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Smucler, J.

Publications and source records attributed to Smucler, J..

5 recordsLinked to original sources

LATEER: Low-Cost Open-Source Platform for Electrical Stimulation and TEER Measurement in Human Cardiomyocytes

Electrical stimulation (ES) and transepithelial/transendothelial electrical resistance (TEER) measurements are essential techniques in cell biology and tissue engineering, yet commercial devices for these applications cost between USD 2,500-9,000 and typically offer only one functionality. We present LATEER (Low-cost Arduino-based TEER and Electrical stimulation device), an open-source hardware platform that combines both ES and TEER measurement capabilities at a total cost below USD 100. The device features four independent channels, configurable pulsatile signals (amplitude up to 8.2 V, frequency 0.1-500 Hz, pulse width [&ge;]0.1 ms), and a resistance measurement range of 300 {Omega} to 1 M{Omega}, with <5% error for R {gtrsim} 4.7 k{Omega}. LATEER uses commercially available graphite pencil leads as electrodes ([~]USD 2 vs. USD 350 for commercial Ag/AgCl electrodes), which demonstrated excellent biocompatibility in cell culture. The system includes 3D-printed electrode holders compatible with standard 12-well and 24-well plates, allowing microscope visualization without electrode removal, and a Python-based graphical user interface for parameter configuration and real-time data acquisition. Because the electrodes remain fixed in the plate lid and only a single cable enters the incubator, both stimulation and resistance measurement can run continuously under standard culture conditions (37 {degrees}C, 5% CO2) without removing the plate or repositioning the electrodes, avoiding the temperature excursions and placement variability inherent to manual chopstick measurements. Validation with human pluripotent stem cell-derived cardiomyocytes demonstrated reliable frequency capture (electrical pacing) of the contracting monolayer, with a capture threshold between 250 and 400 mV/mm and controlled pacing across the 0.5-5 Hz range. TEER functionality was verified with mesenchymal stem cells, where the device resolved cell-density-dependent differences in electrical resistance in real time. All design files, firmware, and software are freely available under the CERN-OHL-S v2 license, enabling replication and customization by research laboratories worldwide. HighlightsO_LIAn open-source device combines electrical stimulation and TEER measurement under $100 C_LIO_LIGraphite electrodes offer biocompatibility at 0.6% cost of commercial alternatives C_LIO_LIFour independent channels with configurable parameters and real-time data logging. C_LIO_LIContinuous run setup in-incubator; no electrode repositioning needed C_LIO_LIValidated with stem cell-derived cardiomyocytes, achieving frequency capture (threshold 250-400 mV/mm) C_LIO_LI3D-printed holders enable microscope visualization without electrode removal C_LI Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=78 SRC="FIGDIR/small/743263v1_ufig1.gif" ALT="Figure 1"> View larger version (28K): org.highwire.dtl.DTLVardef@19e2eeorg.highwire.dtl.DTLVardef@181aeb4org.highwire.dtl.DTLVardef@f4b77aorg.highwire.dtl.DTLVardef@39cced_HPS_FORMAT_FIGEXP M_FIG C_FIG Specifications Table O_TBL View this table: org.highwire.dtl.DTLVardef@bd04c1org.highwire.dtl.DTLVardef@1831c4eorg.highwire.dtl.DTLVardef@b7698forg.highwire.dtl.DTLVardef@1736519org.highwire.dtl.DTLVardef@f2595c_HPS_FORMAT_FIGEXP M_TBL C_TBL

bioengineering↗

Modulating SPARC Expression in Mesenchymal Stem Cells Improves Secretome-Mediated Skin Regeneration and Wound Repair

Mesenchymal stem cells (MSCs) have garnered significant attention over the past three decades due to their robust regenerative potential, primarily mediated by their paracrine activity by releasing soluble bioactive factors and extracellular vesicles (EVs). The MSC secretome plays a pivotal role in wound healing by influencing cellular migration, inflammation, angiogenesis, extracellular matrix (ECM) remodeling, and re-epithelialization. SPARC (Secreted Protein Acidic and Rich in Cysteine), a multifunctional ECM glycoprotein involved in tissue repair and remodeling, regulates key processes such as cell migration, proliferation, angiogenesis, and survival. Despite its known role in ECM dynamics, the impact of SPARC expression on the regenerative properties of MSCs remains underexplored. In this study, we hypothesized that SPARC overexpression in MSCs enhances their secretomes regenerative capacity. Using lentiviral systems, we generated SPARC-overexpressing (+SPARC) and SPARC-knockdown (KD-SPARC) MSCs to investigate SPARCs role in wound healing. Conditioned media (CM) derived from these MSCs were analyzed in vitro for their effects on human skin keratinocytes and fibroblasts. Our results revealed that SPARC expression significantly influences cell-specific migration and cell cycle. Furthermore, in an in vivo wound healing model, CM from +SPARC MSCs accelerated regeneration, while SPARC absence in MSCs CM delayed the healing process. These findings underscore the critical role of SPARC in modulating MSC secretome composition and enhancing its regenerative efficacy. This study highlights SPARC as a promising therapeutic target for the development of advanced regenerative therapies aimed at improving cutaneous wound healing outcomes.

