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    Understanding the phenotypic variability in Niemann-Pick disease type C (NPC): a need for precision medicine
    (2023)
    Macarena Las Heras
    ;
    Benjamín Szenfeld
    ;
    Rami A. Ballout
    ;
    Emanuele Buratti
    ;
    Silvana Zanlungo
    <jats:title>Abstract</jats:title><jats:p>Niemann-Pick type C (NPC) disease is a lysosomal storage disease (LSD) characterized by the buildup of endo-lysosomal cholesterol and glycosphingolipids due to loss of function mutations in the <jats:italic>NPC1</jats:italic> and <jats:italic>NPC2</jats:italic> genes. NPC patients can present with a broad phenotypic spectrum, with differences at the age of onset, rate of progression, severity, organs involved, effects on the central nervous system, and even response to pharmacological treatments. This article reviews the phenotypic variation of NPC and discusses its possible causes, such as the remaining function of the defective protein, modifier genes, sex, environmental cues, and splicing factors, among others. We propose that these factors should be considered when designing or repurposing treatments for this disease. Despite its seeming complexity, this proposition is not far-fetched, considering the expanding interest in precision medicine and easier access to multi-omics technologies.</jats:p>
    Scopus© Citations 7  2
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    Hypertensive Nephropathy: Unveiling the Possible Involvement of Hemichannels and Pannexons
    (2022)
    Claudia M. Lucero
    ;
    Juan Prieto-Villalobos
    ;
    Lucas Marambio-Ruiz
    ;
    Javiera Balmazabal
    ;
    Tanhia F. Alvear
    <jats:p>Hypertension is one of the most common risk factors for developing chronic cardiovascular diseases, including hypertensive nephropathy. Within the glomerulus, hypertension causes damage and activation of mesangial cells (MCs), eliciting the production of large amounts of vasoactive and proinflammatory agents. Accordingly, the activation of AT1 receptors by the vasoactive molecule angiotensin II (AngII) contributes to the pathogenesis of renal damage, which is mediated mostly by the dysfunction of intracellular Ca2+ ([Ca2+]i) signaling. Similarly, inflammation entails complex processes, where [Ca2+]i also play crucial roles. Deregulation of this second messenger increases cell damage and promotes fibrosis, reduces renal blood flow, and impairs the glomerular filtration barrier. In vertebrates, [Ca2+]i signaling depends, in part, on the activity of two families of large-pore channels: hemichannels and pannexons. Interestingly, the opening of these channels depends on [Ca2+]i signaling. In this review, we propose that the opening of channels formed by connexins and/or pannexins mediated by AngII induces the ATP release to the extracellular media, with the subsequent activation of purinergic receptors. This process could elicit Ca2+ overload and constitute a feed-forward mechanism, leading to kidney damage.</jats:p>
      5Scopus© Citations 18
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    Improving Cell Recovery: Freezing and Thawing Optimization of Induced Pluripotent Stem Cells
    <jats:p>Achieving good cell recovery after cryopreservation is an essential process when working with induced pluripotent stem cells (iPSC). Optimized freezing and thawing methods are required for good cell attachment and survival. In this review, we concentrate on these two aspects, freezing and thawing, but also discuss further factors influencing cell recovery such as cell storage and transport. Whenever a problem occurs during the thawing process of iPSC, it is initially not clear what it is caused by, because there are many factors involved that can contribute to insufficient cell recovery. Thawing problems can usually be solved more quickly when a certain order of steps to be taken is followed. Under optimized conditions, iPSC should be ready for further experiments approximately 4–7 days after thawing and seeding. However, if the freezing and thawing protocols are not optimized, this time can increase up to 2–3 weeks, complicating any further experiments. Here, we suggest optimization steps and troubleshooting options for the freezing, thawing, and seeding of iPSC on feeder-free, Matrigel™-coated, cell culture plates whenever iPSC cannot be recovered in sufficient quality. This review applies to two-dimensional (2D) monolayer cell culture and to iPSC, passaged, frozen, and thawed as cell aggregates (clumps). Furthermore, we discuss usually less well-described factors such as the cell growth phase before freezing and the prevention of osmotic shock during thawing.</jats:p>
      6Scopus© Citations 34
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    Interferon-γ and high glucose-induced opening of Cx43 hemichannels causes endothelial cell dysfunction and damage
    (2020)
    Juan C. Sáez
    ;
    Susana Contreras-Duarte
    ;
    Valeria C. Labra
    ;
    Cristian A. Santibañez
    ;
    Luis A. Mellado
    Scopus© Citations 30  2
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    Connexin hemichannels explain the ionic imbalance and lead to atrophy in denervated skeletal muscles
    (2016)
    Bruno A. Cisterna
    ;
    Aníbal A. Vargas
    ;
    Carlos Puebla
    ;
    Juan C. Sáez
      23Scopus© Citations 23