Literature DB >> 30990729

Progression Risk Stratification of Asymptomatic Waldenström Macroglobulinemia.

Mark Bustoros1,2, Romanos Sklavenitis-Pistofidis1,2, Prashant Kapoor3, Chia-Jen Liu1,4,5, Efstathios Kastritis6, Saurabh Zanwar3, Geoffrey Fell1, Jithma P Abeykoon3, Kalvis Hornburg1, Carl Jannes Neuse1,7, Catherine R Marinac1,8, David Liu1,2, Jenny Soiffer1,9, Maria Gavriatopoulou6, Cody Boehner1,10, Joseph M Cappuccio1, Henry Dumke1, Kaitlen Reyes1, Robert J Soiffer1,2, Robert A Kyle3, Steven P Treon1,2, Jorge J Castillo1,2, Meletios A Dimopoulos5, Stephen M Ansell3, Lorenzo Trippa1,8, Irene M Ghobrial1,2.   

Abstract

BACKGROUND: Waldenström macroglobulinemia (WM) is preceded by asymptomatic WM (AWM), for which the risk of progression to overt disease is not well defined.
METHODS: We studied 439 patients with AWM, who were diagnosed and observed at Dana-Farber Cancer Institute between 1992 and 2014.
RESULTS: During the 23-year study period, with a median follow-up of 7.8 years, 317 patients progressed to symptomatic WM (72%). Immunoglobulin M 4,500 mg/dL or greater, bone marrow lymphoplasmacytic infiltration 70% or greater, β2-microglobulin 4.0 mg/dL or greater, and albumin 3.5 g/dL or less were all identified as independent predictors of disease progression. To assess progression risk in patients with AWM, we trained and cross-validated a proportional hazards model using bone marrow infiltration, immunoglobulin M, albumin, and beta-2 microglobulin values as continuous measures. The model divided the cohort into three distinct risk groups: a high-risk group with a median time to progression (TTP) of 1.8 years, an intermediate-risk group with a median TTP of 4.8 years, and a low-risk group with a median TTP of 9.3 years. We validated this model in two external cohorts, demonstrating robustness and generalizability. For clinical applicability, we made the model available as a Web page application ( www.awmrisk.com ). By combining two cohorts, we were powered to identify wild type MYD88 as an independent predictor of progression (hazard ratio, 2.7).
CONCLUSION: This classification system is positioned to inform patient monitoring and care and, for the first time to our knowledge, to identify patients with high-risk AWM who may need closer follow-up or benefit from early intervention.

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Year:  2019        PMID: 30990729      PMCID: PMC6544461          DOI: 10.1200/JCO.19.00394

Source DB:  PubMed          Journal:  J Clin Oncol        ISSN: 0732-183X            Impact factor:   44.544


  23 in total

Review 1.  Clinicopathological definition of Waldenstrom's macroglobulinemia: consensus panel recommendations from the Second International Workshop on Waldenstrom's Macroglobulinemia.

Authors:  Roger G Owen; Steven P Treon; Ayad Al-Katib; Rafael Fonseca; Philip R Greipp; Mary L McMaster; Enrica Morra; Gerassimos A Pangalis; Jesus F San Miguel; Andrew R Branagan; Meletios A Dimopoulos
Journal:  Semin Oncol       Date:  2003-04       Impact factor: 4.929

2.  The genomic landscape of Waldenstrom macroglobulinemia is characterized by highly recurring MYD88 and WHIM-like CXCR4 mutations, and small somatic deletions associated with B-cell lymphomagenesis.

Authors:  Zachary R Hunter; Lian Xu; Guang Yang; Yangsheng Zhou; Xia Liu; Yang Cao; Robert J Manning; Christina Tripsas; Christopher J Patterson; Patricia Sheehy; Steven P Treon
Journal:  Blood       Date:  2013-12-23       Impact factor: 22.113

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

Authors:  Jithma P Abeykoon; Jonas Paludo; Rebecca L King; Stephen M Ansell; Morie A Gertz; Betsy R LaPlant; Alese E Halvorson; Wilson I Gonsalves; David Dingli; Hong Fang; S Vincent Rajkumar; Martha Q Lacy; Rong He; Taxiarchis Kourelis; Craig B Reeder; Anne J Novak; Ellen D McPhail; David S Viswanatha; Thomas E Witzig; Ronald S Go; Thomas M Habermann; Francis K Buadi; Angela Dispenzieri; Nelson Leung; Yi Lin; Carrie A Thompson; Suzanne R Hayman; Robert A Kyle; Shaji K Kumar; Prashant Kapoor
Journal:  Am J Hematol       Date:  2017-11-17       Impact factor: 10.047

4.  Fifty-Year Incidence of Waldenström Macroglobulinemia in Olmsted County, Minnesota, From 1961 Through 2010: A Population-Based Study With Complete Case Capture and Hematopathologic Review.

Authors:  Robert A Kyle; Dirk R Larson; Ellen D McPhail; Terry M Therneau; Angela Dispenzieri; Shaji Kumar; Prashant Kapoor; James R Cerhan; S Vincent Rajkumar
Journal:  Mayo Clin Proc       Date:  2018-04-12       Impact factor: 7.616

5.  MYD88 wild-type Waldenstrom Macroglobulinaemia: differential diagnosis, risk of histological transformation, and overall survival.

