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Raoux, M.

Publications and source records attributed to Raoux, M..

3 recordsLinked to original sources

Continuous monitoring of glucose levels in vivo with a micro-organ based microfluidic biosensor

Continuous monitoring of glucose levels has improved diabetes therapy. Current approaches rely on enzyme-linked electrochemical probes but do not allow a fully autonomous artificial pancreas. In contrast, monitoring the activity of a few electrogenic pancreatic islets in a biosensor may harness the computational power of the different endocrine cell types in the micro-organ, shaped for nutrient detection during evolution, and provide a more appropriate read-out. Extracellular electrophysiology captures slow potentials (SPs), which reflect coupled islet {beta}-cell activity and is thus a method of choice for long-term monitoring of native islet activity in vitro. We have now developed a microfluidic microelectrode chip containing a few islets and linked to interstitial fluids in live rats by subcutaneous microdialysis. The electrical activity in terms of slow potentials monitored by this biosensor reacts ex vivo proportionally to glucose levels off-line in serum or dialysed interstitial fluid. On-line monitoring in vivo reveals an excellent correlation between islet slow potential frequency, and to a lesser degree to slow potential amplitudes, to glucose concentrations with little variation between animals. The microorgan-based biosensor harness multiple parameters in vivo and provides a read-out closer to physiology. This demonstrates the usefulness of such biosensors for sensor-based therapy of diabetes.

physiology↗

Extracellular electrophysiology on clonal human beta-cell spheroids

Pancreatic islets are important in nutrient homeostasis and improved cellular models of clonal origin may very useful especially in view of relatively scarce primary material. Close 3D contact and coupling between {beta}-cells are a hallmark of physiological function improving signal/noise ratios. Extracellular electrophysiology using micro-electrode arrays (MEA) is technically far more accessible than single cell patch clamp, enables dynamic monitoring of electrical activity in 3D organoids and recorded multicellular slow potentials (SP) provide unbiased insight in cell-cell coupling. We have therefore asked whether 3D spheroids enhance clonal {beta}-cell function such as electrical activity and hormone secretion using human EndoC-{beta}H1, EndoC-{beta}H5 and rodent INS-1 cells. EndoC-{beta}H1 spheroids exhibited increased signals in terms of SP frequency and especially amplitude as compared to monolayers and even single cell action potentials (AP) were quantifiable. Enhanced electrical signature in spheroids was accompanied by an increase in the glucose stimulated insulin secretion index. EndoC-{beta}H5 monolayers and spheroids gave electrophysiological profiles similar to EndoC-{beta}H1, except for a higher electrical activity at 3 mM glucose, and exhibited moreover a biphasic profile. Again, physiological concentrations of GLP-1 increased AP frequency. Spheroids also exhibited a higher secretion index. INS-1 cells did not form stable spheroids, but overexpression of connexin 36, required for cell-cell coupling, increased glucose responsiveness, dampened basal activity and consequently augmented the stimulation index. In conclusion, spheroid formation enhances physiological function of the human clonal {beta}-cell lines and these models may provide surrogates for primary islets in extracellular electrophysiology.

cell biology↗

Electrophysiological characterisation of iPSC-derived human β-like cells and an SLC30A8 disease model.

iPSC-derived human {beta}-like cells (BLC) hold promise for both therapy and disease modelling, but their generation remains challenging and their functional analyses beyond transcriptomic and morphological assessments remain limited. Here, we validate an approach using multicellular and single cell electrophysiological tools to evaluate BLCs functions. The Multi-Electrode Arrays (MEAs) measuring the extracellular electrical activity revealed that BLCs are electrically coupled, produce slow potential (SP) signals like primary {beta}-cells that are closely linked to insulin secretion. We also used high-resolution single-cell patch-clamp measurements to capture the exocytotic properties, and characterize voltage-gated sodium and calcium currents. These were comparable to those in primary {beta} and EndoC-{beta}H1 cells. The KATP channel conductance is greater than in human primary {beta} cells which may account for the limited glucose responsiveness observed with MEA. We used MEAs to study the impact of the type 2 diabetes protective SLC30A8 allele (p.Lys34Serfs*50) and found that BLCs with this allele have stronger electrical coupling. Our data suggest that with an adapted approach BLCs from pioneer protocol can be used to evaluate the functional impact of genetic variants on {beta}-cell function and coupling. Article highlightsO_ST_ABSWhy did we undertake this study?C_ST_ABSiPSC-derived beta like cells (BLCs) from pioneering protocols are known for variable {beta}-cell functionality and mixed cell populations which greatly limits downstream functional assessment. To overcome this challenge, we used electrophysiological tools to provide a detailed functional assessment of BLCs. We then wanted to apply this approach to identify additional functional differences from BLCs carrying a protective Type 2 Diabetes SLC30A8 allele. What is the specific question(s) we wanted to answer?Can an electrophysiological approach provide detailed functional characterisation of iPSC-derived BLCs? Is this approach sensitive enough to capture functional differences resulting from SLC30A8 loss of function (lof)? What did we find?We found that BLCs generated from pioneer protocol shared electrophysiological features with human pancreatic {beta}-cells, and that a T2D-protective SLC30A8 lof allele improves the electrical coupling activity of human {beta}-cells. What are the implications of our findings?Our findings validate the use of intra- and extra-cellular electrophysiology to assess and monitor the functions of BLCs. Our approach opens the perspective of using MEAs to live-monitor the differentiation quality of iPSC-derived BLCs and to determine the functional consequences of diabetes-associated variants.

cell biology↗