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1.
Int J Biol Sci ; 20(7): 2356-2369, 2024.
Article in English | MEDLINE | ID: mdl-38725858

ABSTRACT

Dysregulation of cancer cell motility is a key driver of invasion and metastasis. High dysadherin expression in cancer cells is correlated with invasion and metastasis. Here, we found the molecular mechanism by which dysadherin regulates the migration and invasion of colon cancer (CC). Comprehensive analysis using single-cell RNA sequencing data from CC patients revealed that high dysadherin expression in cells is linked to cell migration-related gene signatures. We confirmed that the deletion of dysadherin in tumor cells hindered local invasion and distant migration using in vivo tumor models. In this context, by performing cell morphological analysis, we found that aberrant cell migration resulted from impaired actin dynamics, focal adhesion turnover and protrusive structure formation upon dysadherin expression. Mechanistically, the activation of focal adhesion kinase (FAK) was observed in dysadherin-enriched cells. The dysadherin/FAK axis enhanced cell migration and invasion by activating the FAK downstream cascade, which includes the Rho family of small GTPases. Overall, this study illuminates the role of dysadherin in modulating cancer cell migration by forcing actin dynamics and protrusive structure formation via FAK signaling, indicating that targeting dysadherin may be a potential therapeutic strategy for CC patients.


Subject(s)
Cell Movement , Colonic Neoplasms , Humans , Cell Movement/genetics , Colonic Neoplasms/metabolism , Colonic Neoplasms/pathology , Colonic Neoplasms/genetics , Cell Line, Tumor , Animals , Mice , Focal Adhesion Protein-Tyrosine Kinases/metabolism , Microfilament Proteins/metabolism , Microfilament Proteins/genetics , Focal Adhesion Kinase 1/metabolism , Focal Adhesion Kinase 1/genetics , Ion Channels/metabolism , Ion Channels/genetics , Signal Transduction
3.
J Assoc Physicians India ; 72(1): 110, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38736086

ABSTRACT

Most biological functions have their basis in a rapid change in cell membrane permeability. Hodgkin and Huxley showed regulation of the flow of molecules and ions between the nerve cell and its environment (Nobel Prize 1963), by recording macroscopic currents. Two Germans Neher and Sakmann showed that specific ion channels actually exist, and specific membrane proteins act as gates or agents for active transport regulating in physiological and pathological processes.


Subject(s)
Ion Channels , Ion Channels/physiology , Ion Channels/metabolism , History, 20th Century , Humans
4.
Physiol Rep ; 12(9): e16043, 2024 May.
Article in English | MEDLINE | ID: mdl-38724885

ABSTRACT

The epithelial cells that line the kidneys and lower urinary tract are exposed to mechanical forces including shear stress and wall tension; however, the mechanosensors that detect and respond to these stimuli remain obscure. Candidates include the OSCA/TMEM63 family of ion channels, which can function as mechanosensors and osmosensors. Using Tmem63bHA-fl/HA-fl reporter mice, we assessed the localization of HA-tagged-TMEM63B within the urinary tract by immunofluorescence coupled with confocal microscopy. In the kidneys, HA-TMEM63B was expressed by proximal tubule epithelial cells, by the intercalated cells of the collecting duct, and by the epithelial cells lining the thick ascending limb of the medulla. In the urinary tract, HA-TMEM63B was expressed by the urothelium lining the renal pelvis, ureters, bladder, and urethra. HA-TMEM63B was also expressed in closely allied organs including the epithelial cells lining the seminal vesicles, vas deferens, and lateral prostate glands of male mice and the vaginal epithelium of female mice. Our studies reveal that TMEM63B is expressed by subsets of kidney and lower urinary tract epithelial cells, which we hypothesize are sites of TMEM63B mechanosensation or osmosensation, or both.


