TY - JOUR
T1 - Spider silk for xeno-free long-term self-renewal and differentiation of human pluripotent stem cells
AU - Wu, Siqin
AU - Johansson, Jan
AU - Damdimopoulou, Pauliina
AU - Shahsavani, Mansoureh
AU - Falk, Anna
AU - Hovatta, Outi
AU - Rising, Anna
PY - 2014
Y1 - 2014
N2 - Human pluripotent stem cells (hPSCs) can undergo unlimited self-renewal and have the capacity to differentiate into all somatic cell types, and are therefore an ideal source for the generation of cells and tissues for research and therapy. To realize this potential, defined cell culture systems that allow expansion of hPSCs and subsequent controlled differentiation, ideally in an implantable three-dimensional (3D) matrix, are required. Here we mimic spider silk - Nature's high performance material - for the design of chemically defined 2D and 3D matrices for cell culture. The silk matrices do not only allow xeno-free long-term expansion of hPSCs but also differentiation in both 2D and 3D. These results show that biomimetic spider silk matrices enable hPSC culture in a manner that can be applied for experimental and clinical purposes. (C) 2014 Elsevier Ltd. All rights reserved.
AB - Human pluripotent stem cells (hPSCs) can undergo unlimited self-renewal and have the capacity to differentiate into all somatic cell types, and are therefore an ideal source for the generation of cells and tissues for research and therapy. To realize this potential, defined cell culture systems that allow expansion of hPSCs and subsequent controlled differentiation, ideally in an implantable three-dimensional (3D) matrix, are required. Here we mimic spider silk - Nature's high performance material - for the design of chemically defined 2D and 3D matrices for cell culture. The silk matrices do not only allow xeno-free long-term expansion of hPSCs but also differentiation in both 2D and 3D. These results show that biomimetic spider silk matrices enable hPSC culture in a manner that can be applied for experimental and clinical purposes. (C) 2014 Elsevier Ltd. All rights reserved.
KW - Biomaterial
KW - Chemically defined
KW - Human embryonic stem cells
KW - Human induced pluripotent stem cells
KW - Functionalized materials
KW - Scaffold
KW - Biomaterial
KW - Chemically defined
KW - Human embryonic stem cells
KW - Human induced pluripotent stem cells
KW - Functionalized materials
KW - Scaffold
UR - https://res.slu.se/id/publ/63859
U2 - 10.1016/j.biomaterials.2014.06.039
DO - 10.1016/j.biomaterials.2014.06.039
M3 - Journal article
C2 - 25043502
SN - 0142-9612
VL - 35
SP - 8496
EP - 8502
JO - Biomaterials
JF - Biomaterials
IS - 30
ER -