SynthesisActa biomaterialia2022
High throughput interrogation of human liver stellate cells reveals microenvironmental regulation of phenotype.
Synthesis in Acta biomaterialia, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 19 papers.
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Who cites it
19 citing papers in PubMed, 27 citations in OpenAlex.
- A dual-channel fluorescent probe for in situ imaging of mitochondrial superoxide and microenvironmental changes in Cd-induced hepatorenal dysfunction.Smart molecules : open access · 2026Article
- <p>Beyond hepatic stellate cell heterogeneity: Resolving fibrosis, restoring regeneration (Review)</p>.International journal of molecular medicine · 2026Review
- Effect of 2D and 3D ECM and Biomechanical Cues on Human iPSC-Derived Liver Progenitor Cell Differentiation.Advanced healthcare materials · 2026Article
- Spatial patterning strategies for liver tissue engineering: Biofabrication technologies and applications.Advanced drug delivery reviews · 2026Review
- Engineered microtissues to model the effects of dynamic heterotypic cell signaling on iPSC-derived human hepatocyte maturation.Acta biomaterialia · 2025Article
- Combinatorial extracellular matrix tissue chips for optimizing mesenchymal stromal cell microenvironment and manufacturing.NPJ Regenerative medicine · 2025Article
- Chromatin accessibility: biological functions, molecular mechanisms and therapeutic application.Signal transduction and targeted therapy · 2024Review
- Exploring heterogeneous cell population dynamics in different microenvironments by novel analytical strategy based on images.NPJ systems biology and applications · 2024Article
- Cell Chirality of Micropatterned Endometrial Microvascular Endothelial Cells.Advanced healthcare materials · 2024Article
- Advances in high throughput cell culture technologies for therapeutic screening and biological discovery applications.Bioengineering & translational medicine · 2024Review
- Combinatorial Microgels for 3D ECM Screening and Heterogeneous Microenvironmental Culture of Primary Human Hepatic Stellate Cells.Advanced science (Weinheim, Baden-Wurttemberg, Germany) · 2024Article
- Defined extracellular matrix compositions support stiffness-insensitive cell spreading and adhesion signaling.Proceedings of the National Academy of Sciences of the United States of America · 2023Article
- Effect of distinct ECM microenvironments on the genome-wide chromatin accessibility and gene expression responses of hepatic stellate cells.Acta biomaterialia · 2023Article
- Inflammation and Digestive Cancer.International journal of molecular sciences · 2023Review
- Combinatorial extracellular matrix cues with mechanical strain induce differential effects on myogenesisBiomaterials science · 2023Article
- Combinatorial Microgels for 3D ECM Screening and Heterogeneous Microenvironmental Culture of Primary Human Hepatic Stellate Cells.bioRxiv : the preprint server for biology · 2023Article
- A strategy of local hydrogen capture and catalytic hydrogenation for enhanced therapy of chronic liver diseases.Theranostics · 2023Article
- Engineered matrix microenvironments reveal the heterogeneity of liver sinusoidal endothelial cell phenotypic responses.APL bioengineering · 2022Article
- Modulation of human iPSC-derived hepatocyte phenotype via extracellular matrix microarrays.Acta biomaterialia · 2022Article
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Authors and funding
8 authors at 2 institutions in 1 country.
Funding
Abstract
Liver fibrosis is a common feature of progressive liver disease and is manifested as a dynamic series of alterations in both the biochemical and biophysical properties of the liver. Hepatic stellate cells (HSCs) reside within the perisinusoidal space of the liver sinusoid and are one of the main drivers of liver fibrosis, yet it remains unclear how changes to the sinusoidal microenvironment impact HSC phenotype in the context of liver fibrosis. Cellular microarrays were used to examine and deconstruct the impacts of bio-chemo-mechanical changes on activated HSCs in vitro. Extracellular matrix (ECM) composition and stiffness were found to act individually and in combination to regulate HSC fibrogenic phenotype and proliferation. Hyaluronic acid and collagen III promoted elevated collagen I expression while collagen IV mediated a decrease. Previously activated HSCs exhibited reduced lysyl oxidase (Lox) expression as array substrate stiffness increased, with less dependence on ECM composition. Collagens III and IV increased HSC proliferation, whereas hyaluronic acid had the opposite effect. Meta-analysis performed on these data revealed distinct phenotypic clusters (e.g. low fibrogenesis/high proliferation) as a direct function of their microenvironmental composition. Notably, soft microenvironments mimicking healthy tissue (1 kPa), promoted higher levels of intracellular collagen I and Lox expression in activated HSCs, compared to stiff microenvironments mimicking fibrotic tissue (25 kPa). Collectively, these data suggest potential HSC functional adaptations in response to specific bio-chemo-mechanical changes relevant towards the development of therapeutic interventions. These findings also underscore the importance of the microenvironment when interrogating HSC behavior in healthy, disease, and treatment settings. STATEMENT OF SIGNIFICANCE: In this work we utilized high-throughput cellular microarray technology to systematically interrogate the complex interactions between HSCs and their microenvironment in the context of liver fibrosis. We observed that HSC phenotype is regulated by ECM composition and stiffness, and that these phenotypes can be classified into distinct clusters based on their microenvironmental context. Moreover, the range of these phenotypic responses to microenvironmental stimuli is substantial and a direct consequence of the combinatorial pairing of ECM protein and stiffness signals. We also observed a novel role for microenvironmental context in affecting HSC responses to potential fibrosis therapeutics.
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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.