Subject(s)
Urinary Tract , Animals , Mice , Male , Female , Urinary Tract/metabolism , Mechanotransduction, Cellular/physiology , Ion Channels/metabolism , Ion Channels/genetics , Mice, Inbred C57BL , Urothelium/metabolism , Urothelium/cytology , Epithelial Cells/metabolism
5.
Channels (Austin) ; 18(1): 2355123, 2024 Dec.
Article in English | MEDLINE | ID: mdl-38754025

ABSTRACT

PIEZO1 and PIEZO2 are mechanically activated ion channels that confer mechanosensitivity to various cell types. PIEZO channels are commonly examined using the so-called poking technique, where currents are recorded in the whole-cell configuration of the patch-clamp technique, while the cell surface is mechanically stimulated with a small fire-polished patch pipette. Currently, there is no gold standard for mechanical stimulation, and therefore, stimulation protocols differ significantly between laboratories with regard to stimulation velocity, angle, and size of the stimulation probe. Here, we systematically examined the impact of variations in these three stimulation parameters on the outcomes of patch-clamp recordings of PIEZO1 and PIEZO2. We show that the inactivation kinetics of PIEZO1 and, to a lesser extent, of PIEZO2 change with the angle at which the probe that is used for mechanical stimulation is positioned and, even more prominently, with the size of its tip. Moreover, we found that the mechanical activation threshold of PIEZO2, but not PIEZO1, decreased with increasing stimulation speeds. Thus, our data show that two key outcome parameters of PIEZO-related patch-clamp studies are significantly affected by common variations in the mechanical stimulation protocols, which calls for caution when comparing data from different laboratories and highlights the need to establish a gold standard for mechanical stimulation to improve comparability and reproducibility of data obtained with the poking technique.


Subject(s)
Ion Channels , Patch-Clamp Techniques , Ion Channels/metabolism , Humans , Kinetics , HEK293 Cells , Mechanotransduction, Cellular
6.
J Clin Invest ; 134(10)2024 May 15.
Article in English | MEDLINE | ID: mdl-38747287

ABSTRACT

Lymphedema is a debilitating disease with no effective cure and affects an estimated 250 million individuals worldwide. Prior studies have identified mutations in piezo-type mechanosensitive ion channel component 1 (PIEZO1), angiopoietin 2 (ANGPT2), and tyrosine kinase with Ig-like and EGF-like domains 1 (TIE1) in patients with primary lymphedema. Here, we identified crosstalk between these molecules and showed that activation of the mechanosensory channel PIEZO1 in lymphatic endothelial cells (LECs) caused rapid exocytosis of the TIE ligand ANGPT2, ectodomain shedding of TIE1 by disintegrin and metalloproteinase domain-containing protein 17 (ADAM17), and increased TIE/PI3K/AKT signaling, followed by nuclear export of the transcription factor FOXO1. These data establish a functional network between lymphedema-associated genes and provide what we believe to be the first molecular mechanism bridging channel function with vascular signaling and intracellular events culminating in transcriptional regulation of genes expressed in LECs. Our study provides insights into the regulation of lymphatic function and molecular pathways involved in human disease.


Subject(s)
Angiopoietin-2 , Forkhead Box Protein O1 , Ion Channels , Lymphangiogenesis , Lymphedema , Receptor, TIE-1 , Signal Transduction , Ion Channels/metabolism , Ion Channels/genetics , Forkhead Box Protein O1/metabolism , Forkhead Box Protein O1/genetics , Humans , Animals , Angiopoietin-2/metabolism , Angiopoietin-2/genetics , Lymphedema/metabolism , Lymphedema/genetics , Lymphedema/pathology , Mice , Lymphangiogenesis/genetics , Receptor, TIE-1/metabolism , Receptor, TIE-1/genetics , Endothelial Cells/metabolism , Mechanotransduction, Cellular , ADAM17 Protein/metabolism , ADAM17 Protein/genetics
7.
Cardiovasc Diabetol ; 23(1): 150, 2024 May 03.
Article in English | MEDLINE | ID: mdl-38702777

