Patent classifications
C12N2533/10
MEMBRANE AND METHOD FOR CULTURE AND DIFFERENTIATION OF CELLS
Provided is a membrane for cell culture and differentiation. The membrane comprises a base portion and an array of protrusions consisting of a plurality of protrusions. The protrusions are substantially evenly distributed on the base portion. The plurality of protrusions has dimensions on the order of micrometers. In particular, the membrane consists of particles of different particle sizes of two or more types. One type of particles has an average particle size of 1 μm to 50 μm. Two or more types of particles of different particle sizes include nanoscale particles, 10-900 nm. One type of particle is selected from the group consisting of inorganic compound microspheres. The other type of particles of the two or more types of particles of different particle sizes is selected from the group consisting of organic polymer nanospheres. Also provided is a method for maintaining, culturing and/or differentiating cells using such membrane.
Bio-adhesive gels and methods of use
A gel composition that forms a three dimensional gel microenvironment that is formed of an adhesive protein, a maleimide-functionalized poly alkylene oxide, a linking agent and a nanoparticle, the components forming an interpenetrating network that exhibits improved mechanical and biochemical properties, as well as creates a favorable microenvironment for cellular growth and proliferation. The gel composition also creates a favorable microenvironment for testing various agents on normal or diseased cells, including chemotherapeutic agents on cancer cells or other diseased cells.
Substrate for a three-dimensional cell culture, its preparation and use
A layered material suitable as substrate for a three-dimensional cell culture includes a transparent carrier layer and a transparent conductive layer as well as a photoconductive layer comprising titanium oxide phthalocyanine. A method for producing the layered material and an article comprising it and a receiving unit are disclosed. A mold-free method is provided for forming a three-dimensional hydrogel as well as for forming a three-dimensional cell culture by using the layered material or article. Uses of the layered material and of the three-dimensional hydrogel and three-dimensional cell culture are also disclosed.
Cell culture substratum, method for producing cell-containing material, method for producing cell culture substratum, method for observing cells, and cell culture substratum maintenance fluid
The purpose of the present invention is to provide a cell culture substratum which has excellent resistance to liquid culture media and low cytotoxicity, can achieve a high cell adhesion ratio and a high viability of cultured cells, has excellent thermal stability, and is less likely to absorbs ultraviolet ray. A cell culture substratum which is provided with a substrate made from an inorganic material and has multiple concavo-convex structures on a culturing surface thereof, wherein, when the concavo-convex structures are measured with an atomic force microscope in accordance with JISB0601 and JISR1683 (measured area: a 1 μm-square, cut-off value of a low-pass contour curve filter: 1 nm, cut-off value of a high-pass contour curve filter: 170 nm), the average of the lengths of contour curve elements of the concavo-convex structures is 1 to 170 nm as measured in at least one direction (when a curve showing long-wavelength components that are blocked by the high-pass contour curve filter is converted to a straight line by the least square method, the average line is a line that is parallel with the straight line and indicates a height cumulative relative frequency distribution in the contour curve of 50%).
COMPOSITION FOR PROMOTING STEM CELL DIFFERENTIATION, COMPRISING PROGENITOR CELL CULTURE SOLUTION AND MULTILAYER GRAPHENE FILM, AND USE THEREOF
Provided is a composition capable of promoting osteogenic differentiation of stem cells, comprising, as active ingredients, a bone and cartilage progenitor cell culture solution and a multilayer graphene film, which promotes the differentiation of stem cells into specific cells, and thus is expected to be variously applicable in the in vivo/in vitro stem cell application fields.
NANO-LIGAND FOR PROMOTING CELL ADHESION AND DIFFERENTIATION OF STEM CELLS AND METHOD OF PROMOTING CELL ADHESION AND DIFFERENTIATION OF STEM CELLS BY USING THE SAME
The present invention relates to a nano-ligand for promoting cell adhesion and differentiation of stem cells and a method of promoting cell adhesion and differentiation of stem cells by using the nano-ligand, and the method of promoting cell adhesion and differentiation of stem cells according to the present invention may temporally and spatially, and reversibly control nano-ligand sliding by applying a magnetic field to a substrate including the nano-ligands, and efficiently control stem cell adhesion and differentiation ex vivo or in vivo through the magnetic-field based on spatiotemporal control.
STRUCTURED NANOCOATINGS FOR THE STABILIZATION OF PLURIPOTENT STEM CELL MEDIA COMPONENTS
Disclosed are compositions and methods for pluripotent stem cell culture. Compositions include mineral coated microparticles having a core and a mineral coating, wherein the mineral coating includes fibroblast growth factor. Also disclosed are methods for pluripotent stem cell culture methods using mineral coated microparticles including fibroblast growth factor.
CULTURE SCAFFOLD FOR PROMOTING STEM CELL DIFFERENTIATION COMPRISING MULTILAYER GRAPHENE FILM
Provided are a culture scaffold for promoting stem cell differentiation comprising a multilayer graphene film, a method of regulating growth and differentiation of a stem cell using the culture scaffold, and a method of preparing the culture scaffold, where the culture scaffold is capable of promoting the osteogenic differentiation of stem cells as a result of laminating a graphene film without comprising an additional substance, and it may be variously applicable to application fields of stem cells in/outside the body.
Cell-based electromechanical biocomputing
A diode and logic gate comprising cells is disclosed. A method of making the diode and logic gate comprising cells is disclosed.
Method for in vitro activation and/or expansion of immune cells
A method for in vitro activation and/or expansion of immune cells is provided, including the steps of: a) providing magnetic particles having multi-protrusive surface modified with at least one type of immuno-inducing substance, in which each magnetic particle includes a copolymer core, a polymer layer, a magnetic substance layer, and a silicon-based layer from the inside to the outside; b) providing a cell solution including at least one type of immune cell in the cell solution; and c) bringing the magnetic particles in contact with the cell solution, in which the at least one type of immuno-inducing substance on the surface of the magnetic particle activates and/or expands the at least one type of immune cell in the cell solution.