Mesenchymal stromal cells in tumor microenvironment remodeling of BCR-ABL negative myeloproliferative diseases

被引:4
作者
La Spina, Enrico [1 ]
Giallongo, Sebastiano [1 ]
Giallongo, Cesarina [2 ]
Vicario, Nunzio [1 ]
Duminuco, Andrea [3 ]
Parenti, Rosalba [1 ]
Giuffrida, Rosario [1 ]
Longhitano, Lucia [1 ]
Li Volti, Giovanni [1 ]
Cambria, Daniela [3 ]
Di Raimondo, Francesco [3 ]
Musumeci, Giuseppe [1 ]
Romano, Alessandra [3 ]
Palumbo, Giuseppe Alberto [2 ]
Tibullo, Daniele [1 ]
机构
[1] Univ Catania, Dept Biomed & Biotechnol Sci, Catania, Italy
[2] Univ Catania, Dept Med Surg Sci & Adv Technol Ingrassia, Catania, Italy
[3] Univ Catania, Dept Gen Surg & Med Surg Specialties, AOU Policlin Vittorio Emanuele, Catania, Italy
关键词
oxidative stress; mesenchymal stromal cells; tumor microenvironment; myeloproliferative cancer; JAK; STAT signaling pathway; BONE-MARROW FIBROSIS; STEM-CELLS; ESSENTIAL THROMBOCYTHEMIA; CHRONIC INFLAMMATION; MYELOID METAPLASIA; POLYCYTHEMIA-VERA; IN-VITRO; CALRETICULIN; MYELOFIBROSIS; NEOPLASMS;
D O I
10.3389/fonc.2023.1141610
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Chronic myeloproliferative neoplasms encompass the BCR-ABL1-negative neoplasms polycythemia vera (PV), essential thrombocythemia (ET), and primary myelofibrosis (PMF). These are characterized by calreticulin (CALR), myeloproliferative leukemia virus proto-oncogene (MPL) and the tyrosine kinase Janus kinase 2 (JAK2) mutations, eventually establishing a hyperinflammatory tumor microenvironment (TME). Several reports have come to describe how constitutive activation of JAK-STAT and NF kappa B signaling pathways lead to uncontrolled myeloproliferation and pro-inflammatory cytokines secretion. In such a highly oxidative TME, the balance between Hematopoietic Stem Cells (HSCs) and Mesenchymal Stromal Cells (MSCs) has a crucial role in MPN development. For this reason, we sought to review the current literature concerning the interplay between HSCs and MSCs. The latter have been reported to play an outstanding role in establishing of the typical bone marrow (BM) fibrotic TME as a consequence of the upregulation of different fibrosis-associated genes including PDGF- beta upon their exposure to the hyperoxidative TME characterizing MPNs. Therefore, MSCs might turn to be valuable candidates for niche-targeted targeting the synthesis of cytokines and oxidative stress in association with drugs eradicating the hematopoietic clone.
引用
收藏
页数:8
相关论文
共 90 条
[1]   Bone marrow fibrosis in myelofibrosis: pathogenesis, prognosis and targeted strategies [J].
Abou Zahr, Abdallah ;
Salama, Mohamed E. ;
Carreau, Nicole ;
Tremblay, Douglas ;
Verstovsek, Srdan ;
Mesa, Ruben ;
Hoffman, Ronald ;
Mascarenhas, John .
HAEMATOLOGICA, 2016, 101 (06) :660-671
[2]   Synergic Crosstalk between Inflammation, Oxidative Stress, and Genomic Alterations in BCR-ABL-Negative Myeloproliferative Neoplasm [J].
Allegra, Alessandro ;
Pioggia, Giovanni ;
Tonacci, Alessandro ;
Casciaro, Marco ;
Musolino, Caterina ;
Gangemi, Sebastiano .
ANTIOXIDANTS, 2020, 9 (11) :1-18
[3]   Neuropathy of haematopoietic stem cell niche is essential for myeloproliferative neoplasms [J].
Arranz, Lorena ;
Sanchez-Aguilera, Abel ;
Martin-Perez, Daniel ;
Isern, Joan ;
Langa, Xavier ;
Tzankov, Alexandar ;
Lundberg, Pontus ;
Muntion, Sandra ;
Tzeng, Yi-Shiuan ;
Lai, Dar-Ming ;
Schwaller, Juerg ;
Skoda, Radek C. ;
Mendez-Ferrer, Simon .
NATURE, 2014, 512 (7512) :78-+
[4]   A Cellular Taxonomy of the Bone Marrow Stroma in Homeostasis and Leukemia [J].
Baryawno, Ninib ;
Przybylski, Dariusz ;
Kowalczyk, Monika S. ;
Kfoury, Youmna ;
Severe, Nicolas ;
Gustafsson, Karin ;
Kokkaliaris, Konstantinos D. ;
Mercier, Francois ;
Tabaka, Marcin ;
Hofree, Matan ;
Dionne, Danielle ;
Papazian, Ani ;
Lee, Dongjun ;
Ashenberg, Orr ;
Subramanian, Ayshwarya ;
Vaishnav, Eeshit Dhaval ;
Rozenblatt-Rosen, Orit ;
Regev, Aviv ;
Scadden, David T. .
CELL, 2019, 177 (07) :1915-+
[5]   Ruxolitinib treatment reduces monocytic superoxide radical formation without affecting hydrogen peroxide formation or systemic oxidative nucleoside damage in myelofibrosis [J].
Bjorn, Mads Emil ;
Brimnes, Marie Klinge ;
Gudbrandsdottir, Sif ;
Andersen, Christen Lykkegaard ;
Poulsen, Henrik Enghusen ;
Henriksen, Trine ;
Hasselbalch, Hans Carl ;
Nielsen, Claus Henrik .
LEUKEMIA & LYMPHOMA, 2019, 60 (10) :2549-2557
[6]   Iron regulates myeloma cell/macrophage interaction and drives resistance to bortezomib [J].
Camiolo, Giuseppina ;
Barbato, Alessandro ;
Giallongo, Cesarina ;
Vicario, Nunzio ;
Romano, Alessandra ;
Parrinello, Nunziatina L. ;
Parenti, Rosalba ;
Sandoval, Joaquin Canton ;
Garcia-Moreno, Diana ;
Lazzarino, Giacomo ;
Avola, Roberto ;
Palumbo, Giuseppe A. ;
Mulero, Victoriano ;
Li Volti, Giovanni ;
Tibullo, Daniele ;
Di Raimondo, Francesco .
REDOX BIOLOGY, 2020, 36
[7]   From Janus kinase 2 to calreticulin: the clinically relevant genomic landscape of myeloproliferative neoplasms [J].
Cazzola, Mario ;
Kralovics, Robert .
BLOOD, 2014, 123 (24) :3714-3719
[8]   Reactive Oxygen Species: Drivers of Physiological and Pathological Processes [J].
Checa, Javier ;
Aran, Josep M. .
JOURNAL OF INFLAMMATION RESEARCH, 2020, 13 :1057-1073
[9]   Functional Consequences of Mutations in Myeloproliferative Neoplasms [J].
Constantinescu, Stefan N. ;
Vainchenker, William ;
Levy, Gabriel ;
Papadopoulos, Nicolas .
HEMASPHERE, 2021, 5 (06) :E578
[10]   Functional relationship between calreticulin, calnexin, and the endoplasmic reticulum luminal domain of calnexin [J].
Danilczyk, UG ;
Cohen-Doyle, MF ;
Williams, DB .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2000, 275 (17) :13089-13097