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1.
Cell ; 164(6): 1105-1109, 2016 Mar 10.
Article in English | MEDLINE | ID: mdl-26967278

ABSTRACT

While studies of cultured cells have led to new insights into biological control, greater understanding of human pathophysiology requires the development of experimental systems that permit analysis of intercellular communications and tissue-tissue interactions in a more relevant organ context. Human organs-on-chips offer a potentially powerful new approach to confront this long-standing problem.


Subject(s)
Microfluidic Analytical Techniques/methods , Organ Culture Techniques , Tissue Engineering/methods , Blood-Brain Barrier , Humans , Neoplasms/physiopathology
2.
Nat Rev Genet ; 23(8): 467-491, 2022 08.
Article in English | MEDLINE | ID: mdl-35338360

ABSTRACT

The failure of animal models to predict therapeutic responses in humans is a major problem that also brings into question their use for basic research. Organ-on-a-chip (organ chip) microfluidic devices lined with living cells cultured under fluid flow can recapitulate organ-level physiology and pathophysiology with high fidelity. Here, I review how single and multiple human organ chip systems have been used to model complex diseases and rare genetic disorders, to study host-microbiome interactions, to recapitulate whole-body inter-organ physiology and to reproduce human clinical responses to drugs, radiation, toxins and infectious pathogens. I also address the challenges that must be overcome for organ chips to be accepted by the pharmaceutical industry and regulatory agencies, as well as discuss recent advances in the field. It is evident that the use of human organ chips instead of animal models for drug development and as living avatars for personalized medicine is ever closer to realization.


Subject(s)
Lab-On-A-Chip Devices , Precision Medicine , Animals , Drug Development , Humans , Rare Diseases
3.
Annu Rev Cell Dev Biol ; 29: 27-61, 2013.
Article in English | MEDLINE | ID: mdl-24099083

ABSTRACT

Morphogenesis is the remarkable process by which cells self-assemble into complex tissues and organs that exhibit specialized form and function during embryological development. Many of the genes and chemical cues that mediate tissue and organ formation have been identified; however, these signals alone are not sufficient to explain how tissues and organs are constructed that exhibit their unique material properties and three-dimensional forms. Here, we review work that has revealed the central role that physical forces and extracellular matrix mechanics play in the control of cell fate switching, pattern formation, and tissue development in the embryo and how these same mechanical signals contribute to tissue homeostasis and developmental control throughout adult life.


Subject(s)
Biomechanical Phenomena , Embryonic Development , Animals , Cytoskeleton , Extracellular Matrix/metabolism , Gene Expression Regulation, Developmental , Humans , Morphogenesis , Signal Transduction
4.
PLoS Comput Biol ; 19(5): e1011050, 2023 05.
Article in English | MEDLINE | ID: mdl-37146076

ABSTRACT

Drug repurposing requires distinguishing established drug class targets from novel molecule-specific mechanisms and rapidly derisking their therapeutic potential in a time-critical manner, particularly in a pandemic scenario. In response to the challenge to rapidly identify treatment options for COVID-19, several studies reported that statins, as a drug class, reduce mortality in these patients. However, it is unknown if different statins exhibit consistent function or may have varying therapeutic benefit. A Bayesian network tool was used to predict drugs that shift the host transcriptomic response to SARS-CoV-2 infection towards a healthy state. Drugs were predicted using 14 RNA-sequencing datasets from 72 autopsy tissues and 465 COVID-19 patient samples or from cultured human cells and organoids infected with SARS-CoV-2. Top drug predictions included statins, which were then assessed using electronic medical records containing over 4,000 COVID-19 patients on statins to determine mortality risk in patients prescribed specific statins versus untreated matched controls. The same drugs were tested in Vero E6 cells infected with SARS-CoV-2 and human endothelial cells infected with a related OC43 coronavirus. Simvastatin was among the most highly predicted compounds (14/14 datasets) and five other statins, including atorvastatin, were predicted to be active in > 50% of analyses. Analysis of the clinical database revealed that reduced mortality risk was only observed in COVID-19 patients prescribed a subset of statins, including simvastatin and atorvastatin. In vitro testing of SARS-CoV-2 infected cells revealed simvastatin to be a potent direct inhibitor whereas most other statins were less effective. Simvastatin also inhibited OC43 infection and reduced cytokine production in endothelial cells. Statins may differ in their ability to sustain the lives of COVID-19 patients despite having a shared drug target and lipid-modifying mechanism of action. These findings highlight the value of target-agnostic drug prediction coupled with patient databases to identify and clinically evaluate non-obvious mechanisms and derisk and accelerate drug repurposing opportunities.


