Literature DB >> 29080258

MYD88 mutation status does not impact overall survival in Waldenström macroglobulinemia.

Jithma P Abeykoon1, Jonas Paludo1,2, Rebecca L King3, Stephen M Ansell1,2, Morie A Gertz1,2, Betsy R LaPlant4, Alese E Halvorson4, Wilson I Gonsalves1,2, David Dingli1,2, Hong Fang3, S Vincent Rajkumar1,2, Martha Q Lacy1,2, Rong He3, Taxiarchis Kourelis1, Craig B Reeder5, Anne J Novak2, Ellen D McPhail3, David S Viswanatha3, Thomas E Witzig1,2, Ronald S Go1,2, Thomas M Habermann1,2, Francis K Buadi1,2, Angela Dispenzieri1,2, Nelson Leung1,2, Yi Lin1,2, Carrie A Thompson1,2, Suzanne R Hayman1,2, Robert A Kyle1,2, Shaji K Kumar1,2, Prashant Kapoor1,2.   

Abstract

Waldenström macroglobulinemia (WM) is an immunoglobulin M-associated lymphoma, with majority of cases demonstrating MYD88 locus alteration, most commonly, MYD88L265P . Owing to low prevalence of the wild-type (WT) MYD88 genotype in WM, clinically relevant data in this patient population are sparse, with one study showing nearly a 10-fold increased risk of mortality in this subgroup compared to patients with MYD88L265P mutation. We studied a large cohort of patients with MYD88L265P and MYD88WT WM, evaluated at Mayo Clinic, Rochester, between 1995 and 2016, to specifically assess the impact of these genotypes on clinical course. Of 557 patients, MYD88L265P mutation status, as determined by allele-specific polymerase chain reaction, was known in 219, and 174 (79%) of those exhibited MYD88L265P , 157 of 174 patients had active disease. Of 45 (21%) patients with MYD88WT genotype, 44 had active disease. The estimated median follow-up was 7.0 years; median overall survival was 10.2 years (95% CI: 8.4-16.5) for MYD88L265P versus 13.9 years (95% CI: 6.4-29.3) for the MYD88WT (P = 0.86). The time-to-next therapy from frontline treatment and the presenting features were similar in the two patient populations. For patients with smoldering WM at diagnosis, the median time-to-progression to active disease was 2.8 years (95% CI: 2.2-3.8) in the MYD88L265P cohort and 1.9 years (95% CI: 0.7-3.1) in the MYD88WT cohort (P = 0.21). The frequency of transformation to high-grade lymphoma, or the development of therapy-elated myelodysplastic syndrome was higher in the MYD88WT cohort (16% versus 4% in the MYD88L265P , P = 0.009). In conclusion, MYD88L265P mutation does not appear to be a determinant of outcome, and its presence may not be a disease-defining feature in WM. Our findings warrant external validation, preferably through prospective studies.
© 2017 Wiley Periodicals, Inc.

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Year:  2017        PMID: 29080258     DOI: 10.1002/ajh.24955

Source DB:  PubMed          Journal:  Am J Hematol        ISSN: 0361-8609            Impact factor:   10.047


  20 in total

1.  Insights into the genomic landscape of MYD88 wild-type Waldenström macroglobulinemia.

Authors:  Zachary R Hunter; Lian Xu; Nickolas Tsakmaklis; Maria G Demos; Amanda Kofides; Cristina Jimenez; Gloria G Chan; Jiaji Chen; Xia Liu; Manit Munshi; Joshua Gustine; Kirsten Meid; Christopher J Patterson; Guang Yang; Toni Dubeau; Mehmet K Samur; Jorge J Castillo; Kenneth C Anderson; Nikhil C Munshi; Steven P Treon
Journal:  Blood Adv       Date:  2018-11-13

Review 2.  Novel Treatment Strategies in the Management of Waldenström Macroglobulinemia.

Authors:  Saurabh Zanwar; Jithma Prasad Abeykoon; Prashant Kapoor
Journal:  Curr Hematol Malig Rep       Date:  2020-02       Impact factor: 3.952

3.  Interleukin-1 Receptor-Associated Kinase (IRAK) Signaling in Kaposi Sarcoma-Associated Herpesvirus-Induced Primary Effusion Lymphoma.

