Please wait a minute...
Frontiers of Medicine

ISSN 2095-0217

ISSN 2095-0225(Online)

CN 11-5983/R

邮发代号 80-967

2019 Impact Factor: 3.421

Frontiers of Medicine  2019, Vol. 13 Issue (3): 378-387   https://doi.org/10.1007/s11684-018-0658-4
  本期目录
Homoharringtonine is a safe and effective substitute for anthracyclines in children younger than 2 years old with acute myeloid leukemia
Xiaoxiao Chen, Yanjing Tang, Jing Chen, Ru Chen, Longjun Gu, Huiliang Xue, Ci Pan, Jingyan Tang(), Shuhong Shen()
Key Laboratory of Pediatric Hematology and Oncology Ministry of Health, Department of Hematology and Oncology, Pediatric Translational Medicine Institute, Shanghai Children’s Medical Center, Shanghai Jiao Tong University School of Medicine, Shanghai 200127, China
 全文: PDF(679 KB)   HTML
Abstract

Homoharringtonine (HHT), a plant alkaloid from Cephalotaxus harringtonia, exhibits a unique anticancer mechanism and has been widely used in China to treat patients with acute myeloid leukemia (AML) since the 1970s. Trial SCMC-AML-2009 presented herein was a randomized clinical study designed based on our previous findings that pediatric AML patients younger than two years old may benefit from HHT-containing chemotherapy regimens. Patients randomized to arm A were treated with a standard chemotherapy regimen comprising mainly of anthracyclines and cytarabine (Ara-C), whereas patients in arm B were treated with HHT-containing regimens in which anthracyclines in all but the initial induction therapy were replaced by HHT. From February 2009 to November 2015, 59 patients less than 2 years old with de novo AML (other than acute promyelocytic leukemia) were recruited. A total of 42 patients achieved a morphologic complete remission (CR) after the first course, with similar rates in both arms (70.6% vs.72.0%). At the end of the follow-up period, 40 patients remained in CR and 5 patients underwent hematopoietic stem cell transplantation in CR, which could not be considered as events but censors. The 5-year event-free survival (EFS) was 60.2%±9.6% for arm A and 88.0%±6.5% for arm B (P=0.024). Patients in arm B experienced shorter durations of leukopenia, neutropenia, and thrombocytopenia and had a lower risk of infection during consolidation chemotherapy with high-dosage Ara-C. Consequently, the homoharringtonine-based regimen achieved excellent EFS and alleviated hematologic toxicity for children aged younger than 2 years with de novo AML compared with the anthracycline-based regimen.