Subject(s)
COVID-19 , Hydroxymethylglutaryl-CoA Reductase Inhibitors , Humans , Hydroxymethylglutaryl-CoA Reductase Inhibitors/pharmacology , Hydroxymethylglutaryl-CoA Reductase Inhibitors/therapeutic use , SARS-CoV-2 , Atorvastatin/pharmacology , Bayes Theorem , Endothelial Cells , Simvastatin/pharmacology , Simvastatin/therapeutic use , Drug Repositioning , Medical Records
5.
Biochem J ; 480(4): 243-257, 2023 02 27.
Article in English | MEDLINE | ID: mdl-36821520

ABSTRACT

The field of mechanobiology, which focuses on the key role that physical forces play in control of biological systems, has grown enormously over the past few decades. Here, I provide a brief personal perspective on the development of the tensegrity theory that contributed to the emergence of the mechanobiology field, the key role that crossing disciplines has played in its development, and how it has matured over time. I also describe how pursuing questions relating to mechanochemical transduction and mechanoregulation can lead to the creation of novel technologies and open paths for development of new therapeutic strategies for a broad range of diseases and disorders.


Subject(s)
Mechanotransduction, Cellular , Humans , Biophysics
6.
Proc Natl Acad Sci U S A ; 118(17)2021 04 27.
Article in English | MEDLINE | ID: mdl-33879614

ABSTRACT

The de novo design of polar protein-protein interactions is challenging because of the thermodynamic cost of stripping water away from the polar groups. Here, we describe a general approach for designing proteins which complement exposed polar backbone groups at the edge of beta sheets with geometrically matched beta strands. We used this approach to computationally design small proteins that bind to an exposed beta sheet on the human transferrin receptor (hTfR), which shuttles interacting proteins across the blood-brain barrier (BBB), opening up avenues for drug delivery into the brain. We describe a design which binds hTfR with a 20 nM Kd, is hyperstable, and crosses an in vitro microfluidic organ-on-a-chip model of the human BBB. Our design approach provides a general strategy for creating binders to protein targets with exposed surface beta edge strands.


Subject(s)
Protein Engineering/methods , Receptors, Transferrin/metabolism , Receptors, Transferrin/physiology , Blood-Brain Barrier/metabolism , Brain/metabolism , Drug Delivery Systems , Humans , Proteins/metabolism , Transferrin/metabolism
7.
J Infect Dis ; 228(Suppl 5): S337-S354, 2023 10 03.
Article in English | MEDLINE | ID: mdl-37669225

ABSTRACT

The National Center for Advancing Translational Sciences (NCATS) Assay Guidance Manual (AGM) Workshop on 3D Tissue Models for Antiviral Drug Development, held virtually on 7-8 June 2022, provided comprehensive coverage of critical concepts intended to help scientists establish robust, reproducible, and scalable 3D tissue models to study viruses with pandemic potential. This workshop was organized by NCATS, the National Institute of Allergy and Infectious Diseases, and the Bill and Melinda Gates Foundation. During the workshop, scientific experts from academia, industry, and government provided an overview of 3D tissue models' utility and limitations, use of existing 3D tissue models for antiviral drug development, practical advice, best practices, and case studies about the application of available 3D tissue models to infectious disease modeling. This report includes a summary of each workshop session as well as a discussion of perspectives and challenges related to the use of 3D tissues in antiviral drug discovery.


Subject(s)
Antiviral Agents , Drug Discovery , Antiviral Agents/pharmacology , Antiviral Agents/therapeutic use , Biological Assay
8.
Physiology (Bethesda) ; 37(5): 0, 2022 09 01.
Article in English | MEDLINE | ID: mdl-35658627

ABSTRACT

The intertwined relationship between structure and function has been key to understanding human organ physiology and disease pathogenesis. An organ-on-a-chip (organ chip) is a bioengineered microfluidic cell culture device lined by living cells and tissues that recapitulates organ-level functions in vitro. This is accomplished by recreating organ-specific tissue-tissue interfaces and microenvironmental biochemical and mechanical cues while providing dynamic perfusion through endothelium-lined vascular channels. In this review, we discuss how this emerging technology has contributed to the understanding of human lung structure-function relationships at the cell, tissue, and organ levels.


