Inhibition of Oxidative Phosphorylation Reverses Bone Marrow Hypoxia Visualized in Imageable Syngeneic B-ALL Mouse Model

被引:14
作者
Rytelewski, Mateusz [1 ,8 ]
Harutyunyan, Karine [2 ]
Baran, Natalia [2 ]
Mallampati, Saradhi [3 ]
Zal, M. Anna [1 ,2 ]
Cavazos, Antonio [2 ]
Butler, Jason M. [4 ]
Konoplev, Sergej [5 ]
El Khatib, Mirna [6 ]
Plunkett, Shane [6 ]
Marszalek, Joseph R. [7 ]
Andreeff, Michael [2 ]
Zal, Tomasz [1 ,2 ]
Konopleva, Marina [2 ]
机构
[1] Univ Texas MD Anderson Canc Ctr, Dept Immunol, Houston, TX 77030 USA
[2] Univ Texas MD Anderson Canc Ctr, Dept Leukemia, Houston, TX 77030 USA
[3] Univ Texas MD Anderson Canc Ctr, Translat Mol Pathol, Houston, TX 77030 USA
[4] Hackensack Univ Med Ctr, Ctr Discovery & Innovat, Med Sch Biol Sci, Weill Cornell Med, Nutley, NJ USA
[5] Univ Texas MD Anderson Canc Ctr, Dept Hematopathol, Houston, TX 77030 USA
[6] Univ Penn, Dept Biochem & Biophys, Philadelphia, PA 19104 USA
[7] Univ Texas MD Anderson Canc Ctr, TRACTION, Houston, TX 77030 USA
[8] MedImmune LLC, Oncol R&D, Gaithersburg, MD USA
基金
美国国家卫生研究院; 加拿大健康研究院;
关键词
hypoxia; oxidative phosphorylation; leukemia; oxygen; vascularity; acute lymphobastic leukemia; bone marrow; ACUTE MYELOID-LEUKEMIA; HEMATOPOIETIC STEM-CELLS; PO(2) DISTRIBUTIONS; ANGIOGENESIS; CANCER; MECHANISMS; NICHES; HIF-1; MICROENVIRONMENT; COMPARTMENT;
D O I
10.3389/fonc.2020.00991
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Abnormally low level of interstitial oxygen, or hypoxia, is a hallmark of tumor microenvironment and a known promoter of cancer chemoresistance. Inside a solid tumor mass, the hypoxia stems largely from inadequate supply of oxygenated blood through sparse or misshapen tumor vasculature whilst oxygen utilization rates are low in typical tumor's glycolytic metabolism. In acute leukemias, however, markers of intracellular hypoxia such as increased pimonidazole adduct staining and HIF-1 alpha stabilization are observed in advanced leukemic bone marrows (BM) despite an increase in BM vasculogenesis. We utilized intravital fast scanning two-photon phosphorescence lifetime imaging microscopy (FaST-PLIM) in a BCR-ABL B-ALL mouse model to image the extracellular oxygen concentrations (pO(2)) in leukemic BM, and we related the extracellular oxygen levels to intracellular hypoxia, vascular markers and local leukemia burden. We observed a transient increase in BM pO(2)in initial disease stages with intermediate leukemia BM burden, which correlated with an expansion of blood-carrying vascular network in the BM. Yet, we also observed increased formation of intracellular pimonidazole adducts in leukemic BM at the same time. This intermediate stage was followed by a significant decrease of extracellular pO(2)and further increase of intracellular hypoxia as leukemia cellularity overwhelmed BM in disease end-stage. Remarkably, treatment of leukemic mice with IACS-010759, a pharmacological inhibitor of mitochondrial Complex I, substantially increased pO(2)in the BM with advanced B-ALL, and it alleviated intracellular hypoxia reported by pimonidazole staining. High rates of oxygen consumption by B-ALL cells were confirmed by Seahorse assay including inex vivocells. Our results suggest that B-ALL expansion in BM is associated with intense oxidative phosphorylation (OxPhos) leading to the onset of metabolic BM hypoxia despite increased BM vascularization. Targeting mitochondrial respiration may be a novel approach to counteract BM hypoxia in B-ALL and, possibly, tumor hypoxia in other OxPhos-reliant malignancies.
引用
收藏
页数:15
相关论文
共 69 条
[41]  
Mortensen BT, 1998, BRIT J HAEMATOL, V102, P458
[42]   Quantitative imaging of haematopoietic stem and progenitor cell localization and hypoxic status in the bone marrow microenvironment [J].
Nombela-Arrieta, Cesar ;
Pivarnik, Gregory ;
Winkel, Beatrice ;
Canty, Kimberly J. ;
Harley, Brendan ;
Mahoney, John E. ;
Park, Shin-Young ;
Lu, Jiayun ;
Protopopov, Alexei ;
Silberstein, Leslie E. .
NATURE CELL BIOLOGY, 2013, 15 (05) :533-+
[43]   Distribution of hematopoietic stem cells in the bone marrow according to regional hypoxia [J].
Parmar, Kalindi ;
Mauch, Peter ;
Vergilio, Jo-Anne ;
Sackstein, Robert ;
Down, Julian D. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2007, 104 (13) :5431-5436
[44]   Increased Vascular Permeability in the Bone Marrow Microenvironment Contributes to Disease Progression and Drug Response in Acute Myeloid Leukemia [J].
Passaro, Diana ;
Di Tullio, Alessandro ;
Abarrategi, Ander ;
Rouault-Pierre, Kevin ;
Foster, Katie ;
Ariza-McNaughton, Linda ;
Montaner, Beatriz ;
Chakravarty, Probir ;
Bhaw, Leena ;
Diana, Giovanni ;
Lassailly, Franc Ois ;
Gribben, John ;
Bonnet, Dominique .
CANCER CELL, 2017, 32 (03) :324-+
[45]  
PerezAtayde AR, 1997, AM J PATHOL, V150, P815
[46]   Hypoxia promotes chemoresistance in acute lymphoblastic leukemia cell lines by modulating death signaling pathways [J].
Petit, C. ;
Gouel, F. ;
Dubus, I. ;
Heuclin, C. ;
Roget, K. ;
Vannier, J. P. .
BMC CANCER, 2016, 16
[47]   The Link Between Angiogenesis and Endothelial Metabolism [J].
Potente, Michael ;
Carmeliet, Peter .
ANNUAL REVIEW OF PHYSIOLOGY, VOL 79, 2017, 79 :43-66
[48]   Endothelial Jagged-1 Is Necessary for Homeostatic and Regenerative Hematopoiesis [J].
Poulos, Michael G. ;
Guo, Peipei ;
Kofler, Natalie M. ;
Pinho, Sandra ;
Gutkin, Michael C. ;
Tikhonova, Anastasia ;
Aifantis, Iannis ;
Frenette, Paul S. ;
Kitajewski, Jan ;
Rafii, Shahin ;
Butler, Jason M. .
CELL REPORTS, 2013, 4 (05) :1022-1034
[49]   Hypoxia signalling in cancer and approaches to enforce tumour regression [J].
Pouyssegur, Jacques ;
Dayan, Frederic ;
Mazure, Nathalie M. .
NATURE, 2006, 441 (7092) :437-443
[50]   Hypoxia-inducible factor I (HIF-1) in cancer [J].
Quintero, M ;
Mackenzie, N ;
Brennan, PA .
EJSO, 2004, 30 (05) :465-468