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Engineered Plant‐Based Nanocellulose Hydrogel for Small Intestinal Organoid Growth
by
Chan, Wing Hei
, Raghuwanshi, Vikram S.
, Abud, Helen E.
, Micati, Diana J.
, Rosenbluh, Joseph
, Garnier, Gil
, Curvello, Rodrigo
, Kerr, Genevieve
in
Cell culture
/ Cellulose
/ Hydrogels
/ Mechanical properties
/ Morphology
/ nanocellulose
/ organoids
/ Peptides
/ Physiology
/ Rheology
/ Shear stress
/ Stem cells
/ transcriptomic profile
/ Viscoelasticity
2021
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Engineered Plant‐Based Nanocellulose Hydrogel for Small Intestinal Organoid Growth
by
Chan, Wing Hei
, Raghuwanshi, Vikram S.
, Abud, Helen E.
, Micati, Diana J.
, Rosenbluh, Joseph
, Garnier, Gil
, Curvello, Rodrigo
, Kerr, Genevieve
in
Cell culture
/ Cellulose
/ Hydrogels
/ Mechanical properties
/ Morphology
/ nanocellulose
/ organoids
/ Peptides
/ Physiology
/ Rheology
/ Shear stress
/ Stem cells
/ transcriptomic profile
/ Viscoelasticity
2021
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Do you wish to request the book?
Engineered Plant‐Based Nanocellulose Hydrogel for Small Intestinal Organoid Growth
by
Chan, Wing Hei
, Raghuwanshi, Vikram S.
, Abud, Helen E.
, Micati, Diana J.
, Rosenbluh, Joseph
, Garnier, Gil
, Curvello, Rodrigo
, Kerr, Genevieve
in
Cell culture
/ Cellulose
/ Hydrogels
/ Mechanical properties
/ Morphology
/ nanocellulose
/ organoids
/ Peptides
/ Physiology
/ Rheology
/ Shear stress
/ Stem cells
/ transcriptomic profile
/ Viscoelasticity
2021
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Engineered Plant‐Based Nanocellulose Hydrogel for Small Intestinal Organoid Growth
Journal Article
Engineered Plant‐Based Nanocellulose Hydrogel for Small Intestinal Organoid Growth
2021
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Overview
Organoids are three‐dimensional self‐renewing and organizing clusters of cells that recapitulate the behavior and functionality of developed organs. Referred to as “organs in a dish,” organoids are invaluable biological models for disease modeling or drug screening. Currently, organoid culture commonly relies on an expensive and undefined tumor‐derived reconstituted basal membrane which hinders its application in high‐throughput screening, regenerative medicine, and diagnostics. Here, we introduce a novel engineered plant‐based nanocellulose hydrogel is introduced as a well‐defined and low‐cost matrix that supports organoid growth. Gels containing 0.1% nanocellulose fibers (99.9% water) are ionically crosslinked and present mechanical properties similar to the standard animal‐based matrix. The regulation of the osmotic pressure is performed by a salt‐free strategy, offering conditions for cell survival and proliferation. Cellulose nanofibers are functionalized with fibronectin‐derived adhesive sites to provide the required microenvironment for small intestinal organoid growth and budding. Comparative transcriptomic profiling reveals a good correlation with transcriptome‐wide gene expression pattern between organoids cultured in both materials, while differences are observed in stem cells‐specific marker genes. These hydrogels are tunable and can be combined with laminin‐1 and supplemented with insulin‐like growth factor (IGF‐1) to optimize the culture conditions. Nanocellulose hydrogel emerges as a promising matrix for the growth of organoids. Plant‐based nanocellulose hydrogel is introduced as a well‐defined and very low‐cost porous nanofibrous matrix that supports organoid growth. The mechanical, chemical, and biological properties of the gel are engineered to mimic the extracellular matrix (ECM), providing the required microenvironment for small intestinal organoid culture. This performant hydrogel is tunable with ECM‐derived components, emerging as a promising biomaterial for organoid systems.
Publisher
John Wiley & Sons, Inc,John Wiley and Sons Inc,Wiley
Subject
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