Stem cells in differentiation and neoplasia
- 1 January 1982
- journal article
- research article
- Published by Wiley in Journal of Cellular Physiology
- Vol. 113 (S1) , 3-11
- https://doi.org/10.1002/jcp.1041130405
Abstract
The stem cell concept continues to be very useful both for studies on cellular differentiation and for studies on neoplasia. At present the concept is being enlarged to include consideration of a new aspect: stem cell genetics, at the molecular level. Some questions are still to be answered. What is the basis for genetic regulation of “commitment,” that is, the transition from pluripotent stem cells to committed progenitor cells? Does neoplasia involve changes in the genetic material of hemopoietic stem cells? To illustrate the ways in which genetic approaches may be used to provide new answers to these important questions, a minimal model of commitment at the molecular level is presented. The model is based on the assumption that movable genetic elements may play a hitherto-unsuspected role in the early stages of stem cell differentiation. It provides a simple explanation for the apparent close association between loss of potential for stem cell renewal and commitment. The possibility that analogous movable genetic elements may be involved in both the development of neoplastic cells and the differentiation of normal cells is also discussed. The need for caution in interpreting evidence for apparent differences in the genetic material of normal and neoplastic cells is stressed.Keywords
This publication has 63 references indexed in Scilit:
- Chromosome Mediated Gene TransferAnnual Review of Biochemistry, 1981
- Transposable elements associated with constitutive expression of yeast alcohol dehydrogenase IICell, 1981
- Structure and in Vitro Transcription of Human Globin GenesScience, 1980
- Transposable elementsCell, 1980
- Insertion of a New Gene of Viral Origin into Bone Marrow Cells of MiceScience, 1980
- An immunoglobulin heavy chain variable region gene is generated from three segments of DNA: VH, D and JHCell, 1980
- Transforming activity of DNA of chemically transformed and normal cellsNature, 1980
- Discontinuous GenesNew England Journal of Medicine, 1978
- Free Flow Electrophoretic Separation of Bone Marrow Cells. Electrophoretic Distribution Analysis ofIn VivoColony Forming Cells in Mouse Bone MarrowHoppe-Seyler´s Zeitschrift Für Physiologische Chemie, 1972
- Hemopoietic spleen colony studiesDevelopmental Biology, 1967