Restored in vivo-like membrane lipidomics positively influence in vitro features of cultured mesenchymal stromal/stem cells derived from human placenta

被引:24
作者
Chatgilialoglu, Alexandros [1 ]
Rossi, Martina [2 ]
Alviano, Francesco [2 ]
Poggi, Paola [1 ,3 ]
Zannini, Chiara [2 ,4 ]
Marchionni, Cosetta [2 ]
Ricci, Francesca [5 ]
Tazzari, Pier Luigi [5 ]
Taglioli, Valentina [6 ,7 ]
Calder, Philip C. [8 ,9 ,10 ]
Bonsi, Laura [2 ]
机构
[1] Remembrane Srl, Imola, Italy
[2] Univ Bologna, Dept Expt Diagnost & Specialty Med, Unit Histol Embryol & Appl Biol, Via Belmeloro 8, I-40126 Bologna, Italy
[3] Univ Ferrara, Sect Pathol Oncol & Expt Biol, Dept Morphol Surg & Expt Med, Ferrara, Italy
[4] St Orsola Malpighi Univ Hosp, Dept Expt Diagnost & Specialty Med, Unit Nephrol Dialysis & Renal Transplant, Via Massarenti 9, I-40138 Bologna, Italy
[5] St Orsola Malpighi Univ Hosp, Serv Immunohematol & Transfus Med, Via Massarenti 9, I-40138 Bologna, Italy
[6] Univ Bologna, St Orsola Malpighi Univ Hosp, Dept Expt Diagnost & Specialty Med, Lab Mol Biol,Inst Cardiol, Via Massarenti 9, I-40138 Bologna, Italy
[7] Ettore Sansavini Hlth Sci Fdn ONLUS, Lab SWITH, Natl Inst Biostruct & Biosyst, Corso Garibaldi 11, I-48022 Lugo, RA, Italy
[8] Univ Southampton, Human Dev & Hlth Acad Unit, Fac Med, Southampton, Hants, England
[9] Univ Hosp Southampton NHS Fdn Trust, NIHR Southampton Biomed Res Ctr, Southampton, Hants, England
[10] Univ Southampton, Southampton, Hants, England
关键词
Mesenchymal stromal cells; Stem cells; Membrane lipidomics; Membrane fatty acids; HEPATOCYTE-LIKE CELLS; COA DESATURASE 1; STEM-CELLS; BIOLOGICAL CHARACTERISTICS; ENDOTHELIAL-CELLS; CANCER-THERAPIES; TERM PLACENTA; FATTY-ACIDS; DIFFERENTIATION; MULTIPOTENT;
D O I
10.1186/s13287-017-0487-4
中图分类号
Q813 [细胞工程];
学科分类号
100113 [医学细胞生物学];
摘要
Background: The study of lipid metabolism in stem cell physiology has recently raised great interest. The role of lipids goes beyond the mere structural involvement in assembling extra-and intra-cellular compartments. Nevertheless, we are still far from understanding the impact of membrane lipidomics in stemness maintenance and differentiation patterns. In the last years, it has been reported how in vitro cell culturing can modify membrane lipidomics. The aim of the present work was to study the membrane fatty acid profile of mesenchymal stromal cells (MSCs) derived from human fetal membranes (hFM-MSCs) and to correlate this to specific biological properties by using chemically defined tailored lipid supplements (Refeed((R))). Methods: Freshly isolated hFM-MSCs were characterized for their membrane fatty acid composition. hFM-MSCs were cultivated in vitro following a classical protocol and their membrane fatty acid profile at different passages was compared to the profile in vivo. A tailored Refeed((R)) lipid supplement was developed with the aim of reducing the differences created by the in vitro cultivation and was tested on cultured hFM-MSCs. Cell morphology, viability, proliferation, angiogenic differentiation, and immunomodulatory properties after in vitro exposure to the tailored Refeed((R)) lipid supplement were investigated. Results: A significant modification of hFM-MSC membrane fatty acid composition occurred during in vitro culture. Using a tailored lipid supplement, the fatty acid composition of cultured cells remained more similar to their in vivo counterparts, being characterized by a higher polyunsaturated and omega-6 fatty acid content. These changes in membrane composition had no effect on cell morphology and viability, but were linked with increased cell proliferation rate, angiogenic differentiation, and immunomodulatory properties. In particular, Refeed((R))-supplemented hFM-MSCs showed greater ability to express fully functional cell membrane molecules. Conclusions: Culturing hFM-MSCs alters their fatty acid composition. A tailored lipid supplement is able to improve in vitro hFM-MSC functional properties by recreating a membrane environment more similar to the physiological counterpart. This approach should be considered in cell therapy applications in order to maintain a higher cell quality during in vitro passaging and to influence the outcome of cell-based therapeutic approaches when cells are administered to patients.
