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1 hematopoietic cell transplantation and acute myelocytic leukemia.
2 acute lymphoblastic leukemia, and 1 chronic myelocytic leukemia.
3 ment of acute childhood leukemia and chronic myelocytic leukemia.
4 ignificant promise in the treatment of acute myelocytic leukemia.
5 ions (DLI) in patients with relapsed chronic myelocytic leukemia after allogeneic bone marrow transpl
6 locytic leukemia (APL) was noted among acute myelocytic leukemia (AML) cases at the Los Angeles Count
8 ients who were recently diagnosed with acute myelocytic leukemia (AML) were assigned randomly to stan
9 ) have been evaluated in patients with acute myelocytic leukemia (AML), both as potential priming age
10 elocytic leukemia and in some cases of acute myelocytic leukemia and acute lymphocytic leukemia, the
11 blood cells derived from patients with acute myelocytic leukemia and chronic myelocytic leukemia, whi
12 er survival in groups of patients with acute myelocytic leukemia and epithelial ovarian cancer who ha
13 n successfully administered to patients with myelocytic leukemia and has produced therapeutic effects
15 a RA-dependent manner in the NB-4, acute pro-myelocytic leukemia, and the MCF-7, breast carcinoma, ce
20 otein expression of kinases in K-562 chronic myelocytic leukemia (CML) cells elicited by treatment wi
22 ped progressive blast crisis (BC) of chronic myelocytic leukemia (CML) while receiving therapy with i
24 mportant roles in the progression of chronic myelocytic leukemia (CML), we performed allelotype analy
25 clin A1 overexpression was observed in acute myelocytic leukemias, especially those that were at the
26 s with acute myelocytic leukemia and chronic myelocytic leukemia, which express BCR-Abl, demonstrate
27 toire in four patients with relapsed chronic myelocytic leukemia who achieved a complete remission af