| Literature DB >> 15176974 |
Andrea Bisognin1, Stefania Bortoluzzi, Gian Antonio Danieli.
Abstract
BACKGROUND: Rhabdomyosarcoma is a relatively common tumour of the soft tissue, probably due to regulatory disruption of growth and differentiation of skeletal muscle stem cells. Identification of genes differentially expressed in normal skeletal muscle and in rhabdomyosarcoma may help in understanding mechanisms of tumour development, in discovering diagnostic and prognostic markers and in identifying novel targets for drug therapy.Entities:
Mesh:
Year: 2004 PMID: 15176974 PMCID: PMC446182 DOI: 10.1186/1471-2105-5-68
Source DB: PubMed Journal: BMC Bioinformatics ISSN: 1471-2105 Impact factor: 3.169
Muscle and RMS gene density in the human genome.
| 14.09 | 14.75 | p36.21* | + | ||||||
| 50.16 | 50.79 | p32.3 | + | ||||||
| 63.86 | 64.11 | p31.3 | + | 59.57 | 59.69 | q21.2 | + | ||
| 91.99 | 92.09 | p22.1 | - | 94.91 | 95.14 | q32.1 | - | ||
| 96.84 | 97.50 | p21.3 | - | ||||||
| 173.14 | 173.59 | q25.2 | - | ||||||
| + | |||||||||
| 99.66 | 100.17 | q11.2 | - | 65.07 | 65.58 | q23.3 | - | ||
| 137.73 | 138.53 | q22.1 | + | 71.51 | 71.57 | q24.2 | - | ||
| 143.91 | 144.65 | q22.2-q22.3 | + | ||||||
| - | |||||||||
| q34 | - | ||||||||
| 29.28 | 29.78 | p24.1 | - | ||||||
| 37.17 | 37.19 | p22.3 | - | ||||||
| 37.24 | 37.61 | p22.3 | - | ||||||
| 61.51 | 62.03 | p14.2 | - | 22.97 | 23.04 | q11.2 | - | ||
| 76.79 | 77.61 | p12.3* | + | ||||||
| 101.86 | 102.32 | q12.2-q12.3 | - | ||||||
| 116.71 | 117.55 | q13.31 | + | ||||||
| 160.38 | 160.91 | q25.33 | - | ||||||
| 176.08 | 176.82 | q26.31 | - | ||||||
| 53.52 | 54.15 | q12 | + | ||||||
| 87.50 | 88.06 | q21.3 | - | ||||||
| 114.54 | 114.90 | q25-q26 | - | - | |||||
| 151.75 | 152.30 | q31.23-q31.3 | - | 88.74 | 88.88 | q24.3* | + | ||
| 162.88 | 163.45 | q32.2 | - | ||||||
| 168.14 | 168.84 | q32.3 | + | ||||||
| 19.37 | 20.08 | p14.3 | + | ||||||
| 89.80 | 90.59 | q14.3 | + | 44.45 | 44.72 | q21.31 | - | ||
| 92.87 | 93.54 | q15 | + | 45.08 | 45.13 | q21.31 | - | ||
| 168.12 | 168.58 | q34-q35.1 | - | ||||||
| 20.70 | 21.19 | p22.3 | - | ||||||
| 37.94 | 38.43 | p21.2 | - | ||||||
| 44.67 | 45.37 | 21.1* | + | 7.66 | 8.29 | p11.23 | - | ||
| 69.40 | 70.07 | q12-q13 | - | - | |||||
| 128.69 | 129.74 | q22.33 | - | ||||||
| 152.69 | 153.01 | q25.2 | + | ||||||
| 36.54 | 37.32 | p14.2-p14.1 | + | ||||||
| 100.90 | 10.1 | q22.1* | + | 38.48 | 38.54 | q13.11* | + | ||
| 109.95 | 110.64 | q31.1 | - | ||||||
| 132.56 | 133.21 | q33 | - | ||||||
| 98.97 | 99.41 | q22.2 | - | 8.18 | 8.71 | p12.3 | - | ||
| 8.41 | 8.90 | p24.1 | - | ||||||
| 109.93 | 109.99 | q32* | + | 16.32 | 16.61 | q21.1 | - | ||
| 121.63 | 122.47 | q33.3* | + | ||||||
| 0.50 | 0.75 | p15.3* | + | ||||||
| 75.66 | 76.54 | q22.2* | + | 31.87 | 32.74 | q12.3* | + | ||
| 78.64 | 79.18 | q22.3 | - | ||||||
| 94.41 | 94.48 | q23.33 | - | ||||||
| 108.33 | 109.16 | q25.1 | + | ||||||
| 10.20 | 10.28 | p15.4 | - | ||||||
| 10.34 | 10.34 | p15.4 | - | 8.74 | 9.47 | p22.31-p22.22* | + | ||
| 83.54 | 84.02 | q21.2 | - | ||||||
| - | 94.08 | 94.79 | q21.33 | - | |||||
| 26.85 | 26.92 | p11.23 | - | - | - | - | |||
Local density of genes expressed in skeletal muscle and in RMS was calculated on the basis of 304,691 sliding windows, 1 Mb-wide and with 10 Kb overlap. Chromosomal regions in which the absolute difference between RMS and skeletal muscle gene density was over 0.6 were selected. Thirty-three chromosomal regions harbouring mostly genes expressed in RMS and 48 chromosomal segments, possibly related to function of differentiated skeletal muscle but silent in RMS are reported. Regions including chromosomal segments in which absolute difference between ARMS and skeletal muscle gene density exceeded 1.0 are in bold, whereas asterisks indicate regions in which overexpression of tumour genes has been reported for different tissues by Zhou and colleagues [10].
Figure 2Regions of human chromosomes with absolute difference between RMS and skeletal muscle gene density over 0.6. Thirty-three chromosomal regions harboring mostly genes expressed in RMS are boxed with continue line, whereas 48 chromosomal segments, possibly related to function of differentiated skeletal muscle but silent in RMS are indicated by dashed boxes.
Figure 1Density of skeletal muscle and of RMS genes associated sequences along human X chromosome. Gene density was calculated in chromosomal regions spanned by sliding windows, as the fraction of genomic sequence covered by gene-associated sequences, on the basis of 15,165 windows of 1 Mb with an overlap between adjacent windows of 10 Kb. As an example, details about gene density on the human X chromosome are shown. Gene density values were normalized to the total number of expressed genes and plotted together on the same base-pair scale axis. Chromosomal regions in which absolute difference between RMS and skeletal muscle gene density was over 0.6 were selected. On the X chromosome, one region resulted to harbour mostly genes expressed in RMS (p22.31-p22.22) and two regions resulted to contain genes expressed in fully differentiated muscle but silent in RMS (q21.2 and q21.33). Complete plots of gene densities along all human chromosomes are available as supplementary material [14].