Subject(s)
Cell Culture Techniques , Lab-On-A-Chip Devices , Endothelial Cells , Humans , Lung
9.
J Cell Sci ; 133(20)2020 11 02.
Article in English | MEDLINE | ID: mdl-32989042

ABSTRACT

One of the most rapid (less than 4 ms) transmembrane cellular mechanotransduction events involves activation of transient receptor potential vanilloid 4 (TRPV4) ion channels by mechanical forces transmitted across cell surface ß1 integrin receptors on endothelial cells, and the transmembrane solute carrier family 3 member 2 (herein denoted CD98hc, also known as SLC3A2) protein has been implicated in this response. Here, we show that ß1 integrin, CD98hc and TRPV4 all tightly associate and colocalize in focal adhesions where mechanochemical conversion takes place. CD98hc knockdown inhibits TRPV4-mediated calcium influx induced by mechanical forces, but not by chemical activators, thus confirming the mechanospecificity of this signaling response. Molecular analysis reveals that forces applied to ß1 integrin must be transmitted from its cytoplasmic C terminus via the CD98hc cytoplasmic tail to the ankyrin repeat domain of TRPV4 in order to produce ultrarapid, force-induced channel activation within the focal adhesion.


Subject(s)
Integrin beta1 , Mechanotransduction, Cellular , Cell Adhesion , Endothelial Cells/metabolism , Integrin beta1/genetics , Integrin beta1/metabolism , TRPV Cation Channels/genetics , TRPV Cation Channels/metabolism
10.
Acc Chem Res ; 54(18): 3529-3539, 2021 09 21.
Article in English | MEDLINE | ID: mdl-34478255

ABSTRACT

The ability to perform multiplexed detection of various biomarkers within complex biological fluids in a robust, rapid, sensitive, and cost-effective manner could transform clinical diagnostics and enable personalized healthcare. Electrochemical (EC) sensor technology has been explored as a way to address this challenge because it does not require optical instrumentation and it is readily compatible with both integrated circuit and microfluidic technologies; yet this approach has had little impact as a viable commercial bioanalytical tool to date. The most critical limitation hindering their clinical application is the fact that EC sensors undergo rapid biofouling when exposed to complex biological samples (e.g., blood, plasma, saliva, urine), leading to the loss of sensitivity and selectivity. Thus, to break through this barrier, we must solve this biofouling problem.In response to this challenge, our group has developed a rapid, robust, and low-cost nanocomposite-based antifouling coating for multiplexed EC sensors that enables unprecedented performance in terms of biomarker signal detection compared to reported literature. The bioinspired antifouling coating that we developed is a nanoporous composite that contains various conductive nanomaterials, including gold nanowires (AuNWs), carbon nanotubes (CNTs), or reduced graphene oxide nanoflakes (rGOx). Each study has progressively evolved this technology to provide increasing performance while simplifying process flow, reducing time, and decreasing cost. For example, after successfully developing a semipermeable nanocomposite coating containing AuNWs cross-linked to bovine serum albumin (BSA) using glutaraldehyde, we replaced the nanomaterials with reduced graphene oxide, reducing the cost by 100-fold while maintaining similar signal transduction and antifouling properties. We, subsequently, developed a localized heat-induced coating method that significantly improved the efficiency of the drop-casting coating process and occurs within the unprecedented time of <1 min (at least 3 orders of magnitude faster than state-of-the-art). Moreover, the resulting coated electrodes can be stored at room temperature for at least 5 months and still maintain full sensitivity and specificity. Importantly, this improved coating showed excellent antifouling activity against various biological fluids, including plasma, serum, whole blood, urine, and saliva.To enable affinity-based sensing of multiple biomarkers simultaneously, we have developed multiplexed EC sensors coated with the improved nanocomposite coating and then employed a sandwich enzyme-linked immunosorbent assay (ELISA) format for signal detection in which the substrate for the enzyme bound to the secondary antibody precipitates locally at the molecular binding site above the electrode surface. Using this improved EC sensor platform, we demonstrated ultrasensitive detection of a wide range of biomarkers from biological fluids, including clinical biomarkers, in both single and multiplex formats (N = 4) with assay times of 37 and 15 min when integrated with a microfluidic system. These biosensors developed demonstrate the vast potential of solving the biofouling problem, and how it can enable potential clinically important diagnostic applications. This Account reviews our antifouling surface chemistry and the multiplexed EC sensor-based biodetection method we developed and places it in context of the various innovative contributions that have been made by other researchers in this field. We are optimistic that future iterations of these systems will change the way diagnostic testing is done, and where it can be carried out, in the future.


