Note to users. If you're seeing this message, it means that your browser cannot find this page's style/presentation instructions -- or possibly that you are using a browser that does not support current Web standards. Find out more about why this message is appearing, and what you can do to make your experience of our site the best it can be.

Site Tools

  • AAAS
  • Subscribe
  • Feedback

Site Search

Search Advanced

Science 7 November 1986:
Vol. 234. no. 4777, pp. 697 - 704
DOI: 10.1126/science.3535067

Articles

Science, Vol 234, Issue 4777, 697-704
Copyright © 1986 by American Association for the Advancement of Science


articles

Differentiation-linked leukemogenesis in lymphocytes

MF Greaves

Most human lymphoid malignancies preserve a pattern of gene expression reflecting their proliferative activity and the development level of clonal expansion and maturation arrest. Characteristics of leukemia and other cancer cells frequently considered to reflect aberrant differentiation may more often reflect clonal selection of cell types that are normally infrequent and transitory. The differentiation status of progenitor or mature lymphoid cells influences which genetic elements are at risk of being exploited, via mutation, recombination, or deletion, for clonal advantage. These alterations may frequently arise spontaneously as a consequence of the unique developmental and functional programs of lymphoid cells and have as a major phenotypic consequence the stabilization of transitory cellular phenotypes.


THIS ARTICLE HAS BEEN CITED BY OTHER ARTICLES:
REVIEW PAPER: Cancer Stem Cells and Cancer Nonstem Cells: From Adult Stem Cells or from Reprogramming of Differentiated Somatic Cells.
J. E. Trosko (2009)
Vet. Pathol. 46, 176-193
   Abstract »    Full Text »    PDF »
A set of genes that regulate cell proliferation predicts treatment outcome in childhood acute lymphoblastic leukemia.
C. Flotho, E. Coustan-Smith, D. Pei, C. Cheng, G. Song, C.-H. Pui, J. R. Downing, and D. Campana (2007)
Blood 110, 1271-1277
   Abstract »    Full Text »    PDF »
Novel pathway for megakaryocyte production after in vivo conditional eradication of integrin {alpha}IIb-expressing cells.
B. Jacquelin, T. Kortulewski, P. Vaigot, A. Pawlik, G. Gruel, O. Alibert, P. Soularue, C. Joubert, X. Gidrol, and D. T.-L. Roux (2005)
Blood 106, 1965-1974
   Abstract »    Full Text »    PDF »
Kaposi's sarcoma-associated herpesvirus-infected primary effusion lymphoma has a plasma cell gene expression profile.
R. G. Jenner, K. Maillard, N. Cattini, R. A. Weiss, C. Boshoff, R. Wooster, and P. Kellam (2003)
PNAS 100, 10399-10404
   Abstract »    Full Text »    PDF »
Loss of the B-lineage-specific gene expression program in Hodgkin and Reed-Sternberg cells of Hodgkin lymphoma.
I. Schwering, A. Brauninger, U. Klein, B. Jungnickel, M. Tinguely, V. Diehl, M.-L. Hansmann, R. Dalla-Favera, K. Rajewsky, and R. Kuppers (2003)
Blood 101, 1505-1512
   Abstract »    Full Text »    PDF »
Use of peripheral blood instead of bone marrow to monitor residual disease in children with acute lymphoblastic leukemia.
E. Coustan-Smith, J. Sancho, M. L. Hancock, B. I. Razzouk, R. C. Ribeiro, G. K. Rivera, J. E. Rubnitz, J. T. Sandlund, C.-H. Pui, and D. Campana (2002)
Blood 100, 2399-2402
   Abstract »    Full Text »    PDF »
Molecular tracking of leukemogenesis in a triplet pregnancy.
A. T. Maia, A. M. Ford, G. R. Jalali, C. J. Harrison, G. M. Taylor, O. B. Eden, and M. F. Greaves (2001)