Key wordshomoharringtonine    acute myeloid leukemia    pediatrics
收稿日期: 2017-10-28      出版日期: 2019-06-05
Corresponding Author(s): Jingyan Tang,Shuhong Shen   
 引用本文:   
. [J]. Frontiers of Medicine, 2019, 13(3): 378-387.
Xiaoxiao Chen, Yanjing Tang, Jing Chen, Ru Chen, Longjun Gu, Huiliang Xue, Ci Pan, Jingyan Tang, Shuhong Shen. Homoharringtonine is a safe and effective substitute for anthracyclines in children younger than 2 years old with acute myeloid leukemia. Front. Med., 2019, 13(3): 378-387.
 链接本文:  
https://academic.hep.com.cn/fmd/CN/10.1007/s11684-018-0658-4
https://academic.hep.com.cn/fmd/CN/Y2019/V13/I3/378
Fig.1  
Arm A
(n=34)
Arm B
(n=25)
P
Age (year) 1.14±0.45 0.99±0.38 0.175
Gender (n) 0.022
Male 25 11
Female 9 14
FAB subtype (n) 0.089
M1 1 0
M2 1 1
M4 4 5
M5 16 17
M7 12 2
Features at diagnosis
WBC median, range (×109/L) 13.85 (2.20–355.4) 15.00 (2.10–160) 0.230
PLT median, range (×109/L) 36 (8–224) 49 (8–244) 0.632
LDH median, range (U/L) 2123 (503–9000) 2460 (689–11 250) 0.821
Fusion genes (n)
RUNX1-RUNXT1 0 1 0.876
CBFb-MYH11 1 2 0.784
MLLr 5 4 1.0
Tab.1  
Fig.2  
Fig.3  
Fig.4  
Pathogeny A B
Gram positive 17 11
Staphylococci
S. aureus 3 0
S. hemolyticus 1 0
S. simulans 0 1
S. hominis 1 0
S. epidemidis 1 4
S. lentus 3 1
Streptococci
S. oralis 1 0
S. mitis 4 3
S. pneumonia 0 1
Granulicatella adiacens 1 0
Micrococcus luteus 1 0
E. enterococcus 1 0
Others* 0 1
Gram negative 14 14
E. coli 2 2
E. cloacae 1 0
Klebsiella spp. 10 5
Morganella 0 1
Sphingomonas paucimobilis 1 0
Burkholderia cepacia 0 2
P. aeruginosa 0 3
Others* 0 1
Candida parapsilosis 0 1
Tab.2  
Fig.5  
1 GJ Kaspers. Pediatric acute myeloid leukemia. Expert Rev Anticancer Ther 2012; 12(3): 405–413
https://doi.org/10.1586/era.12.1 pmid: 22369331
2 JD de Rooij, CM Zwaan, M van den Heuvel-Eibrink. Pediatric AML: from biology to clinical management. J Clin Med 2015; 4(1): 127–149
https://doi.org/10.3390/jcm4010127 pmid: 26237023
3 T Taga, D Tomizawa, H Takahashi, S Adachi. Acute myeloid leukemia in children: current status and future directions. Pediatr Int 2016; 58(2): 71–80
https://doi.org/10.1111/ped.12865 pmid: 26645706
4 CY Luo, JY Tang, YP Wang. Homoharringtonine: a new treatment option for myeloid leukemia. Hematology 2004; 9(4): 259–270
https://doi.org/10.1080/10245330410001714194 pmid: 15621733
5 S Lü, J Wang. Homoharringtonine and omacetaxine for myeloid hematological malignancies. J Hematol Oncol 2014; 7(1): 2
https://doi.org/10.1186/1756-8722-7-2 pmid: 24387717
6 J Jin, DZ Jiang, WY Mai, HT Meng, WB Qian, HY Tong, J Huang, LP Mao, Y Tong, L Wang, ZM Chen, WL Xu. Homoharringtonine in combination with cytarabine and aclarubicin resulted in high complete remission rate after the first induction therapy in patients with de novo acute myeloid leukemia. Leukemia 2006; 20(8): 1361–1367
https://doi.org/10.1038/sj.leu.2404287 pmid: 16791270
7 HM Kantarjian, M Talpaz, V Santini, A Murgo, B Cheson, SM O'Brien. Homoharringtonine: history, current research, and future direction. Cancer 2001; 92(6): 1591–1605
pmid: 11745238
8 H Tong, Y Ren, F Zhang, J Jin. Homoharringtonine affects the JAK2-STAT5 signal pathway through alteration of protein tyrosine kinase phosphorylation in acute myeloid leukemia cells. Eur J Haematol 2008; 81(4): 259–266
https://doi.org/10.1111/j.1600-0609.2008.01116.x pmid: 18616510
9 E Feldman, Z Arlin, T Ahmed, A Mittelman, C Puccio, H Chun, P Cook, P Baskind. Homoharringtonine is safe and effective for patients with acute myelogenous leukemia. Leukemia 1992; 6(11): 1185–1188
pmid: 1434802