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页码:1 / 11
页数:11
相关论文
共 43 条
[1]
Term amniotic membrane is a high throughput source for multipotent mesenchymal stem cells with the ability to differentiate into endothelial cells in vitro [J].
Alviano, Francesco ;
Fossati, Valentina ;
Marchionni, Cosetta ;
Arpinati, Mario ;
Bonsi, Laura ;
Franchina, Michele ;
Lanzoni, Giacomo ;
Cantoni, Silvia ;
Cavallini, Claudia ;
Bianchi, Francesca ;
Tazzari, Pier Luigi ;
Pasquinelli, Gianandrea ;
Foroni, Laura ;
Ventura, Carlo ;
Grossi, Alberto ;
Bagnara, Gian Paolo .
BMC DEVELOPMENTAL BIOLOGY, 2007, 7
[2]
Isolation and basic characterization of human term amnion and chorion mesenchymal stromal cells [J].
Bacenkova, Darina ;
Rosocha, Jan ;
Tothova, Timea ;
Rosocha, Ladislav ;
Sarissky, Marek .
CYTOTHERAPY, 2011, 13 (09) :1047-1056
[3]
Maintenance of "stem cell" features of cartilage cell sub-populations during in vitro propagation [J].
Benz, Karin ;
Stippich, Claudia ;
Freudigmann, Christian ;
Mollenhauer, Juergen A. ;
Aicher, Wilhelm K. .
JOURNAL OF TRANSLATIONAL MEDICINE, 2013, 11
[4]
Bone marrow stromal stem cells: Nature, biology, and potential applications [J].
Bianco, P ;
Riminucci, M ;
Gronthos, S ;
Robey, PG .
STEM CELLS, 2001, 19 (03) :180-192
[5]
Lipidomics of Mesenchymal Stromal Cells: Understanding the Adaptation of Phospholipid Profile in Response to Pro-Inflammatory Cytokines [J].
Campos, Ana Margarida ;
Maciel, Elisabete ;
Moreira, Ana S. P. ;
Sousa, Bebiana ;
Melo, Tania ;
Domingues, Pedro ;
Curado, Liliana ;
Antunes, Brigida ;
Domingues, M. Rosario M. ;
Santos, Francisco .
JOURNAL OF CELLULAR PHYSIOLOGY, 2016, 231 (05) :1024-1032
[6]
Human placenta-derived stromal cells decrease inflammation, placental injury and blood pressure in hypertensive pregnant mice [J].
Chatterjee, Piyali ;
Chiasson, Valorie L. ;
Pinzur, Lena ;
Raveh, Shani ;
Abraham, Eytan ;
Jones, Kathleen A. ;
Bounds, Kelsey R. ;
Ofir, Racheli ;
Flaishon, Liat ;
Chajut, Ayelet ;
Mitchell, Brett M. .
CLINICAL SCIENCE, 2016, 130 (07) :513-523
[7]
Comparison of biological characteristics of mesenchymal stem cells derived from maternal-origin placenta and Wharton's jelly [J].
Chen, Gecai ;
Yue, Aihuan ;
Ruan, Zhongbao ;
Yin, Yigang ;
Wang, Ruzhu ;
Ren, Yin ;
Zhu, Li .
STEM CELL RESEARCH & THERAPY, 2015, 6
[8]
Human Periodontal Stem Cells Release Specialized Proresolving Mediators and Carry Immunomodulatory and Prohealing Properties Regulated by Lipoxins [J].
Cianci, Eleonora ;
Recchiuti, Antonio ;
Trubiani, Oriana ;
Diomede, Francesca ;
Marchisio, Marco ;
Miscia, Sebastiano ;
Colas, Romain A. ;
Dalli, Jesmond ;
Serhan, Charles N. ;
Romano, Mario .
STEM CELLS TRANSLATIONAL MEDICINE, 2016, 5 (01) :20-32
[9]
Minimal criteria for defining multipotent mesenchymal stromal cells. The International Society for Cellular Therapy position statement [J].
Dominici, M. ;
Le Blanc, K. ;
Mueller, I. ;
Slaper-Cortenbach, I. ;
Marini, F. C. ;
Krause, D. S. ;
Deans, R. J. ;
Keating, A. ;
Prockop, D. J. ;
Horwitz, E. M. .
CYTOTHERAPY, 2006, 8 (04) :315-317
[10]
The role of albumin and PPAR-α in differentiation-dependent change of fatty acid profile during differentiation of mesenchymal stem cells to hepatocyte-like cells [J].
Esmaeli, Shahnaz ;
Allameh, Abdolamir ;
Soleimani, Masoud ;
Rahbarizadeh, Fatemeh ;
Frouzandeh-Moghadam, Mehdi .
CELL BIOCHEMISTRY AND FUNCTION, 2014, 32 (05) :410-419