Authors:  Jedediah Seltzer; Razia Moorad; Jason M Schifano; Justin T Landis; Dirk P Dittmer
Journal:  J Virol       Date:  2020-05-04       Impact factor: 5.103

4.  Progression Risk Stratification of Asymptomatic Waldenström Macroglobulinemia.

Authors:  Mark Bustoros; Romanos Sklavenitis-Pistofidis; Prashant Kapoor; Chia-Jen Liu; Efstathios Kastritis; Saurabh Zanwar; Geoffrey Fell; Jithma P Abeykoon; Kalvis Hornburg; Carl Jannes Neuse; Catherine R Marinac; David Liu; Jenny Soiffer; Maria Gavriatopoulou; Cody Boehner; Joseph M Cappuccio; Henry Dumke; Kaitlen Reyes; Robert J Soiffer; Robert A Kyle; Steven P Treon; Jorge J Castillo; Meletios A Dimopoulos; Stephen M Ansell; Lorenzo Trippa; Irene M Ghobrial
Journal:  J Clin Oncol       Date:  2019-04-16       Impact factor: 44.544

5.  Battling BTK mutants with noncovalent inhibitors that overcome Cys481 and Thr474 mutations in Waldenström macroglobulinemia therapy: structural mechanistic insights on the role of fenebrutinib.

Authors:  Ghazi Elamin; Aimen Aljoundi; Mohamed Issa Alahmdi; Nader E Abo-Dya; Mahmoud E S Soliman
Journal:  J Mol Model       Date:  2022-10-12       Impact factor: 2.172

Review 6.  MYD88 Mutations: Transforming the Landscape of IgM Monoclonal Gammopathies.

Authors:  Miguel Alcoceba; María García-Álvarez; Alejandro Medina; Rebeca Maldonado; Verónica González-Calle; María Carmen Chillón; María Eugenia Sarasquete; Marcos González; Ramón García-Sanz; Cristina Jiménez
Journal:  Int J Mol Sci       Date:  2022-05-16       Impact factor: 6.208

Review 7.  Genomic Landscape of Waldenström Macroglobulinemia and Its Impact on Treatment Strategies.

Authors:  Steven P Treon; Lian Xu; Maria Luisa Guerrera; Cristina Jimenez; Zachary R Hunter; Xia Liu; Maria Demos; Joshua Gustine; Gloria Chan; Manit Munshi; Nicholas Tsakmaklis; Jiaji G Chen; Amanda Kofides; Romanos Sklavenitis-Pistofidis; Mark Bustoros; Andrew Keezer; Kirsten Meid; Christopher J Patterson; Antonio Sacco; Aldo Roccaro; Andrew R Branagan; Guang Yang; Irene M Ghobrial; Jorge J Castillo
Journal:  J Clin Oncol       Date:  2020-02-21       Impact factor: 44.544

8.  Zanubrutinib for the treatment of MYD88 wild-type Waldenström macroglobulinemia: a substudy of the phase 3 ASPEN trial.

Authors:  Meletios Dimopoulos; Ramon Garcia Sanz; Hui-Peng Lee; Marek Trneny; Marzia Varettoni; Stephen Opat; Shirley D'Sa; Roger G Owen; Gavin Cull; Stephen Mulligan; Jaroslaw Czyz; Jorge J Castillo; Marina Motta; Tanya Siddiqi; Mercedes Gironella Mesa; Miquel Granell Gorrochategui; Dipti Talaulikar; Pier Luigi Zinzani; Elham Askari; Sebastian Grosicki; Albert Oriol; Simon Rule; Janusz Kloczko; Alessandra Tedeschi; Christian Buske; Veronique Leblond; Judith Trotman; Wai Y Chan; Jan Michel; Jingjing Schneider; Ziwen Tan; Aileen Cohen; Jane Huang; Constantine S Tam
Journal:  Blood Adv       Date:  2020-12-08

9.  Landscape of immunoglobulin heavy chain gene repertoire and its clinical relevance to LPL/WM.

Authors:  Jun Wang; Yuting Yan; Wenjie Xiong; Ge Song; Yi Wang; Jiawei Zhao; Yujiao Jia; Chengwen Li; Zhen Yu; Ying Yu; Jiawen Chen; Yang Jiao; Tingyu Wang; Rui Lyu; Qinghua Li; Yueshen Ma; Wei Liu; Dehui Zou; Gang An; Qi Sun; Huijun Wang; Zhijian Xiao; Jianxiang Wang; Lugui Qiu; Shuhua Yi
Journal:  Blood Adv       Date:  2022-07-12

10.  Real-world data on the survival outcome of patients with newly diagnosed Waldenström macroglobulinemia.

Authors:  Jang Ho Cho; Joon-Ho Shim; Sang Eun Yoon; Hee-Jin Kim; Sun-Hee Kim; Young Hyeh Ko; Seung-Tae Lee; Kihyun Kim; Won Seog Kim; Seok Jin Kim
Journal:  Korean J Intern Med       Date:  2020-08-14       Impact factor: 2.884

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