Subject(s)
Biomarkers/analysis , Electrochemical Techniques/methods , Antibodies/analysis , Biofouling/prevention & control , Body Fluids/chemistry , Body Fluids/metabolism , Enzyme-Linked Immunosorbent Assay , Humans , Microfluidics , Nanocomposites/chemistry , Point-of-Care Systems
11.
Annu Rev Pharmacol Toxicol ; 58: 37-64, 2018 01 06.
Article in English | MEDLINE | ID: mdl-29309256

ABSTRACT

Physiologically based pharmacokinetic (PBPK) modeling and simulation approaches are beginning to be integrated into drug development and approval processes because they enable key pharmacokinetic (PK) parameters to be predicted from in vitro data. However, these approaches are hampered by many limitations, including an inability to incorporate organ-specific differentials in drug clearance, distribution, and absorption that result from differences in cell uptake, transport, and metabolism. Moreover, such approaches are generally unable to provide insight into pharmacodynamic (PD) parameters. Recent development of microfluidic Organ-on-a-Chip (Organ Chip) cell culture devices that recapitulate tissue-tissue interfaces, vascular perfusion, and organ-level functionality offer the ability to overcome these limitations when multiple Organ Chips are linked via their endothelium-lined vascular channels. Here, we discuss successes and challenges in the use of existing culture models and vascularized Organ Chips for PBPK and PD modeling of human drug responses, as well as in vitro to in vivo extrapolation (IVIVE) of these results, and how these approaches might advance drug development and regulatory review processes in the future.


Subject(s)
Drug Development/methods , Pharmaceutical Preparations/chemistry , Pharmaceutical Preparations/metabolism , Animals , Cell Culture Techniques/methods , Computer Simulation , Drug Approval/methods , Humans , Lab-On-A-Chip Devices , Models, Biological , Pharmacokinetics
12.
Development ; 145(16)2018 05 18.
Article in English | MEDLINE | ID: mdl-29776965

ABSTRACT

Although initially developed to replace animal testing in drug development, human 'organ on a chip' (organ chip) microfluidic culture technology offers a new tool for studying tissue development and pathophysiology, which has brought us one step closer to carrying out human experimentation in vitro In this Spotlight article, I discuss the central role that developmental biology played in the early stages of organ-chip technology, and how these models have led to new insights into human physiology and disease mechanisms. Advantages and disadvantages of the organ-chip approach relative to organoids and other human cell cultures are also discussed.


Subject(s)
Developmental Biology , Lab-On-A-Chip Devices , Microfluidics , Organoids/cytology , Tissue Engineering , Animal Testing Alternatives/instrumentation , Animal Testing Alternatives/methods , Developmental Biology/instrumentation , Developmental Biology/methods , Developmental Biology/trends , Disease , Embryonic Development/physiology , Humans , Microfluidics/instrumentation , Microfluidics/methods , Microfluidics/trends , Models, Biological , Organ Culture Techniques/methods , Organ Culture Techniques/trends , Spheroids, Cellular/cytology , Tissue Engineering/methods , Tissue Engineering/trends
13.
Nat Rev Mol Cell Biol ; 10(1): 75-82, 2009 Jan.
Article in English | MEDLINE | ID: mdl-19197334

ABSTRACT

Research in cellular mechanotransduction often focuses on how extracellular physical forces are converted into chemical signals at the cell surface. However, mechanical forces that are exerted on surface-adhesion receptors, such as integrins and cadherins, are also channelled along cytoskeletal filaments and concentrated at distant sites in the cytoplasm and nucleus. Here, we explore the molecular mechanisms by which forces might act at a distance to induce mechanochemical conversion in the nucleus and alter gene activities.


Subject(s)
Cell Nucleus/physiology , Extracellular Matrix/physiology , Mechanotransduction, Cellular/physiology , Animals , Cytoplasm/physiology , Humans , Stress, Mechanical
14.
Proc Natl Acad Sci U S A ; 115(5): E982-E991, 2018 01 30.
Article in English | MEDLINE | ID: mdl-29343648

ABSTRACT

Stimulation of protease-activated receptor 1 (PAR1) on endothelium by activated protein C (APC) is protective in several animal models of disease, and APC has been used clinically in severe sepsis and wound healing. Clinical use of APC, however, is limited by its immunogenicity and its anticoagulant activity. We show that a class of small molecules termed "parmodulins" that act at the cytosolic face of PAR1 stimulates APC-like cytoprotective signaling in endothelium. Parmodulins block thrombin generation in response to inflammatory mediators and inhibit platelet accumulation on endothelium cultured under flow. Evaluation of the antithrombotic mechanism showed that parmodulins induce cytoprotective signaling through Gßγ, activating a PI3K/Akt pathway and eliciting a genetic program that includes suppression of NF-κB-mediated transcriptional activation and up-regulation of select cytoprotective transcripts. STC1 is among the up-regulated transcripts, and knockdown of stanniocalin-1 blocks the protective effects of both parmodulins and APC. Induction of this signaling pathway in vivo protects against thromboinflammatory injury in blood vessels. Small-molecule activation of endothelial cytoprotection through PAR1 represents an approach for treatment of thromboinflammatory disease and provides proof-of-principle for the strategy of targeting the cytoplasmic surface of GPCRs to achieve pathway selective signaling.


Subject(s)
Endothelial Cells/metabolism , Inflammation/metabolism , Receptor, PAR-1/agonists , Thrombosis/metabolism , Animals , Apoptosis , Factor Xa/metabolism , Gene Knockdown Techniques , Glycoproteins/genetics , Glycoproteins/metabolism , Human Umbilical Vein Endothelial Cells , Humans , Lipopolysaccharides , Male , Mice , Mice, Inbred C57BL , Microcirculation , Peptide Hydrolases/metabolism , Receptors, G-Protein-Coupled/metabolism , Signal Transduction , Transcription, Genetic , Up-Regulation
15.
J Am Soc Nephrol ; 31(7): 1479-1495, 2020 07.
Article in English | MEDLINE | ID: mdl-32540856

ABSTRACT

BACKGROUND: Genetic mutations in α-actinin-4 (ACTN4)-an important actin crosslinking cytoskeletal protein that provides structural support for kidney podocytes-have been linked to proteinuric glomerulosclerosis in humans. However, the effect of post-translational modifications of ACTN4 on podocyte integrity and kidney function is not known. METHODS: Using mass spectrometry, we found that ACTN4 is phosphorylated at serine (S) 159 in human podocytes. We used phosphomimetic and nonphosphorylatable ACTN4 to comprehensively study the effects of this phosphorylation in vitro and in vivo. We conducted x-ray crystallography, F-actin binding and bundling assays, and immunofluorescence staining to evaluate F-actin alignment. Microfluidic organ-on-a-chip technology was used to assess for detachment of podocytes simultaneously exposed to fluid flow and cyclic strain. We then used CRISPR/Cas9 to generate mouse models and assessed for renal injury by measuring albuminuria and examining kidney histology. We also performed targeted mass spectrometry to determine whether high extracellular glucose or TGF-ß levels increase phosphorylation of ACTN4. RESULTS: Compared with the wild type ACTN4, phosphomimetic ACTN4 demonstrated increased binding and bundling activity with F-actin in vitro. Phosphomimetic Actn4 mouse podocytes exhibited more spatially correlated F-actin alignment and a higher rate of detachment under mechanical stress. Phosphomimetic Actn4 mice developed proteinuria and glomerulosclerosis after subtotal nephrectomy. Moreover, we found that exposure to high extracellular glucose or TGF-ß stimulates phosphorylation of ACTN4 at S159 in podocytes. CONCLUSIONS: These findings suggest that increased phosphorylation of ACTN4 at S159 leads to biochemical, cellular, and renal pathology that is similar to pathology resulting from human disease-causing mutations in ACTN4. ACTN4 may mediate podocyte injury as a consequence of both genetic mutations and signaling events that modulate phosphorylation.


Subject(s)
Actinin/metabolism , Albuminuria/metabolism , Glomerulosclerosis, Focal Segmental/metabolism , Podocytes/metabolism , Protein Processing, Post-Translational , Actinin/genetics , Actins/metabolism , Actins/ultrastructure , Albuminuria/etiology , Albuminuria/pathology , Animals , Cells, Cultured , Female , Glomerulosclerosis, Focal Segmental/etiology , Glomerulosclerosis, Focal Segmental/pathology , Glucose/pharmacology , Humans , Lab-On-A-Chip Devices , Male , Mice , Nephrectomy/adverse effects , Peptidomimetics , Phosphorylation/drug effects , Protein Binding , Serine/metabolism , Transforming Growth Factor beta/pharmacology
16.
Nat Mater ; 18(10): 1071-1077, 2019 10.
Article in English | MEDLINE | ID: mdl-31209386

ABSTRACT

Cell stiffness measurements have led to insights into various physiological and pathological processes1,2. Although many cellular behaviours are influenced by intracellular mechanical forces3-6 that also alter the material properties of the cell, the precise mechanistic relationship between intracellular forces and cell stiffness remains unclear. Here we develop a cell mechanical imaging platform with high spatial resolution that reveals the existence of nanoscale stiffness patterns governed by intracellular forces. On the basis of these findings, we develop and validate a cellular mechanical model that quantitatively relates cell stiffness to intracellular forces. This allows us to determine the magnitude of tension within actin bundles, cell cortex and plasma membrane from the cell stiffness patterns across individual cells. These results expand our knowledge on the mechanical interaction between cells and their environments, and offer an alternative approach to determine physiologically relevant intracellular forces from high-resolution cell stiffness images.


Subject(s)
Cells , Nanostructures , Biomechanical Phenomena , Humans , Microscopy, Atomic Force
17.
Small ; 15(42): e1903087, 2019 10.
Article in English | MEDLINE | ID: mdl-31448553

ABSTRACT

Inhomogeneous microcapsules that can encapsulate various cargo for controlled release triggered by osmotic shock are designed and reported. The microcapsules are fabricated using a microfluidic approach and the inhomogeneity of shell thickness in the microcapsules can be controlled by tuning the flow rate ratio of the middle phase to the inner phase. This study demonstrates the swelling of these inhomogeneous microcapsules begins at the thinnest part of shell and eventually leads to rupture at the weak spot with a low osmotic pressure. Systematic studies indicate the rupture fraction of these microcapsules increases with increasing inhomogeneity, while the rupture osmotic pressure decreases linearly with increasing inhomogeneity. The inhomogeneous microcapsules are demonstrated to be impermeable to small probe molecules, which enables long-term storage. Thus, these microcapsules can be used for long-term storage of enzymes, which can be controllably released through osmotic shock without impairing their biological activity. The study provides a new approach to design effective carriers to encapsulate biomolecules and release them on-demand upon applying osmotic shock.


Subject(s)
Capsules/chemistry , Microtechnology/methods , Osmotic Pressure , Hypotonic Solutions , Microfluidics , Molecular Weight , Optical Imaging , Peptide Hydrolases/metabolism
18.
Nat Methods ; 13(2): 151-7, 2016 Feb.
Article in English | MEDLINE | ID: mdl-26689262

ABSTRACT

Here we describe the development of a human lung 'small airway-on-a-chip' containing a differentiated, mucociliary bronchiolar epithelium and an underlying microvascular endothelium that experiences fluid flow, which allows for analysis of organ-level lung pathophysiology in vitro. Exposure of the epithelium to interleukin-13 (IL-13) reconstituted the goblet cell hyperplasia, cytokine hypersecretion and decreased ciliary function of asthmatics. Small airway chips lined with epithelial cells from individuals with chronic obstructive pulmonary disease recapitulated features of the disease such as selective cytokine hypersecretion, increased neutrophil recruitment and clinical exacerbation by exposure to viral and bacterial infections. With this robust in vitro method for modeling human lung inflammatory disorders, it is possible to detect synergistic effects of lung endothelium and epithelium on cytokine secretion, identify new biomarkers of disease exacerbation and measure responses to anti-inflammatory compounds that inhibit cytokine-induced recruitment of circulating neutrophils under flow.