10 J Tang, Y Liu, J Chen, H Xue, C Pan, L Gu. Homoharringtonine as a backbone drug for the treatment of newly diagnosed pediatric acute myeloid leukemia: a report from a single institution in China. Int J Hematol 2011; 93(5): 610–617
https://doi.org/10.1007/s12185-011-0837-4 pmid: 21509439
11 BD Cheson, JM Bennett, KJ Kopecky, T Büchner, CL Willman, EH Estey, CA Schiffer, H Doehner, MS Tallman, TA Lister, F Lo-Coco, R Willemze, A Biondi, W Hiddemann, RA Larson, B Löwenberg, MA Sanz, DR Head, R Ohno, CD Bloomfield; International Working Group for Diagnosis, Standardization of Response Criteria, Treatment Outcomes, and Reporting Standards for Therapeutic Trials in Acute Myeloid Leukemia. Revised recommendations of the International Working Group for Diagnosis, Standardization of Response Criteria, Treatment Outcomes, and Reporting Standards for Therapeutic Trials in Acute Myeloid Leukemia. J Clin Oncol 2003; 21(24): 4642–4649
https://doi.org/10.1200/JCO.2003.04.036 pmid: 14673054
12 T Lehrnbecher, D Varwig, J Kaiser, D Reinhardt, T Klingebiel, U Creutzig. Infectious complications in pediatric acute myeloid leukemia: analysis of the prospective multi-institutional clinical trial AML-BFM 93. Leukemia 2004; 18(1): 72–77
https://doi.org/10.1038/sj.leu.2403188 pmid: 14586478
13 K Bochennek, A Hassler, C Perner, J Gilfert, S Schöning, T Klingebiel, D Reinhardt, U Creutzig, T Lehrnbecher. Infectious complications in children with acute myeloid leukemia: decreased mortality in multicenter trial AML-BFM 2004. Blood Cancer J 2016; 6(1): e382
https://doi.org/10.1038/bcj.2015.110 pmid: 26771808
14 H Wisplinghoff, H Seifert, RP Wenzel, MB Edmond. Current trends in the epidemiology of nosocomial bloodstream infections in patients with hematological malignancies and solid neoplasms in hospitals in the United States. Clin Infect Dis 2003; 36(9): 1103–1110
https://doi.org/10.1086/374339 pmid: 12715303
15 RG Powell, D Weisleder, CR Jr Smith, WK Rohwedder. Structures of harringtonine, isoharringtonine, and homoharringtonine. Tetrahedron Lett 1970; 11(11): 815–818
https://doi.org/10.1016/S0040-4039(01)97839-6 pmid: 5436615
16 LF Gu, WG Zhang, FX Wang, XM Cao, YX Chen, AL He, J Liu, XR Ma. Low dose of homoharringtonine and cytarabine combined with granulocyte colony-stimulating factor priming on the outcome of relapsed or refractory acute myeloid leukemia. J Cancer Res Clin Oncol 2011; 137(6): 997–1003
https://doi.org/10.1007/s00432-010-0947-z pmid: 21152934
17 W Yu, L Mao, J Qian, W Qian, H Meng, W Mai, H Tong, Y Tong, J Jin. Homoharringtonine in combination with cytarabine and aclarubicin in the treatment of refractory/relapsed acute myeloid leukemia: a single-center experience. Ann Hematol 2013; 92(8): 1091–1100
https://doi.org/10.1007/s00277-013-1758-5 pmid: 23595277
18 CT Tan, E Luks, DM Bacha, P Steinherz, L Steinherz, A Mondora. Phase I trial of homoharringtonine in children with refractory leukemia. Cancer Treat Rep 1987; 71(12): 1245–1248
pmid: 3480043
19 BA Bell, MN Chang, HJ Weinstein. A phase II study of homoharringtonine for the treatment of children with refractory or recurrent acute myelogenous leukemia: a pediatric oncology group study. Med Pediatr Oncol 2001; 37(2): 103–107
https://doi.org/10.1002/mpo.1177 pmid: 11496347
20 J Tang, H Xue, C Pan, J Chen, L Gu, H Zhao. A homoharringtonine-based regimen for childhood acute myelogenous leukemia. Med Pediatr Oncol 2003; 41(1): 70–72
https://doi.org/10.1002/mpo.10264 pmid: 12764750
21 TA Gruber, JR Downing. The biology of pediatric acute megakaryoblastic leukemia. Blood 2015; 126(8): 943–949