ABSTRACT

BACKGROUND: Vasculopathy is the most common complication of diabetes. Endothelial cells located in the innermost layer of blood vessels are constantly affected by blood flow or vascular components; thus, their mechanosensitivity plays an important role in mediating vascular regulation. Endothelial damage, one of the main causes of hyperglycemic vascular complications, has been extensively studied. However, the role of mechanosensitive signaling in hyperglycemic endothelial damage remains unclear. METHODS: Vascular endothelial-specific Piezo1 knockout mice were generated to investigate the effects of Piezo1 on Streptozotocin-induced hyperglycemia and vascular endothelial injury. In vitro activation or knockdown of Piezo1 was performed to evaluate the effects on the proliferation, migration, and tubular function of human umbilical vein endothelial cells in high glucose. Reactive oxygen species production, mitochondrial membrane potential alternations, and oxidative stress-related products were used to assess the extent of oxidative stress damage caused by Piezo1 activation. RESULTS: Our study found that in VECreERT2;Piezo1flox/flox mice with Piezo1 conditional knockout in vascular endothelial cells, Piezo1 deficiency alleviated streptozotocin-induced hyperglycemia with reduced apoptosis and abscission of thoracic aortic endothelial cells, and decreased the inflammatory response of aortic tissue caused by high glucose. Moreover, the knockout of Piezo1 showed a thinner thoracic aortic wall, reduced tunica media damage, and increased endothelial nitric oxide synthase expression in transgenic mice, indicating the relief of endothelial damage caused by hyperglycemia. We also showed that Piezo1 activation aggravated oxidative stress injury and resulted in severe dysfunction through the Ca2+-induced CaMKII-Nrf2 axis in human umbilical vein endothelial cells. In Piezo1 conditional knockout mice, Piezo1 deficiency partially restored superoxide dismutase activity and reduced malondialdehyde content in the thoracic aorta. Mechanistically, Piezo1 deficiency decreased CaMKII phosphorylation and restored the expression of Nrf2 and its downstream molecules HO-1 and NQO1. CONCLUSION: In summary, our study revealed that Piezo1 is involved in high glucose-induced oxidative stress injury and aggravated endothelial dysfunction, which have great significance for alleviating endothelial damage caused by hyperglycemia.


Subject(s)
Blood Glucose , Diabetes Mellitus, Experimental , Human Umbilical Vein Endothelial Cells , Ion Channels , Mice, Knockout , Nitric Oxide Synthase Type III , Oxidative Stress , Animals , Humans , Human Umbilical Vein Endothelial Cells/metabolism , Human Umbilical Vein Endothelial Cells/pathology , Diabetes Mellitus, Experimental/metabolism , Ion Channels/metabolism , Ion Channels/genetics , Blood Glucose/metabolism , Nitric Oxide Synthase Type III/metabolism , Mechanotransduction, Cellular , NF-E2-Related Factor 2/metabolism , NF-E2-Related Factor 2/genetics , NF-E2-Related Factor 2/deficiency , Cells, Cultured , Cell Proliferation , Apoptosis , Male , Diabetic Angiopathies/metabolism , Diabetic Angiopathies/physiopathology , Diabetic Angiopathies/pathology , Diabetic Angiopathies/genetics , Diabetic Angiopathies/etiology , Cell Movement , Mice, Inbred C57BL , Reactive Oxygen Species/metabolism , Aorta, Thoracic/metabolism , Aorta, Thoracic/pathology , Aorta, Thoracic/physiopathology , Mice , Streptozocin , Endothelium, Vascular/metabolism , Endothelium, Vascular/physiopathology , Endothelium, Vascular/pathology , Calcium-Calmodulin-Dependent Protein Kinase Type 2/metabolism , Calcium-Calmodulin-Dependent Protein Kinase Type 2/genetics
8.
Sci Rep ; 14(1): 10365, 2024 05 06.
Article in English | MEDLINE | ID: mdl-38710778

ABSTRACT

Cardiac fibroblasts (CFs) are essential for preserving myocardial integrity and function. They can detect variations in cardiac tissue stiffness using various cellular mechanosensors, including the Ca2+ permeable mechanosensitive channel Piezo1. Nevertheless, how CFs adapt the mechanosensitive response to stiffness changes remains unclear. In this work we adopted a multimodal approach, combining the local mechanical stimulation (from 10 pN to 350 nN) with variations of culture substrate stiffness. We found that primary rat CFs cultured on stiff (GPa) substrates showed a broad Piezo1 distribution in the cell with particular accumulation at the mitochondria membrane. CFs displayed a force-dependent behavior in both calcium uptake and channel activation probability, showing a threshold at 300 nN, which involves both cytosolic and mitochondrial Ca2+ mobilization. This trend decreases as the myofibroblast phenotype within the cell population increases, following a possible Piezo1 accumulation at focal adhesion sites. In contrast, the inhibition of fibroblasts to myofibroblasts transition with soft substrates (kPa) considerably reduces both mechanically- and chemically-induced Piezo1 activation and expression. Our findings shed light on how Piezo1 function and expression are regulated by the substrate stiffness and highlight its involvement in the environment-mediated modulation of CFs mechanosensitivity.