Authors:  Steven P Treon; Joshua Gustine; Lian Xu; Robert J Manning; Nicholas Tsakmaklis; Maria Demos; Kirsten Meid; Maria L Guerrera; Manit Munshi; Gloria Chan; Jiaji Chen; Amanda Kofides; Christopher J Patterson; Guang Yang; Xia Liu; Patricia Severns; Toni Dubeau; Zachary R Hunter; Jorge J Castillo
Journal:  Br J Haematol       Date:  2017-11-27       Impact factor: 6.998

Review 6.  Biology, prognosis, and therapy of Waldenström Macroglobulinemia.

Authors:  Jorge J Castillo; Irene M Ghobrial; Steven P Treon
Journal:  Cancer Treat Res       Date:  2015

7.  Impaired class switch recombination (CSR) in Waldenstrom macroglobulinemia (WM) despite apparently normal CSR machinery.

Authors:  Jitra Kriangkum; Brian J Taylor; Erin Strachan; Michael J Mant; Tony Reiman; Andrew R Belch; Linda M Pilarski
Journal:  Blood       Date:  2005-11-29       Impact factor: 22.113

8.  Somatic mutations in MYD88 and CXCR4 are determinants of clinical presentation and overall survival in Waldenstrom macroglobulinemia.

Authors:  Steven P Treon; Yang Cao; Lian Xu; Guang Yang; Xia Liu; Zachary R Hunter
Journal:  Blood       Date:  2014-02-19       Impact factor: 22.113

9.  Long-Term Follow-up of Monoclonal Gammopathy of Undetermined Significance.

Authors:  Robert A Kyle; Dirk R Larson; Terry M Therneau; Angela Dispenzieri; Shaji Kumar; James R Cerhan; S Vincent Rajkumar
Journal:  N Engl J Med       Date:  2018-01-18       Impact factor: 91.245

Review 10.  Diagnosis and Management of Waldenström Macroglobulinemia: Mayo Stratification of Macroglobulinemia and Risk-Adapted Therapy (mSMART) Guidelines 2016.

Authors:  Prashant Kapoor; Stephen M Ansell; Rafael Fonseca; Asher Chanan-Khan; Robert A Kyle; Shaji K Kumar; Joseph R Mikhael; Thomas E Witzig; Michelle Mauermann; Angela Dispenzieri; Sikander Ailawadhi; A Keith Stewart; Martha Q Lacy; Carrie A Thompson; Francis K Buadi; David Dingli; William G Morice; Ronald S Go; Dragan Jevremovic; Taimur Sher; Rebecca L King; Esteban Braggio; Ann Novak; Vivek Roy; Rhett P Ketterling; Patricia T Greipp; Martha Grogan; Ivana N Micallef; P Leif Bergsagel; Joseph P Colgan; Nelson Leung; Wilson I Gonsalves; Yi Lin; David J Inwards; Suzanne R Hayman; Grzegorz S Nowakowski; Patrick B Johnston; Steven J Russell; Svetomir N Markovic; Steven R Zeldenrust; Yi L Hwa; John A Lust; Luis F Porrata; Thomas M Habermann; S Vincent Rajkumar; Morie A Gertz; Craig B Reeder
Journal:  JAMA Oncol       Date:  2017-09-01       Impact factor: 31.777

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  13 in total

Review 1.  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

Review 2.  Management of Waldenström macroglobulinemia in 2020.

Authors:  Jorge J Castillo; Steven P Treon
Journal:  Hematology Am Soc Hematol Educ Program       Date:  2020-12-04

Review 3.  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 4.  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

5.  MYD88L265P Detection in IgM Monoclonal Gammopathies: Methodological Considerations for Routine Implementation.

Authors:  Martina Ferrante; Daniela Furlan; Silvia Zibellini; Michela Borriero; Chiara Candido; Nora Sahnane; Silvia Uccella; Elisa Genuardi; Beatrice Alessandria; Benedetta Bianchi; Barbara Mora; Daniele Grimaldi; Irene Defrancesco; Cristina Jiménez; Federica Cavallo; Dario Ferrero; Irene Dogliotti; Michele Merli; Marzia Varettoni; Simone Ferrero; Daniela Drandi
Journal:  Diagnostics (Basel)       Date:  2021-04-26

6.  Defining an Ultra-Low Risk Group in Asymptomatic IgM Monoclonal Gammopathy.

Authors:  David F Moreno; Arturo Pereira; Natalia Tovar; María Teresa Cibeira; Laura Magnano; María Rozman; Mónica López-Guerra; Dolors Colomer; Beatriz Martín-Antonio; Raquel Jiménez-Segura; Ignacio Isola; Luis Gerardo Rodríguez-Lobato; Aina Oliver-Caldés; Mari Pau Mena; Laura Rosiñol; Joan Bladé; Carlos Fernández de Larrea
Journal:  Cancers (Basel)       Date:  2021-04-23       Impact factor: 6.639

7.  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

8.  Symptomatic Hypoalbuminemia as an Indication for Treatment of Waldenström Macroglobulinemia: A Case Report and Review of the Literature.

Authors:  Jeremy T Larsen; Frederick D Leonard
Journal:  Case Rep Hematol       Date:  2019-10-03

9.  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

10.  Cause-specific mortality in individuals with lymphoplasmacytic lymphoma/Waldenström macroglobulinaemia, 2000-2016.

Authors:  Nicole H Dalal; Graça M Dores; Rochelle E Curtis; Martha S Linet; Lindsay M Morton
Journal:  Br J Haematol       Date:  2020-02-23       Impact factor: 8.615

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