https://doi.org/10.1182/blood-2015-05-567859 pmid: 26186939
22 JD de Rooij, C Branstetter, J Ma, Y Li, MP Walsh, J Cheng, A Obulkasim, J Dang, J Easton, LJ Verboon, HL Mulder, M Zimmermann, C Koss, P Gupta, M Edmonson, M Rusch, JY Lim, K Reinhardt, M Pigazzi, G Song, AE Yeoh, LY Shih, DC Liang, S Halene, DS Krause, J Zhang, JR Downing, F Locatelli, D Reinhardt, MM van den Heuvel-Eibrink, CM Zwaan, M Fornerod, TA Gruber. Pediatric non-Down syndrome acute megakaryoblastic leukemia is characterized by distinct genomic subsets with varying outcomes. Nat Genet 2017; 49(3): 451–456
https://doi.org/10.1038/ng.3772 pmid: 28112737
23 Y Hara, N Shiba, K Ohki, K Tabuchi, G Yamato, MJ Park, D Tomizawa, A Kinoshita, A Shimada, H Arakawa, AM Saito, N Kiyokawa, A Tawa, K Horibe, T Taga, S Adachi, T Taki, Y Hayashi. Prognostic impact of specific molecular profiles in pediatric acute megakaryoblastic leukemia in non-Down syndrome. Genes Chromosomes Cancer 2017; 56(5): 394–404
https://doi.org/10.1002/gcc.22444 pmid: 28063190
24 A Simon. Risk factors for and prevention of bloodstream infection in pediatric AML—the debate continues. Pediatr Blood Cancer 2017; 64(3): e26300
https://doi.org/10.1002/pbc.26300 pmid: 27786408
25 AE Rogers, KM Eisenman, SA Dolan, KM Belderson, JR Zauche, S Tong, J Gralla, JM Hilden, M Wang, KW Maloney, SR Dominguez. Risk factors for bacteremia and central line-associated blood stream infections in children with acute myelogenous leukemia: a single-institution report. Pediatr Blood Cancer 2017; 64(3): e26254
https://doi.org/10.1002/pbc.26254 pmid: 27616655
26 AC Mertens, Q Liu, JP Neglia, K Wasilewski, W Leisenring, GT Armstrong, LL Robison, Y Yasui. Cause-specific late mortality among 5-year survivors of childhood cancer: the Childhood Cancer Survivor Study. J Natl Cancer Inst 2008; 100(19): 1368–1379
https://doi.org/10.1093/jnci/djn310 pmid: 18812549
27 M Jarfelt, NH Andersen, H Hasle. Is it possible to cure childhood acute myeloid leukaemia without significant cardiotoxicity? Br J Haematol 2016; 175(4): 577–587
https://doi.org/10.1111/bjh.14374 pmid: 27739070
28 W Leung, MM Hudson, DK Strickland, S Phipps, DK Srivastava, RC Ribeiro, JE Rubnitz, JT Sandlund, LE Kun, LC Bowman, BI Razzouk, P Mathew, P Shearer, WE Evans, CH Pui. Late effects of treatment in survivors of childhood acute myeloid leukemia. J Clin Oncol 2000; 18(18): 3273–3279
https://doi.org/10.1200/JCO.2000.18.18.3273 pmid: 10986060
29 P Temming, A Qureshi, J Hardt, AD Leiper, G Levitt, PJ Ancliff, DKH Webb. Prevalence and predictors of anthracycline cardiotoxicity in children treated for acute myeloid leukaemia: retrospective cohort study in a single centre in the United Kingdom. Pediatr Blood Cancer 2011; 56(4): 625–630
https://doi.org/10.1002/pbc.22908 pmid: 21298750
30 M Jarfelt, NH Andersen, H Glosli, K Jahnukainen, GK Jónmundsson, J Malmros, K Nysom, H Hasle; Nordic Society of Pediatric Hematology and Oncology (NOPHO). Cardiac function in survivors of childhood acute myeloid leukemia treated with chemotherapy only: a NOPHO-AML study. Eur J Haematol 2016; 57(7): 55–62 doi:10.1111/ejh.12683 PMID:26383901
31 Y Wang, D Lin, H Wei, W Li, B Liu, C Zhou, K Liu, Y Mi, J Wang. Long-term follow-up of homoharringtonine plus all-trans retinoic acid-based induction and consolidation therapy in newly diagnosed acute promyelocytic leukemia. Int J Hematol 2015; 101(3): 279–285
https://doi.org/10.1007/s12185-014-1730-8 pmid: 25563706
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed