MO068A KIDNEY-ON-THE-CHIP APPROACH USING PRIMARY HUMAN TUBULAR CELLS IN A 3D CO-CULTURE SYSTEM

2020 ◽  
Vol 35 (Supplement_3) ◽  
Author(s):  
Gregor J Wilken ◽  
Julian Aurelio Marschner ◽  
Paola Romagnani ◽  
Hans-Joachim Anders

Abstract Background and Aims Conventional 2D mono-culture in vitro models using immortalized cell lines are still widely used in experimental nephrology, although their value is limited by poor translatability and predictive value for the in vivo or even human situation. The implementation of more sophisticated in vitro assays as routine cell culture systems is often limited by complex protocols and long lasting procedures. We aimed to establish and validate a relatively easy-to-use but yet (patho-) physiologically relevant cell culture assay that mimics key aspects of the in vivo situation of renal tubules, including a leak-thight epithelium with a luminal and baso-lateral side, interstitial matrix, a peri-tubular capillary and circulating blood cells inside its lumen. Method We utilized the 3-lane OrganoPlate® system (Mimetas, Leiden, Netherlands) as a scaffold. After infusing a collagen I matrix in the middle channel (C2), primary human renal progenitor cells are seeded into the upper channel (C1), adhering to the C2-matrix. The plate is put on a perfusion rocker (Mimetas), that facilitates continuous gravity-triggered bi-directional perfusion of C1. Within 48h the cells form a leak-tight tubular structure with a continuous lumen. Next, human endothelial cells are seeded into the bottom channel (C3), which adhered to the opposite site of the C2-matrix and – upon continuous perfusion – formed a vessel-like structure with a continuous lumen, as well. Finally, primary human white blood cells were isolated and seeded into C3 (see figure). Results Establishing the whole tubule-on-the-chip as described above takes on average three days. We investigated its operational life span by monitoring the barrier integrity of the tubular structure in C1 using a fluorescence-labeled dextran (150 kDa). Over a course of 5 days the tubular integrity did not decline, suggesting that the co-culture system remains stable and functional for at least 5 days. In accordance with other studies, the primary human tubular cells constituting the 3D tubule-on-the-chip expressed higher levels of functionally relevant proteins, e..g the tight-junction protein ZO-1 and the sodium-potassium-pump Na-K-ATPase, compared to standard 2D settings without perfusion. This emphasizes, that even primary cells show a physiologically reduced phenotype in standard 2D settings, which possibly impedes the identification and representative quantification of physiologically and hence also patho-physiologically relevant mechanisms in vitro. To study the interaction of cells in the tubule-on-the-chip, we investigated the recruitment of immune cells from C3 (vessel) across C2 (interstitium) to C1 (renal tubule), which - in vivo - represents a detrimental mechanism of action in intrarenal forms of AKI. Under baseline conditions the immune cells inserted into C3 did not leave their compartment. Upon damaging the tubular cells in C1 with extracellular histones, neutrophils and monocytes left C3 (extravasation), migrated through C2 and could be found in close contact with epithelial cells of C1. This serves as a proof of principle, that the tubule-on-the-chip is applicable to study complex cell-cell and cell-substrate interactions, such as chemokine-mediate immune cell homing. Measuring lactate dehydrogenase release for a number of known nephrotoxic agents revealed, that tubular cells forming a 3D-structure while kept under perfusion show significantly different responses to the same dose compared to standard 2D conditions, suggesting that dose-response studies using target cells out of their tissues context can be misleading when extrapolating results from in vitro to in vivo. Conclusion The results of this study suggest, that sophisticated 3D co-culture models of a renal tubule including an interstitial compartment, a peri-tubluar capillary and circulating immune cells are feasible and potentially suited to allow for in depth mechanistic studies in vitro.

2020 ◽  
Vol 45 (5) ◽  
pp. 631-637
Author(s):  
Cansu Ozel-Tasci ◽  
Gozde Pilatin ◽  
Ozgur Edeer ◽  
Sukru Gulec

AbstractBackgroundFunctional foods can help prevent metabolic diseases, and it is essential to evaluate functional characteristics of foods through in vitro and in vivo experimental approaches.ObjectiveWe aimed to use the bicameral cell culture system combined with the in vitro digestion to evaluate glucose bioavailability.Materials and methodsCake, almond paste, and pudding were modified by adding fiber and replacing sugar with sweeteners and polyols. Digestion process was modeled in test tubes. Rat enterocyte cells (IEC-6) were grown in a bicameral cell culture system to mimic the physiological characteristics of the human intestine. The glucose bioaccessibility and cellular glucose efflux were measured by glucose oxidase assay.Results and discussionThe glucose bioaccessibilities of modified foods were significantly lower (cake: 2.6 fold, almond paste: 9.2 fold, pudding 2.8 fold) than the controls. Cellular glucose effluxes also decreased in the modified cake, almond paste, and pudding by 2.2, 4, and 2 fold respectively compared to their controls.ConclusionOur results suggest that combining in vitro enzymatic digestion with cell culture studies can be a practical way to test in vitro glucose bioaccessibility and bioavailability in functional food development.


Cancers ◽  
2020 ◽  
Vol 12 (10) ◽  
pp. 2754 ◽  
Author(s):  
Teruki Nii ◽  
Kimiko Makino ◽  
Yasuhiko Tabata

Anticancer drug screening is one of the most important research and development processes to develop new drugs for cancer treatment. However, there is a problem resulting in gaps between the in vitro drug screening and preclinical or clinical study. This is mainly because the condition of cancer cell culture is quite different from that in vivo. As a trial to mimic the in vivo cancer environment, there has been some research on a three-dimensional (3D) culture system by making use of biomaterials. The 3D culture technologies enable us to give cancer cells an in vitro environment close to the in vivo condition. Cancer cells modified to replicate the in vivo cancer environment will promote the biological research or drug discovery of cancers. This review introduces the in vitro research of 3D cell culture systems with biomaterials in addition to a brief summary of the cancer environment.


2020 ◽  
Vol 31 (12) ◽  
pp. 2757-2772 ◽  
Author(s):  
Oren Pleniceanu ◽  
Orit Harari-Steinberg ◽  
Dorit Omer ◽  
Yehudit Gnatek ◽  
Bat-El Lachmi ◽  
...  

BackgroundCell-based therapies aimed at replenishing renal parenchyma have been proposed as an approach for treating CKD. However, pathogenic mechanisms involved in CKD such as renal hypoxia result in loss of kidney function and limit engraftment and therapeutic effects of renal epithelial progenitors. Jointly administering vessel-forming cells (human mesenchymal stromal cells [MSCs] and endothelial colony-forming cells [ECFCs]) may potentially result in in vivo formation of vascular networks.MethodsWe administered renal tubule–forming cells derived from human adult and fetal kidneys (previously shown to exert a functional effect in CKD mice) into mice, alongside MSCs and ECFCs. We then assessed whether this would result in generation of “renovascular units” comprising both vessels and tubules with potential interaction.ResultsDirectly injecting vessel-forming cells and renal tubule–forming cells into the subcutaneous and subrenal capsular space resulted in self-organization of donor-derived vascular networks that connected to host vasculature, alongside renal tubules comprising tubular epithelia of different nephron segments. Vessels derived from MSCs and ECFCs augmented in vivo tubulogenesis by the renal tubule–forming cells. In vitro coculture experiments showed that MSCs and ECFCs induced self-renewal and genes associated with mesenchymal–epithelial transition in renal tubule–forming cells, indicating paracrine effects. Notably, after renal injury, renal tubule–forming cells and vessel-forming cells infused into the renal artery did not penetrate the renal vascular network to generate vessels; only administering them into the kidney parenchyma resulted in similar generation of human renovascular units in vivo.ConclusionsCombined cell therapy of vessel-forming cells and renal tubule–forming cells aimed at alleviating renal hypoxia and enhancing tubulogenesis holds promise as the basis for new renal regenerative therapies.


2019 ◽  
Vol 2019 ◽  
pp. 1-12 ◽  
Author(s):  
Charles P. Harding ◽  
Elizabeth Vargis

Muscular atrophy, defined as the loss of muscle tissue, is a serious issue for immobilized patients on Earth and for humans during spaceflight, where microgravity prevents normal muscle loading. In vitro modeling is an important step in understanding atrophy mechanisms and testing countermeasures before animal trials. The most ideal environment for modeling must be empirically determined to best mimic known responses in vivo. To simulate microgravity conditions, murine C2C12 myoblasts were cultured in a rotary cell culture system (RCCS). Alginate encapsulation was compared against polystyrene microcarrier beads as a substrate for culturing these adherent muscle cells. Changes after culture under simulated microgravity were characterized by assessing mRNA expression of MuRF1, MAFbx, Caspase 3, Akt2, mTOR, Ankrd1, and Foxo3. Protein concentration of myosin heavy chain 4 (Myh4) was used as a differentiation marker. Cell morphology and substrate structure were evaluated with brightfield and fluorescent imaging. Differentiated C2C12 cells encapsulated in alginate had a significant increase in MuRF1 only following simulated microgravity culture and were morphologically dissimilar to normal cultured muscle tissue. On the other hand, C2C12 cells cultured on polystyrene microcarriers had significantly increased expression of MuRF1, Caspase 3, and Foxo3 and easily identifiable multinucleated myotubes. The extent of differentiation was higher in simulated microgravity and protein synthesis more active with increased Myh4, Akt2, and mTOR. The in vitro microcarrier model described herein significantly increases expression of several of the same atrophy markers as in vivo models. However, unlike animal models, MAFbx and Ankrd1 were not significantly increased and the fold change in MuRF1 and Foxo3 was lower than expected. Using a standard commercially available RCCS, the substrates and culture methods described only partially model changes in mRNAs associated with atrophy in vivo.


1996 ◽  
Vol 134 (4) ◽  
pp. 497-500 ◽  
Author(s):  
Mehmet Kuran ◽  
Peter J Broadbent ◽  
JS Morley Hutchinson

Kuran M, Broadbent PJ, Hutchinson JSM. Bovine granulosa cell culture for assessment of potency and specificity of antibodies to pregnant mares' serum gonadotrophin. Eur J Endocrinol 1996;134:497–500. ISSN 0804–4643 Antibodies to pregnant mares' serum gonadotrophin (PMSG) neutralize the effect of PMSG in vivo and increase the number of transferable embryos when administered at the optimum time relative to the preovulatory luteinizing hormone (LH) surge in PMSG-stimulated cows. The objective of the present study was to investigate the possible use of bovine granulosa cells in a serum-free culture system as a bioassay for antibodies to PMSG. Granulosa cells (2–3 × 105 viable cells) were cultured with varying doses of PMSG and/or an anti-PMSG for 4 days. Whilst progesterone production (ng/μg DNA) of granulosa cells was stimulated by PMSG (p < 0.01) in a dose-dependent manner, increasing amounts of anti-PMSG neutralized (p < 0.01) this stimulatory effect of either follicle-stimulating hormone or LH on progesterone production of bovine granulosa cells in vitro. The bovine granulosa cell culture system is a potential in vitro bioassay method for testing the specificity and the neutralizing capacity of different anti-PMSG preparations. Mehmet Kuran, Ondokuz Mayis Universitesi, Ziraat Fakultesi, Zootekni Bolumu, 55149 Samsun, Turkey


2021 ◽  
Vol 22 (4) ◽  
pp. 1805
Author(s):  
Ryo Ikari ◽  
Ken-ichi Mukaisho ◽  
Susumu Kageyama ◽  
Masayuki Nagasawa ◽  
Shigehisa Kubota ◽  
...  

The conventional two-dimensional (2D) culture is available as an in vitro experimental model. However, the culture system reportedly does not recapitulate the in vivo cancer microenvironment. We recently developed a tissueoid cell culture system using Cellbed, which resembles the loose connective tissue in living organisms. The present study performed 2D and three-dimensional (3D) culture using prostate and bladder cancer cell lines and a comprehensive metabolome analysis. Compared to 3D, the 2D culture had significantly lower levels of most metabolites. The 3D culture system did not impair mitochondrial function in the cancer cells and produce energy through the mitochondria simultaneously with aerobic glycolysis. Conversely, ATP production, biomass (nucleotides, amino acids, lipids and NADPH) synthesis and redox balance maintenance were conducted in 3D culture. In contrast, in 2D culture, biomass production was delayed due to the suppression of metabolic activity. The 3D metabolome analysis using the tissueoid cell culture system capable of in vivo cancer cell culture yielded results consistent with previously reported cancer metabolism theories. This system is expected to be an essential experimental tool in a wide range of cancer research fields, especially in preclinical stages while transitioning from in vitro to in vivo.


Author(s):  
D.J.P. Ferguson ◽  
A.R. Berendt ◽  
J. Tansey ◽  
K. Marsh ◽  
C.I. Newbold

In human malaria, the most serious clinical manifestation is cerebral malaria (CM) due to infection with Plasmodium falciparum. The pathology of CM is thought to relate to the fact that red blood cells containing mature forms of the parasite (PRBC) cytoadhere or sequester to post capillary venules of various tissues including the brain. This in vivo phenomenon has been studied in vitro by examining the cytoadherence of PRBCs to various cell types and purified proteins. To date, three Ijiost receptor molecules have been identified; CD36, ICAM-1 and thrombospondin. The specific changes in the PRBC membrane which mediate cytoadherence are less well understood, but they include the sub-membranous deposition of electron-dense material resulting in surface deformations called knobs. Knobs were thought to be essential for cytoadherence, lput recent work has shown that certain knob-negative (K-) lines can cytoadhere. In the present study, we have used electron microscopy to re-examine the interactions between K+ PRBCs and both C32 amelanotic melanoma cells and human umbilical vein endothelial cells (HUVEC).We confirm previous data demonstrating that C32 cells possess numerous microvilli which adhere to the PRBC, mainly via the knobs (Fig. 1). In contrast, the HUVEC were relatively smooth and the PRBCs appeared partially flattened onto the cell surface (Fig. 2). Furthermore, many of the PRBCs exhibited an invagination of the limiting membrane in the attachment zone, often containing a cytoplasmic process from the endothelial cell (Fig. 2).


2021 ◽  
Vol 22 (14) ◽  
pp. 7666
Author(s):  
Sara C. Credendino ◽  
Marta De Menna ◽  
Irene Cantone ◽  
Carmen Moccia ◽  
Matteo Esposito ◽  
...  

Forkhead box E1 (FOXE1) is a lineage-restricted transcription factor involved in thyroid cancer susceptibility. Cancer-associated polymorphisms map in regulatory regions, thus affecting the extent of gene expression. We have recently shown that genetic reduction of FOXE1 dosage modifies multiple thyroid cancer phenotypes. To identify relevant effectors playing roles in thyroid cancer development, here we analyse FOXE1-induced transcriptional alterations in thyroid cells that do not express endogenous FOXE1. Expression of FOXE1 elicits cell migration, while transcriptome analysis reveals that several immune cells-related categories are highly enriched in differentially expressed genes, including several upregulated chemokines involved in macrophage recruitment. Accordingly, FOXE1-expressing cells induce chemotaxis of co-cultured monocytes. We then asked if FOXE1 was able to regulate macrophage infiltration in thyroid cancers in vivo by using a mouse model of cancer, either wild type or with only one functional FOXE1 allele. Expression of the same set of chemokines directly correlates with FOXE1 dosage, and pro-tumourigenic M2 macrophage infiltration is decreased in tumours with reduced FOXE1. These data establish a novel link between FOXE1 and macrophages recruitment in the thyroid cancer microenvironment, highlighting an unsuspected function of this gene in the crosstalk between neoplastic and immune cells that shape tumour development and progression.


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