Localization of Multiple Hydrogels with MultiCUBE Platform Spatially Guides 3D Tissue Morphogenesis In Vitro

被引:0
|
作者
Suthiwanich, Kasinan [1 ]
Hagiwara, Masaya [1 ]
机构
[1] RIKEN Cluster Pioneering Res CPR, Human Biomimet Syst RIKEN Hakubi Res Team, 2-1 Hirosawa, Wako, Saitama, Japan
关键词
3D-printing; branching morphogenesis; organoid; tissue patterning; CELL; MATRIX; ORGANOIDS; LAMININ; DOMAIN;
D O I
10.1002/admt.202201660
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Localization of multiple hydrogels is expected to develop the structure of 3D tissue models in a location-specific manner. Here, 3D tissue morphogenesis is spatially guided by localizing different hydrogel conditions at different parts of a tissue. To achieve the localization, a unit-based scaffold is developed with a unique frame design to trap hydrogel solutions inside their designated units. An optimal range of unit dimensions and surface wettabilities enables a solution trapping up to several cubic millimeters without any need for chemical additives. This capability allows spatial organization of biomolecular compositions and physical conditions of hydrogels, as well as the relative position of biological samples (cells, spheroids, and reconstituted tissues) within the scaffold. Successful localization of branching development on reconstituted human epithelial tissues is achieved by localizing growth factors or cross-linked matrix proteins within hydrogels, demonstrating a direct dependence on local hydrogel conditions. Unlike 3D-bioprinting or microfluidic techniques, this scaffold-based localization of hydrogels requires only a manual pipetting and no specialized tools, making it ready-to-use for researchers from any field. This localization technique provides a new promising route to spatially control morphogenesis, differentiation, and other developmental processes within 3D organoids or tissue models for practical biomedical applications in the future.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] 3D bioprinting for tissue engineering: Stem cells in hydrogels
    Mehrban, Nazia
    Teoh, Gui Zhen
    Birchall, Martin Anthony
    INTERNATIONAL JOURNAL OF BIOPRINTING, 2016, 2 (01): : 6 - 19
  • [22] 3D bioprinted silk fibroin hydrogels for tissue engineering
    Soon Hee Kim
    Heesun Hong
    Olatunji Ajiteru
    Md. Tipu Sultan
    Young Jin Lee
    Ji Seung Lee
    Ok Joo Lee
    Hanna Lee
    Hae Sang Park
    Kyu Young Choi
    Joong Seob Lee
    Hyung Woo Ju
    In-Sun Hong
    Chan Hum Park
    Nature Protocols, 2021, 16 : 5484 - 5532
  • [23] Synthetic hydrogels as a 3D matrix for defined tissue models
    Blache U.
    Ehrbar M.
    BIOspektrum, 2020, 26 (4) : 398 - 401
  • [24] In Vitro Angiogenesis of 3D Tissue Engineered Adipose Tissue
    Yao, Rui
    Zhang, Renji
    Yan, Yongnian
    Wang, Xiaohong
    JOURNAL OF BIOACTIVE AND COMPATIBLE POLYMERS, 2009, 24 (01) : 5 - 24
  • [25] 3D simulation of tissue pathological changes localization
    Sindyaeva, Alexandra R.
    Zakharov, Valery P.
    SARATOV FALL MEETING 2006: OPTICAL TECHNOLOGIES IN BIOPHYSICS AND MEDICINE VIII, 2007, 6535
  • [26] Interpenetrating network hydrogels for studying the role of matrix viscoelasticity in 3D osteocyte morphogenesis
    Bernero, Margherita
    Zauchner, Doris
    Mueller, Ralph
    Qin, Xiao-Hua
    BIOMATERIALS SCIENCE, 2024, 12 (04) : 919 - 932
  • [27] Fibrotic Lung Matrix Derived Hydrogels as an In-Vitro 3D Platform for Drug Discovery in Idiopathic Pulmonary Fibrosis
    Davila, J. Fernandez
    Moore, D. W.
    Khan, J.
    Collins, A. C.
    Lemma, M.
    King, C. S.
    Nathan, S. D.
    Rodriguez, L. R.
    Grant, G. M.
    Moran, J. L.
    AMERICAN JOURNAL OF RESPIRATORY AND CRITICAL CARE MEDICINE, 2022, 205
  • [28] 3D bioprinting of dense cellular structures within hydrogels with spatially controlled heterogeneity
    Abaci, Alperen
    Guvendiren, Murat
    BIOFABRICATION, 2024, 16 (03)
  • [29] Bilayered Collagen-Hyaluronate Scaffolds: A Novel Platform for 3D In Vitro Respiratory Tissue Modelling
    O'Leary, C.
    Unger, R. E.
    Kirkpatrick, C. J.
    O'Brien, F. J.
    Cryan, S.
    TISSUE ENGINEERING PART A, 2015, 21 : S260 - S260
  • [30] 3D In Vitro Liver Tissue Model of Human Liver Organogenesis: a Platform to Study Developmental Diseases
    Vyas, D.
    Brovold, M.
    Baptista, P.
    Moran, E.
    Soker, S.
    TISSUE ENGINEERING PART A, 2015, 21 : S272 - S272