A 3D Human Lymphatic Vessel-on-Chip Reveals the Roles of Interstitial Flow and VEGF-A/C for Lymphatic Sprouting and Discontinuous Junction Formation

被引:9
作者
Ilan, Isabelle S. [1 ,2 ]
Yslas, Aria R. [1 ]
Peng, Yansong [1 ]
Lu, Renhao [1 ]
Lee, Esak [1 ,3 ]
机构
[1] Cornell Univ, Nancy E & Peter C Meinig Sch Biomed Engn, Ithaca, NY 14853 USA
[2] Cornell Univ, Coll Human Ecol, Ithaca, NY 14853 USA
[3] Cornell Univ, Coll Engn, Nancy E & Peter C Meinig Sch Biomed Engn, 302 Weill Hall,237 Tower Rd, Ithaca, NY 14853 USA
关键词
Lymphatic vessel-on-chip; Lymphatic junction; Luminal flow; Interstitial flow; Vascular endothelial growth factor C; Lymphatic sprouting; ENDOTHELIAL-CELLS; IN-VITRO; LYMPHANGIOGENESIS; VASCULATURE; MECHANISMS; SYSTEM; MODEL; RECONSTRUCTION; ANGIOGENESIS; PERMEABILITY;
D O I
10.1007/s12195-023-00780-0
中图分类号
Q813 [细胞工程];
学科分类号
摘要
IntroductionLymphatic vessels (LVs) maintain fluid homeostasis by draining excess interstitial fluid, which is accomplished by two distinct LVs: initial LVs and collecting LVs. The interstitial fluid is first drained into the initial LVs through permeable "button-like" lymphatic endothelial cell (LEC) junctions. Next, the drained fluid ("lymph") transports to lymph nodes through the collecting LVs with less permeable "zipper-like" junctions that minimize loss of lymph. Despite the significance of LEC junctions in lymphatic drainage and transport, it remains unclear how luminal or interstitial flow affects LEC junctions in vascular endothelial growth factors A and C (VEGF-A and VEGF-C) conditions. Moreover, it remains unclear how these flow and growth factor conditions impact lymphatic sprouting.MethodsWe developed a 3D human lymphatic vessel-on-chip that can generate four different flow conditions (no flow, luminal flow, interstitial flow, both luminal and interstitial flow) to allow an engineered, rudimentary LV to experience those flows and respond to them in VEGF-A/C.ResultsWe examined LEC junction discontinuities, lymphatic sprouting, LEC junction thicknesses, and cell contractility-dependent vessel diameters in the four different flow conditions in VEGF-A/C. We discovered that interstitial flow in VEGF-C generates discontinuous LEC junctions that may be similar to the button-like junctions with no lymphatic sprouting. However, interstitial flow or both luminal and interstitial flow stimulated lymphatic sprouting in VEGF-A, maintaining zipper-like LEC junctions. LEC junction thickness and cell contractility-dependent vessel diameters were not changed by those conditions.ConclusionsIn this study, we provide an engineered lymphatic vessel platform that can generate four different flow regimes and reveal the roles of interstitial flow and VEGF-A/C for lymphatic sprouting and discontinuous junction formation.
引用
收藏
页码:325 / 339
页数:15
相关论文
共 70 条
  • [1] The lymphatic vasculature in disease
    Alitalo, Kari
    [J]. NATURE MEDICINE, 2011, 17 (11) : 1371 - 1380
  • [2] Lymphatic System in Cardiovascular Medicine
    Aspelund, Aleksanteri
    Robciuc, Marius R.
    Karaman, Sinem
    Makinen, Taija
    Alitalo, Kari
    [J]. CIRCULATION RESEARCH, 2016, 118 (03) : 515 - 530
  • [3] Human Tumor-Lymphatic Microfluidic Model Reveals Differential Conditioning of Lymphatic Vessels by Breast Cancer Cells
    Ayuso, Jose M.
    Gong, Max M.
    Skala, Melissa C.
    Harari, Paul M.
    Beebe, David J.
    [J]. ADVANCED HEALTHCARE MATERIALS, 2020, 9 (03)
  • [4] Deconstructing the third dimension - how 3D culture microenvironments alter cellular cues
    Baker, Brendon M.
    Chen, Christopher S.
    [J]. JOURNAL OF CELL SCIENCE, 2012, 125 (13) : 3015 - 3024
  • [5] Functionally specialized junctions between endothelial cells of lymphatic vessels
    Baluk, Peter
    Fuxe, Jonas
    Hashizume, Hiroya
    Romano, Talia
    Lashnits, Erin
    Butz, Stefan
    Vestweber, Dietmar
    Corada, Monica
    Molendini, Cinzia
    Dejana, Elisabetta
    McDonald, Donald M.
    [J]. JOURNAL OF EXPERIMENTAL MEDICINE, 2007, 204 (10) : 2349 - 2362
  • [6] Buttons and Zippers: Endothelial Junctions in Lymphatic Vessels
    Baluk, Peter
    McDonald, Donald M.
    [J]. COLD SPRING HARBOR PERSPECTIVES IN MEDICINE, 2022, 12 (12):
  • [7] Lymph Node Subcapsular Sinus Microenvironment-On-A-Chip Modeling Shear Flow Relevant to Lymphatic Metastasis and Immune Cell Homing
    Birmingham, Katherine G.
    O'Melia, Meghan J.
    Bordy, Samantha
    Aguilar, David Reyes
    El-Reyas, Bassel
    Lesinski, Gregory
    Thomas, Susan N.
    [J]. ISCIENCE, 2020, 23 (11)
  • [8] Tissue-engineered 3D melanoma model with blood and lymphatic capillaries for drug development
    Bourland, Jennifer
    Fradette, Julie
    Auger, Francois A.
    [J]. SCIENTIFIC REPORTS, 2018, 8
  • [9] Multiple roles of lymphatic vessels in peripheral lymph node development
    Bovay, Esther
    Sabine, Amelie
    Prat-Luri, Borja
    Kim, Sudong
    Son, Kyungmin
    Willrodt, Ann-Helen
    Olsson, Cecilia
    Halin, Cornelia
    Kiefer, Friedemann
    Betsholtz, Christer
    Li Jeon, Noo
    Luther, Sanjiv A.
    Petrova, Tatiana, V
    [J]. JOURNAL OF EXPERIMENTAL MEDICINE, 2018, 215 (11) : 2760 - 2777
  • [10] Lymphatic Vessel Network Structure and Physiology
    Breslin, Jerome W.
    Yang, Ying
    Scallan, Joshua P.
    Sweat, Richard S.
    Adderley, Shaquria P.
    Murfee, Walter L.
    [J]. COMPREHENSIVE PHYSIOLOGY, 2019, 9 (01) : 207 - 299