Leukostasis, a life-threatening condition associated with leukemia, occurs when leukemia cells accumulate in and around the vasculature of organs such as the brain and lungs, leading to intracranial hemorrhage and respiratory failure. Recent evidence has shown that leukostasis is not simply due to the overcrowding of leukemia cells, as originally thought, but may results from specific mechanical interactions. The proposed research will investigate the nanomechanics of acute leukemia using atomic force microscopy (AFM) in an effort to improve the understanding and treatment of leukostasis. Quantitative mechanical properties of leukemia cells will be obtained by direct measurement of four poorly understood mechanisms likely involved in the condition: (1) deformability of individual leukemia cells, (2) cell-cell adhesion between leukemia cells leading to aggregation, (3) adhesion of leukemia cells to endothelium, and (4) transmigration of the leukemia cells into the endothelium. AFM data obtained with nanometer and nano-Newton resolution will provide new insight into the pathophysiology of leukostasis as well as guide targets for drug discovery and patient therapy.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Postdoctoral Individual National Research Service Award (F32)
Project #
1F32HL078531-01
Application #
6836427
Study Section
Special Emphasis Panel (ZRG1-F09 (20))
Program Officer
Mondoro, Traci
Project Start
2004-09-01
Project End
2007-08-31
Budget Start
2004-09-01
Budget End
2005-08-31
Support Year
1
Fiscal Year
2004
Total Cost
$57,578
Indirect Cost
Name
University of California Berkeley
Department
Biomedical Engineering
Type
Schools of Engineering
DUNS #
124726725
City
Berkeley
State
CA
Country
United States
Zip Code
94704
Lam, Wilbur A; Cao, Lizhi; Umesh, Vaibhavi et al. (2010) Extracellular matrix rigidity modulates neuroblastoma cell differentiation and N-myc expression. Mol Cancer 9:35