Related Experiment Video
Updated: Aug 11, 2026

Establishment of a Human Multiple Myeloma Xenograft Model in the Chicken to Study Tumor Growth, Invasion and Angiogenesis
Published on: May 1, 2015
Mechanisms of myeloma cell growth control
1Department of Immunology, Mayo Clinic, Rochester, Minnesota, USA.
Abstract:
By necessity, this article focuses on only a handful of molecules with demonstrated ability to affect growth of myeloma cells. The heterogeneity in growth-factor responsiveness has made formulation of a uniform hypothesis a daunting challenge. One trait that appears to be consistent among all myeloma patients is the uncoupling of the normally highly integrated relationship between terminal differentiation and loss of growth potential. Thus, the common feature in myeloma may not be the precise cytokines or cell-to-cell interactions that drive tumor-cell growth, but rather the underlying genetic traits that afford the tumor cell the ability to proliferate despite its relatively advanced stage of differentiation. The success of current strategies used to treat myeloma patients has thus far been somewhat limited, and in general, has only modestly prolonged survival. It is clear that successful treatment of this disease will require the development of new therapeutic agents aimed at the biochemical events that sustain the aberrant growth of the tumor cells. The knowledge of cell signaling, gene transcription, and cell growth and differentiation has expanded rapidly, and this information has provided a greater understanding of the cell biology of a variety of malignancies. Application of this information to the study of multiple myeloma, however, has thus far been relatively limited, primarily because the heterogeneity of the disease and the lack of appropriate model systems. Review of the literature, particularly over the last 5 years, reveals a significant number of exciting new findings in this field and the development of new model systems that are certain to yield greater insight into this devastating disease.
Insights
Multiple myeloma cells proliferate despite differentiation due to underlying genetic traits, not just growth factors. New therapies targeting aberrant cell growth are needed for better myeloma treatment outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Cell Biology
Background:
- Multiple myeloma is characterized by heterogeneous growth factor responsiveness, complicating uniform treatment hypotheses.
- A consistent feature is the uncoupling of terminal differentiation and growth potential in myeloma cells.
- Current treatments offer limited survival benefits, necessitating novel therapeutic strategies.
Purpose of the Study:
- To review recent advancements in understanding multiple myeloma cell biology.
- To highlight the need for new therapeutic agents targeting aberrant tumor cell growth.
- To discuss the challenges and progress in developing appropriate model systems for myeloma research.
Main Methods:
- Focus on a select group of molecules impacting myeloma cell growth.
- Review of scientific literature, particularly findings from the last five years.
- Analysis of emerging model systems for studying multiple myeloma.
Main Results:
- Identified a common trait in myeloma: dissociation of differentiation and growth potential.
- Highlighted the role of underlying genetic traits in myeloma cell proliferation.
- Acknowledged the limited success of current therapeutic strategies.
Conclusions:
- Aberrant proliferation in myeloma stems from intrinsic genetic factors rather than solely external signals.
- Developing new treatments targeting the biochemical pathways of myeloma cell growth is crucial.
- Advances in cell signaling and model systems promise greater insights into multiple myeloma.
More Related Videos
Related Concept Videos
Negative Regulator Molecules
Mitogens and the Cell Cycle
Abnormal Proliferation
mTOR Signaling and Cancer Progression
The mTOR pathway or the...
Differentiation of Common Myeloid Progenitor Cells
Molecular Factors Affecting Cell Division
Several proteins function as internal regulators to ensure each cell cycle stage is completed faithfully before proceeding to the next. Regulator molecules may act directly or influence the activity or production of other...