cell biology↗

Metabolic Maturation Unveils Left Ventricular Identity in WNT ON/OFF Human Pluripotent Stem Cell-Derived Cardiomyocytes

Deriving high-purity mature left ventricular (LV) cardiomyocytes (CMs) from human pluripotent stem cells (hPSCs) is a priority for cardiovascular research and for future therapeutic applications. Small-molecule WNT modulation (WNT ON/OFF) is currently the predominant differentiation method; however, a critical discordance exists regarding its cardiac subtype outcome. While lineage tracing suggests a First Heart Field (FHF) bias, phenotypic characterizations report significant heterogeneity regarding definitive ventricular markers, leading to controversy about the cardiac subtypes generated by this method. Here, we demonstrate that this apparent heterogeneity is a result of CM immaturity. Using single-cell protein analysis, we first show that WNT ON/OFF generates an NKX2.5+ progenitor pool that robustly co-expresses HAND1, confirming uniform FHF specification regardless of differentiation efficiency. We then demonstrate that the CM population negative for the ventricular marker MYL2 observed at early differentiation timepoints mostly represents immature LV cardiomyocytes that have not yet acquired their definitive phenotype. By implementing a targeted metabolic maturation regime, we unlocked this identity, achieving 95% MYL2+/HAND1+/TBX5+ LV CMs by day 38, substantially earlier and with higher chamber-specific purity than previously reported. This phenotypic resolution was accompanied by advanced structural maturation, including sarcomeric protein isoform switching, multinucleation, and notably, the assembly of polarized XIRP2+ intercalated discs, a hallmark of postnatal CM maturation not previously described in 2D differentiations. Validated across three independent hPSC lines, these findings provide the field with a rapid, high-fidelity platform for generating pure mature LV cardiomyocytes for disease modeling and therapeutic research.

developmental biology↗

SHEN-LONG, a novel cardiac regulatory locus, regulates cardiac master transcription factor NKX2-5 in pluripotent stem cell derived cardiomyocytes

Cardiac development is a finely regulated process, transforming undifferentiated cells into the specialized cell components of the heart. Super-Enhancers (SE), clusters of enhancers densely populated with transcription factors, play a central role in cell fate decisions, including cardiogenesis. In this work, we studied a cardiac SE in chr3q25.31. This locus also contains a cardiac specific long non-coding RNA: LINC00881 (LINC881). We termed this region of interest SHEN-LONG (Super Heart ENhancer and LONG non-coding LINC881), and selected it for further functional characterization. Our analysis revealed SHEN-LONG is a hotspot of cardiac kernel transcription factor binding sites. Cardiac differentiation of human iPSC with partial Knock Out of SHEN-LONG resulted in cardiomyocytes with reduced NKX2-5 expression, a master cardiac transcription factor, suggesting a significant role of SHEN-LONG in this process. Whole transcriptome sequencing of SHEN-LONG KO cardiomyocytes produced 134 differentially expressed genes located at great distances (>4Mb) emphasizing its long-range functional impact. A regulation mediated essentially by the SE and not by LINC881 was confirmed when LINC881 overexpression did not recover NKX2-5 expression. These findings provide insights into a novel NKX2-5 regulatory mechanism. The knowledge gained in this work may pave the way for advances in therapeutic interventions for cardiovascular disorders.

molecular biology↗

The transcription factor OCT6 promotes the dissolution of the naive pluripotent state by repressing Nanog and activating a formative state gene regulatory network.

Animal development relies on complex gene regulatory networks (GRNs) that govern the nearly irreversible changes that occur during cell differentiation. In this work we aimed to determine key transcription factors (TFs) associated with the dissolution of the naive pluripotent state and the acquisition of a formative identity. We identified OCT6 as one of the earliest TFs induced during the onset of mouse embryonic stem cell (mESCs) differentiation. To investigate its role, we generated an Oct6 knockout mESC line, which failed to acquire the characteristic cell morphology associated with the formative state. Transcriptome analysis of differentiating cells revealed nearly 300 differentially expressed genes compared to wild-type cells, including pluripotency TFs Nanog, Klf2, Nr5a2, Prdm14, and Esrrb, that failed to correctly downregulate. Notably, premature expression of OCT6 in naive cells triggered a rapid morphological transformation mirroring differentiation, accompanied by self-induction of Oct6 and expression of TFs such as Sox3, Zic2/3, Foxp1, as well as the formative genes Dnmt3A and FGF5. Strikingly, the majority of OCT6 expressing cells did not express NANOG. Gene expression and single molecule RNA-FISH analysis confirmed that this regulation was at the transcriptional level. Collectively, our results establish OCT6 as a key TF in the dissolution of the naive pluripotent state and support a model where Oct6 and Nanog form a double negative feedback loop which could act as a toggle switch important for the transition to the formative state. HighlightsO_LIOct6 is rapidly induced as mESCs exit ground state pluripotency. C_LIO_LILoss of OCT6 negatively affects the transition to formative pluripotency. C_LIO_LIPremature expression of OCT6 in mESCs is sufficient to induce a formative-like phenotype. C_LIO_LIOCT6 and NANOG repress each other forming a double negative feedback loop. C_LI

developmental biology↗