Literature DB >> 30622116

CD38-Driven Mitochondrial Trafficking Promotes Bioenergetic Plasticity in Multiple Myeloma.

Christopher R Marlein1, Rachel E Piddock1, Jayna J Mistry1, Lyubov Zaitseva1, Charlotte Hellmich1,2, Rebecca H Horton1, Zhigang Zhou1, Martin J Auger2, Kristian M Bowles3,2, Stuart A Rushworth3.   

Abstract

Metabolic adjustments are necessary for the initiation, proliferation, and spread of cancer cells. Although mitochondria have been shown to move to cancer cells from their microenvironment, the metabolic consequences of this phenomenon have yet to be fully elucidated. Here, we report that multiple myeloma cells use mitochondrial-based metabolism as well as glycolysis when located within the bone marrow microenvironment. The reliance of multiple myeloma cells on oxidative phosphorylation was caused by intercellular mitochondrial transfer to multiple myeloma cells from neighboring nonmalignant bone marrow stromal cells. This mitochondrial transfer occurred through tumor-derived tunneling nanotubes (TNT). Moreover, shRNA-mediated knockdown of CD38 inhibits mitochondrial transfer and TNT formation in vitro and blocks mitochondrial transfer and improves animal survival in vivo. This study describes a potential treatment strategy to inhibit mitochondrial transfer for clinical benefit and scientifically expands the understanding of the functional effects of mitochondrial transfer on tumor metabolism. SIGNIFICANCE: Multiple myeloma relies on both oxidative phosphorylation and glycolysis following acquisition of mitochondria from its bone marrow microenvironment.See related commentary by Boise and Shanmugam, p. 2102. ©2019 American Association for Cancer Research.

Entities:  

Mesh:

Year:  2019        PMID: 30622116     DOI: 10.1158/0008-5472.CAN-18-0773

Source DB:  PubMed          Journal:  Cancer Res        ISSN: 0008-5472            Impact factor:   12.701


  59 in total

Review 1.  The CD38 glycohydrolase and the NAD sink: implications for pathological conditions.

Authors:  Julianna D Zeidler; Kelly A Hogan; Guillermo Agorrody; Thais R Peclat; Sonu Kashyap; Karina S Kanamori; Lilian Sales Gomez; Delaram Z Mazdeh; Gina M Warner; Katie L Thompson; Claudia C S Chini; Eduardo Nunes Chini
Journal:  Am J Physiol Cell Physiol       Date:  2022-02-09       Impact factor: 4.249

Review 2.  Mesenchymal stem cell-mediated transfer of mitochondria: mechanisms and functional impact.

Authors:  Francesca Velarde; Sarah Ezquerra; Xavier Delbruyere; Andres Caicedo; Yessia Hidalgo; Maroun Khoury
Journal:  Cell Mol Life Sci       Date:  2022-03-05       Impact factor: 9.261

3.  Simultaneous Presentation of Multiple Myeloma and Lung Cancer: Case Report and Gene Bioinformatics Analysis.

Authors:  Ping-Ping Xiao; Bing-Qing Luo; Wei Fan; Xu-Yan Chen; Zhi-Gao Dong; Jin-Mei Huang; Yi Zhang; Yong-Quan Chen
Journal:  Front Oncol       Date:  2022-06-13       Impact factor: 5.738

4.  Targeting of CD38 by the Tumor Suppressor miR-26a Serves as a Novel Potential Therapeutic Agent in Multiple Myeloma.

Authors:  Yi Hu; Huimin Liu; Chuanfeng Fang; Chen Li; Fjorela Xhyliu; Hayley Dysert; Juraj Bodo; Gabriel Habermehl; Benjamin E Russell; Wenjun Li; Marcia Chappell; Xiaofeng Jiang; Sarah L Ondrejka; Eric D Hsi; Jaroslaw P Maciejewski; Qing Yi; Kenneth C Anderson; Nikhil C Munshi; Geyou Ao; Jason N Valent; Jianhong Lin; Jianjun Zhao
Journal:  Cancer Res       Date:  2020-03-19       Impact factor: 12.701

Review 5.  Bone marrow niches in haematological malignancies.

Authors:  Simón Méndez-Ferrer; Dominique Bonnet; David P Steensma; Robert P Hasserjian; Irene M Ghobrial; John G Gribben; Michael Andreeff; Daniela S Krause
Journal:  Nat Rev Cancer       Date:  2020-02-28       Impact factor: 60.716

Review 6.  Crosstalk between endoplasmic reticulum stress and oxidative stress: a dynamic duo in multiple myeloma.

Authors:  Sinan Xiong; Wee-Joo Chng; Jianbiao Zhou
Journal:  Cell Mol Life Sci       Date:  2021-02-18       Impact factor: 9.261

7.  Venetoclax and Daratumumab combination treatment demonstrates pre-clinical efficacy in mouse models of Acute Myeloid Leukemia.

Authors:  Jayna J Mistry; Charlotte Hellmich; Amelia Lambert; Jamie A Moore; Aisha Jibril; Angela Collins; Kristian M Bowles; Stuart A Rushworth
Journal:  Biomark Res       Date:  2021-05-13

8.  PGC-1α induced mitochondrial biogenesis in stromal cells underpins mitochondrial transfer to melanoma.

Authors:  Prakrit R Kumar; Mona Saad; Charlotte Hellmich; Jayna J Mistry; Jamie A Moore; Shannon Conway; Christopher J Morris; Kristian M Bowles; Marc D Moncrieff; Stuart A Rushworth
Journal:  Br J Cancer       Date:  2022-03-26       Impact factor: 9.075

Review 9.  Mesenchymal Stem Cell-Mediated Mitochondrial Transfer: a Therapeutic Approach for Ischemic Stroke.

Authors:  Meng Lu; Jindong Guo; Bowen Wu; Yuhui Zhou; Mishan Wu; Maryam Farzaneh; Seyed Esmaeil Khoshnam
Journal:  Transl Stroke Res       Date:  2020-09-25       Impact factor: 6.829

Review 10.  Targeting Reactive Oxygen Species Metabolism to Induce Myeloma Cell Death.

Authors:  Mélody Caillot; Hassan Dakik; Frédéric Mazurier; Brigitte Sola
Journal:  Cancers (Basel)       Date:  2021-05-17       Impact factor: 6.639

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