Blood 98, 478-482
   Abstract »    Full Text »    PDF »
Early Child-Care and Preschool Experiences and the Risk of Childhood Acute Lymphoblastic Leukemia.
P. F. Rosenbaum, G. M. Buck, and M. L. Brecher (2000)
Am. J. Epidemiol. 152, 1136-1144
   Abstract »    Full Text »    PDF »
Residual Bone Marrow Leukemic Progenitor Cell Burden after Induction Chemotherapy in Pediatric Patients with Acute Lymphoblastic Leukemia.
F. M. Uckun, L. Stork, N. Seibel, M. Sarquis, C. Bedros, H. Sather, M. Sensel, G. H. Reaman, and P. S. Gaynon (2000)
Clin. Cancer Res. 6, 3123-3130
   Abstract »    Full Text »
Expression of Aberrantly Spliced Oncogenic Ikaros Isoforms in Childhood Acute Lymphoblastic Leukemia.
L. Sun, P. A. Goodman, C. M. Wood, M.-L. Crotty, M. Sensel, H. Sather, C. Navara, J. Nachman, P. G. Steinherz, P. S. Gaynon, et al. (1999)
J. Clin. Oncol. 17, 3753-3766
   Abstract »    Full Text »    PDF »
p21WAF1/Cip1 functions as a suppressor of malignant skin tumor formation and a determinant of keratinocyte stem-cell potential.
G. I. Topley, R. Okuyama, J. G. Gonzales, C. Conti, and G. P. Dotto (1999)
PNAS 96, 9089-9094
   Abstract »    Full Text »    PDF »
Structure and Possible Mechanisms of TEL-AML1 Gene Fusions in Childhood Acute Lymphoblastic Leukemia.
J. L. Wiemels and M. Greaves (1999)
Cancer Res. 59, 4075-4082
   Abstract »    Full Text »    PDF »
Biology and Treatment of Childhood T-Lineage Acute Lymphoblastic Leukemia.
F. M. Uckun, M. G. Sensel, L. Sun, P. G. Steinherz, M. E. Trigg, N. A. Heerema, H. N. Sather, G. H. Reaman, and P. S. Gaynon (1998)
Blood 91, 735-746
   Full Text »    PDF »
Clinical Features and Treatment Outcome of Children With Myeloid Antigen Positive Acute Lymphoblastic Leukemia: A Report From the Children's Cancer Group.
F. M. Uckun, H. N. Sather, P. S. Gaynon, D. C. Arthur, M. E. Trigg, D. G. Tubergen, J. Nachman, P. G. Steinherz, M. G. Sensel, and G. H. Reaman (1997)
Blood 90, 28-35
   Abstract »    Full Text »    PDF »
Clinical Features and Treatment Outcome of Children With Biphenotypic CD2+CD19+ Acute Lymphoblastic Leukemia: A Children's Cancer Group Study.
F. M. Uckun, P. Gaynon, H. Sather, D. Arthur, M. Trigg, D. Tubergen, J. Nachman, P. Steinherz, M. G. Sensel, and G. R. Reaman (1997)
Blood 89, 2488-2493
   Abstract »    Full Text »    PDF »
Exposure of B-lineage Lymphoid Cells to Low Energy Electromagnetic Fields Stimulates Lyn Kinase.
F. M. Uckun, T. Kurosaki, J. Jin, X. Jun, A. Morgan, M. Takata, J. Bolen, and R. Luben (1995)
J. Biol. Chem. 270, 27666-27670
   Abstract »    Full Text »    PDF »
Biotherapy of B-cell precursor leukemia by targeting genistein to CD19-associated tyrosine kinases.
F. Uckun, W. Evans, C. Forsyth, K. Waddick, L. Ahlgren, L. Chelstrom, A Burkhardt, J Bolen, and D. Myers (1995)
Science 267, 886-891
   Abstract »    PDF »
A model of human acute lymphoblastic leukemia in immune-deficient SCID mice.
S Kamel-Reid, M Letarte, C Sirard, M Doedens, T Grunberger, G Fulop, M. Freedman, R. Phillips, and J. Dick (1989)
Science 246, 1597-1600
   Abstract »    PDF »
The approaching era of the tumor suppressor genes.
G Klein (1987)
Science 238, 1539-1545
   Abstract »    PDF »
Clinical and Biologic Features of Childhood Acute Lymphoblastic Leukemia.
D. R. Miller (1987)
Clinical Pediatrics 26, 623-630
   PDF »



To Advertise     Find Products


Science. ISSN 0036-8075 (print), 1095-9203 (online)