Subject(s)
Epithelium/drug effects , Inflammation/metabolism , Interleukin-13/pharmacology , Lab-On-A-Chip Devices , Lung Diseases/drug therapy , Lung Diseases/metabolism , Humans , Inflammation/pathology , Tissue Culture Techniques
19.
Proc Natl Acad Sci U S A ; 113(1): E7-15, 2016 Jan 05.
Article in English | MEDLINE | ID: mdl-26668389

ABSTRACT

A human gut-on-a-chip microdevice was used to coculture multiple commensal microbes in contact with living human intestinal epithelial cells for more than a week in vitro and to analyze how gut microbiome, inflammatory cells, and peristalsis-associated mechanical deformations independently contribute to intestinal bacterial overgrowth and inflammation. This in vitro model replicated results from past animal and human studies, including demonstration that probiotic and antibiotic therapies can suppress villus injury induced by pathogenic bacteria. By ceasing peristalsis-like motions while maintaining luminal flow, lack of epithelial deformation was shown to trigger bacterial overgrowth similar to that observed in patients with ileus and inflammatory bowel disease. Analysis of intestinal inflammation on-chip revealed that immune cells and lipopolysaccharide endotoxin together stimulate epithelial cells to produce four proinflammatory cytokines (IL-8, IL-6, IL-1ß, and TNF-α) that are necessary and sufficient to induce villus injury and compromise intestinal barrier function. Thus, this human gut-on-a-chip can be used to analyze contributions of microbiome to intestinal pathophysiology and dissect disease mechanisms in a controlled manner that is not possible using existing in vitro systems or animal models.


Subject(s)
Inflammatory Bowel Diseases/microbiology , Inflammatory Bowel Diseases/physiopathology , Intestinal Mucosa/microbiology , Intestinal Mucosa/physiopathology , Lab-On-A-Chip Devices , Microbiota/physiology , Models, Biological , Peristalsis/physiology , Animals , Anti-Bacterial Agents/therapeutic use , Bacteria/growth & development , Caco-2 Cells , Humans , Ileus/drug therapy , Ileus/microbiology , Ileus/physiopathology , In Vitro Techniques , Inflammatory Bowel Diseases/drug therapy , Interleukin-1beta/immunology , Interleukin-6/immunology , Interleukin-8/immunology , Intestinal Mucosa/drug effects , Peristalsis/drug effects , Probiotics/therapeutic use , Tumor Necrosis Factor-alpha/immunology
20.
Nano Lett ; 18(6): 3557-3564, 2018 06 13.
Article in English | MEDLINE | ID: mdl-29756442

ABSTRACT

Designer nanoparticles with controlled shapes and sizes are increasingly popular vehicles for therapeutic delivery due to their enhanced cell-delivery performance. However, our ability to fashion nanoparticles has offered only limited control over these parameters. Structural DNA nanotechnology has an unparalleled ability to self-assemble three-dimensional nanostructures with near-atomic resolution features, and thus, it offers an attractive platform for the systematic exploration of the parameter space relevant to nanoparticle uptake by living cells. In this study, we examined the cell uptake of a panel of 11 distinct DNA-origami shapes, with the largest dimension ranging from 50-400 nm, in 3 different cell lines. We found that larger particles with a greater compactness were preferentially internalized compared with elongated, high-aspect-ratio particles. Uptake kinetics were also found to be more cell-type-dependent than shape-dependent, with specialized endocytosing dendritic cells failing to saturate over 12 h of study. The knowledge gained in the current study furthers our understanding of how particle shape affects cellular uptake and heralds the development of DNA nanotechnologies toward the improvement of current state-of-the-art cell-delivery vehicles.


Subject(s)
DNA/metabolism , Nanoparticles/metabolism , Biological Transport , Cell Line , Dendritic Cells/cytology , Dendritic Cells/metabolism , Endocytosis , HEK293 Cells , Human Umbilical Vein Endothelial Cells , Humans , Nanoparticles/ultrastructure , Nanotechnology
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