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There is currently lack of an effective animal study model for SDS.
January 29, 2020
By: Boston Childrens Hospital
A new research tool that mimics the behavior of diseased bone marrow provides a new strategy for understanding the bone marrow disease, Shwachman-Diamond syndrome (SDS), and hopefully, developing new treatments. With SDS, bone marrow fails to produce blood cells normally, leading to bone marrow failure and an increased risk of leukemia. In a research paper published January 27 in Nature Biomedical Engineering, researchers describe how damaged bone marrow from SDS patients performed in the new tool, known as the organ-on-a-chip (Organ Chip). The bone marrow Organ Chip was developed in the lab of Donald Ingber, M.D., Ph.D., at the Wyss Institute for Biologically Inspired Engineering at Harvard University and a member of the Vascular Biology Program at Boston Children’s. The chip was evaluated with SDS bone marrow samples housed in the SDS Registry at Boston Children’s Hospital. Lack of an Effective Animal Study Model “We need to find better ways to treat SDS to either prevent leukemia or risk-stratify patients to figure out who would benefit from earlier intervention,” said co-author Akiko Shimamura, M.D., Ph.D., director of the Bone Marrow Failure and Myelodysplastic Syndrome Program at the Dana-Farber/Boston Children’s Cancer and Blood Disorders Center. Shimamura also co-directs the SDS national registry maintained at Boston Children’s Hospital in collaboration with Dr. Kasiani Myers at Cincinnati Children’s. However, progress has been slower than hoped because of the lack of a useful animal study model that could be used to mimic the behavior of SDS. Previous SDS animal studies produce very severe disease and animals die quickly, making it very difficult to research the medical complications that are typically found in SDS patients. In the paper, Ingber, Shimamura, and colleagues describe how the bone marrow Organ Chip effectively provides a model system to develop new treatments for SDS. “This model can be used for biological studies and for drug screening,” said Shimamura. “In my lab, we have identified some potential therapeutic targets for treating SDS that we hope to test with the new bone marrow chip.” 3D Bone Marrow Matrix The Ingber group developed the marrow-on-a chip with two hollow, parallel channels divided by a semi-permeable membrane. In the bone marrow study, the top channel was filled with blood-forming (hematopoietic) stem cells from the bone marrow of SDS patient and stromal cells, including bone marrow stem cells, derived from the bone marrow. Both are embedded in a matrix gel to mimic the three-dimensional nature of marrow tissue. The bottom chamber was lined with human endothelial cells to mimic the vasculature within bone marrow. A liquid medium that supports the growth of healthy bone marrow cells and their differentiation into many different blood cell types flows through the vascular channel. Healthy marrow was also applied to a set of organ chips to act as a healthy control group.
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