Lymphatic Drainage-Promoting Effects by Engraftment of Artificial Lymphatic Vascular Tissue Based on Human Adipose Tissue-Derived Mesenchymal Stromal Cells in Mice

被引:1
作者
Asano, Yoshiya [1 ]
Shimoda, Hiroshi [1 ,2 ]
Okano, Daisuke [1 ]
Matsusaki, Michiya [3 ]
Akashi, Mitsuru [4 ]
机构
[1] Hirosaki Univ, Dept Neuroanat Cell Biol & Histol, Grad Sch Med, 5 Zaifu Cho, Hirosaki, Aomori 0368562, Japan
[2] Hirosaki Univ, Dept Anat Sci, Grad Sch Med, 5 Zaifu Cho, Hirosaki, Aomori 0368562, Japan
[3] Osaka Univ, Grad Sch Engn, Dept Appl Chem, 2-1 Yamada Oka, Suita, Osaka 5650871, Japan
[4] Osaka Univ, Grad Sch Frontier Biosci, Bldg Block Sci,1-3 Yamada Oka, Suita, Osaka 5650871, Japan
关键词
STEM-CELLS; ENDOTHELIAL-CELLS; PROGENITOR CELLS; VESSEL FORMATION; TRANSPLANTATION; LYMPHANGIOGENESIS; LYMPHEDEMA;
D O I
10.1155/2023/7626767
中图分类号
Q813 [细胞工程];
学科分类号
摘要
Regenerative medicine using lymphatic vascular engineering is a promising approach for treating lymphedema. However, its development lags behind that of artificial blood vascular tissue for ischemic diseases. In this study, we constructed artificial 3D lymphatic vascular tissue, termed ASCLT, by co-cultivation of ECM-nanofilm-coated human adipose tissue-derived mesenchymal stromal cells (hASCs) and human dermal lymphatic endothelial cells (HDLECs). The effect of hASCs in lymphatic vessel network formation was evaluated by comparison with the tissue based on fibroblasts, termed FbLT. Our results showed that the density of lymphatic vascular network in ASCLT was higher than that in FbLT, demonstrating a promoting effect of hASCs on lymphatic vascular formation. This result was also supported by higher levels of lymphangiogenesis-promoting factors, such as bFGF, HGF, and VEGF-A in ASCLT than in FbLT. To evaluate the therapeutic effects, FbLTs and ASCLTs were subcutaneously transplanted to mouse hindlimb lymphatic drainage interruption models by removal of popliteal and subiliac lymph nodes. Despite the restricted engraftment of lymphatic vessels, ASCLT promoted regeneration of irregular and diverse lymphatic drainage in the skin, as visualized by indocyanine green imaging. Moreover, transplantation of ASCLT to the popliteal lymph node resection area also resulted in lymphatic drainage regeneration. Histological analysis of the generated drainage visualized by FITC-dextran injection revealed that the drainage was localized in the subcutaneous area shallower than the dermal muscle. These findings demonstrate that ASCLT promotes lymphatic drainage in vivo and that hASCs can serve as an autologous source for treatment of secondary lymphedema by tissue engineering.
引用
收藏
页数:15
相关论文
共 49 条
[1]   Angiopoietin-2-induced lymphatic endothelial cell migration drives lymphangiogenesis via the β1 integrin-RhoA-formin axis [J].
Akwii, Racheal Grace ;
Sajib, Md Sanaullah ;
Zahra, Fatema Tuz ;
Tullar, Paul ;
Zabet-Moghaddam, Masoud ;
Zheng, Yi ;
Gutkind, J. Silvio ;
Doci, Colleen L. ;
Mikelis, Constantinos M. .
ANGIOGENESIS, 2022, 25 (03) :373-396
[2]   Matrix stiffness primes lymphatic tube formation directed by vascular endothelial growth factor-C [J].
Alderfer, Laura ;
Russo, Elizabeth ;
Archilla, Adriana ;
Coe, Brian ;
Hanjaya-Putra, Donny .
FASEB JOURNAL, 2021, 35 (05)
[3]   Lymphatic Tissue Engineering and Regeneration [J].
Alderfer, Laura ;
Wei, Alicia ;
Hanjaya-Putra, Donny .
JOURNAL OF BIOLOGICAL ENGINEERING, 2018, 12
[4]  
Asaad M, 2021, TISSUE ENG PT A, V27, P489, DOI [10.1089/ten.tea.2020.0378, 10.1089/ten.TEA.2020.0378]
[5]   Construction of transplantable artificial vascular tissue based on adipose tissue-derived mesenchymal stromal cells by a cell coating and cryopreservation technique [J].
Asano, Yoshiya ;
Okano, Daisuke ;
Matsusaki, Michiya ;
Watabe, Tetsuro ;
Yoshimatsu, Yasuhiro ;
Akashi, Mitsuru ;
Shimoda, Hiroshi .
SCIENTIFIC REPORTS, 2021, 11 (01)
[6]   Transplantation of artificial human lymphatic vascular tissues fabricated using a cell-accumulation technique and their engraftment in mouse tissue with vascular remodelling [J].
Asano, Yoshiya ;
Shimoda, Hiroshi ;
Matsusaki, Michiya ;
Akashi, Mitsuru .
JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2018, 12 (03) :E1501-E1510
[7]   Ultrastructure of blood and lymphatic vascular networks in three-dimensional cultured tissues fabricated by extracellular matrix nanofilm-based cell accumulation technique [J].
Asano, Yoshiya ;
Nishiguchi, Akihiro ;
Matsusaki, Michiya ;
Okano, Daisuke ;
Saito, Erina ;
Akashi, Mitsuru ;
Shimoda, Hiroshi .
MICROSCOPY, 2014, 63 (03) :219-226
[8]   TGF-β1 mediates pathologic changes of secondary lymphedema by promoting fibrosis and inflammation [J].
Baik, Jung Eun ;
Park, Hyeung Ju ;
Kataru, Raghu P. ;
Savetsky, Ira L. ;
Ly, Catherine L. ;
Shin, Jinyeon ;
Encarnacion, Elizabeth M. ;
Cavali, Michele R. ;
Klang, Mark G. ;
Riedel, Elyn ;
Coriddi, Michelle ;
Dayan, Joseph H. ;
Mehrara, Babak J. .
CLINICAL AND TRANSLATIONAL MEDICINE, 2022, 12 (06)
[9]   Adipose-Derived Stem Cells as a Tool in Cell-Based Therapies [J].
Bajek, Anna ;
Gurtowska, Natalia ;
Olkowska, Joanna ;
Kazmierski, Lukasz ;
Maj, Malgorzata ;
Drewa, Tomasz .
ARCHIVUM IMMUNOLOGIAE ET THERAPIAE EXPERIMENTALIS, 2016, 64 (06) :443-454
[10]   Adipose stromal/stem cells in regenerative medicine: Potentials and limitations [J].
Baptista, Leandra Santos .
WORLD JOURNAL OF STEM CELLS, 2020, 12 (01) :1-7