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Updated: Jul 15, 2026

Chromosome Preparation From Cultured Cells
Published on: January 28, 2014
Specific extra chromosomes occur in a modal number dependent pattern in pediatric acute lymphoblastic leukemia
Nyla A Heerema1, Susana C Raimondi, James R Anderson
1Department of Pathology, The Ohio State University, Columbus, OH 43210, USA. nyla.heerema@osumc.edu
Insights
High hyperdiploid childhood acute lymphoblastic leukemia (ALL) involves nonrandom chromosome gains. Specific chromosome gains follow a sequential pattern related to the modal number, suggesting a single abnormal cell division.
Area of Science:
- Pediatric oncology
- Cytogenetics
- Cancer genomics
Background:
- Childhood acute lymphoblastic leukemia (ALL) with high hyperdiploidy (>50 chromosomes) generally has a favorable prognosis.
- The acquisition of extra chromosomes in high hyperdiploid ALL is not random, with specific chromosomes gained more frequently.
Purpose of the Study:
- To investigate the relationship between specific extra chromosomes and the modal number (MN) in high hyperdiploid ALL.
- To determine if the pattern of extra chromosomes can distinguish high hyperdiploid ALL from near-triploid and near-tetraploid cases.
Main Methods:
- Karyotype analysis of 2,339 children diagnosed with high hyperdiploid ALL.
- Examination of the sequential pattern of chromosome gain as a function of increasing MN.
Main Results:
- A distinct, nonrandom sequential pattern of chromosome gain was observed across different MN ranges.
- Chromosomes gained at lower MN were retained as MN increased.
- Chromosome 21 showed a high frequency of tetrasomy across all MN, unlike other chromosomes.
Conclusions:
- High hyperdiploid pediatric ALL likely arises from a single abnormal mitotic division.
- The nonrandom chromosome gain patterns suggest specific chromosomes are preferentially involved, dependent on the number of aberrantly distributed chromosomes.
- Distinct patterns of trisomy and tetrasomy suggest different origins for high hyperdiploidy, near-trisomy, and near-tetrasomy.
Abstract:
Children with acute lymphoblastic leukemia (ALL) and high hyperdiploidy (>50 chromosomes) are considered to have a relatively good prognosis. The specific extra chromosomes are not random; extra copies of some chromosomes occur more frequently than those of others. We examined the extra chromosomes present in high hyperdiploid ALL to determine if there were a relation of the specific extra chromosomes and modal number (MN) and if the extra chromosomes present could differentiate high hyperdiploid from near-triploid and near-tetraploid cases. Karyotypes of 2,339 children with ALL and high hyperdiploidy at diagnosis showed a distinct nonrandom sequential pattern of gain for each chromosome as MN increased, with four groups of gain: chromosomes 21, X, 14, 6, 18, 4, 17, and 10 at MN 51-54; chromosomes 8, 5, 11, and 12 at MN 57-60; chromosomes 2, 3, 9,16, and 22 at MN 63-67; chromosomes 1, 7 13, 15, 19, and 20 at MN 68-79, and Y only at MN >or=80. Chromosomes gained at lower MN were retained as the MN increased. High hyperdiploid pediatric ALL results from a single abnormal mitotic division. Our results suggest that the abnormal mitosis involves specific chromosomes dependent on the number of chromosomes aberrantly distributed, raising provocative questions regarding the mitotic mechanism. The patterns of frequencies of tetrasomy of specific chromosomes differs from that of trisomies with the exception of chromosome 21, which is tetrasomic in a high frequency of cases at all MN. These results are consistent with different origins of high hyperdiploidy, near-trisomy, and near-tetrasomy.
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