establishment of clinical correlations for novel SNP-A-detected chromosomal defects, including acquired somatic uniparental disomy. SNP-A can complement metaphase karyotyping and will probably play an important role in clinical cytogenetic diagnostics.

Entities:  

Mesh:

Year:  2009        PMID: 19563474     DOI: 10.1111/j.1365-2141.2009.07757.x

Source DB:  PubMed          Journal:  Br J Haematol        ISSN: 0007-1048            Impact factor:   6.998


  46 in total

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2.  PTMScan direct: identification and quantification of peptides from critical signaling proteins by immunoaffinity enrichment coupled with LC-MS/MS.

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3.  Ring chromosome 5 in acute myeloid leukemia defined by whole-genome single nucleotide polymorphism array.

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4.  Prognostic impact of SNP array karyotyping in myelodysplastic syndromes and related myeloid malignancies.

Authors:  Ramon V Tiu; Lukasz P Gondek; Christine L O'Keefe; Paul Elson; Jungwon Huh; Azim Mohamedali; Austin Kulasekararaj; Anjali S Advani; Ronald Paquette; Alan F List; Mikkael A Sekeres; Michael A McDevitt; Ghulam J Mufti; Jaroslaw P Maciejewski
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5.  Array-based karyotyping for prognostic assessment in chronic lymphocytic leukemia: performance comparison of Affymetrix 10K2.0, 250K Nsp, and SNP6.0 arrays.

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Review 6.  Updates in cytogenetics and molecular markers in MDS.

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7.  Origins of myelodysplastic syndromes after aplastic anemia.

Authors:  Eiju Negoro; Yasunobu Nagata; Michael J Clemente; Naoko Hosono; Wenyi Shen; Aziz Nazha; Tetsuichi Yoshizato; Cassandra Hirsch; Bartlomiej Przychodzen; Reda Z Mahfouz; Teodora Kuzmanovic; Mikkael A Sekeres; Hideki Makishima; Seishi Ogawa; Jaroslaw P Maciejewski
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8.  Paroxysmal nocturnal hemoglobinuria with copy number-neutral 6pLOH in GPI (+) but not in GPI (-) granulocytes.

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Journal:  Eur J Haematol       Date:  2014-01-30       Impact factor: 2.997

Review 9.  The need for additional genetic markers for myelodysplastic syndrome stratification: what does the future hold for prognostication?

Authors:  Zaher K Otrock; Ramon V Tiu; Jaroslaw P Maciejewski; Mikkael A Sekeres
Journal:  Expert Rev Hematol       Date:  2013-02       Impact factor: 2.929

10.  Patterns of missplicing due to somatic U2AF1 mutations in myeloid neoplasms.

Authors:  Bartlomiej Przychodzen; Andres Jerez; Kathryn Guinta; Mikkael A Sekeres; Richard Padgett; Jaroslaw P Maciejewski; Hideki Makishima
Journal:  Blood       Date:  2013-06-17       Impact factor: 22.113

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