Subject(s)
Fibroblasts , Ion Channels , Mechanotransduction, Cellular , Membrane Proteins , Animals , Ion Channels/metabolism , Rats , Fibroblasts/metabolism , Fibroblasts/cytology , Cells, Cultured , Calcium/metabolism , Myofibroblasts/metabolism , Myofibroblasts/physiology , Myocardium/metabolism , Myocardium/cytology , Cellular Microenvironment
9.
Sci Rep ; 14(1): 11241, 2024 05 16.
Article in English | MEDLINE | ID: mdl-38755246

ABSTRACT

Current density, the membrane current value divided by membrane capacitance (Cm), is widely used in cellular electrophysiology. Comparing current densities obtained in different cell populations assume that Cm and ion current magnitudes are linearly related, however data is scarce about this in cardiomyocytes. Therefore, we statistically analyzed the distributions, and the relationship between parameters of canine cardiac ion currents and Cm, and tested if dividing original parameters with Cm had any effect. Under conventional voltage clamp conditions, correlations were high for IK1, moderate for IKr and ICa,L, while negligible for IKs. Correlation between Ito1 peak amplitude and Cm was negligible when analyzing all cells together, however, the analysis showed high correlations when cells of subepicardial, subendocardial or midmyocardial origin were analyzed separately. In action potential voltage clamp experiments IK1, IKr and ICa,L parameters showed high correlations with Cm. For INCX, INa,late and IKs there were low-to-moderate correlations between Cm and these current parameters. Dividing the original current parameters with Cm reduced both the coefficient of variation, and the deviation from normal distribution. The level of correlation between ion currents and Cm varies depending on the ion current studied. This must be considered when evaluating ion current densities in cardiac cells.


Subject(s)
Action Potentials , Electric Capacitance , Heart Ventricles , Myocytes, Cardiac , Patch-Clamp Techniques , Animals , Dogs , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/physiology , Heart Ventricles/cytology , Heart Ventricles/metabolism , Action Potentials/physiology , Membrane Potentials/physiology , Ion Channels/metabolism , Cell Membrane/metabolism
10.
Int J Mol Sci ; 25(9)2024 Apr 30.
Article in English | MEDLINE | ID: mdl-38732096

ABSTRACT

Alterations in intraocular and external pressure critically involve the pathogenesis of glaucoma, traumatic retinal injury (TRI), and other retinal disorders, and retinal neurons have been reported to express multiple mechanical-sensitive channels (MSCs) in recent decades. However, the role of MSCs in visual functions and pressure-related retinal conditions has been unclear. This review will focus on the variety and functional significance of the MSCs permeable to K+, Na+, and Ca2+, primarily including the big potassium channel (BK); the two-pore domain potassium channels TRAAK and TREK; Piezo; the epithelial sodium channel (ENaC); and the transient receptor potential channels vanilloid TRPV1, TRPV2, and TRPV4 in retinal photoreceptors, bipolar cells, horizontal cells, amacrine cells, and ganglion cells. Most MSCs do not directly mediate visual signals in vertebrate retinas. On the other hand, some studies have shown that MSCs can open in physiological conditions and regulate the activities of retinal neurons. While these data reasonably predict the crossing of visual and mechanical signals, how retinal light pathways deal with endogenous and exogenous mechanical stimulation is uncertain.


Subject(s)
Ion Channels , Retinal Neurons , Humans , Animals , Ion Channels/metabolism , Retinal Neurons/metabolism , Mechanotransduction, Cellular , Retina/metabolism , Retina/cytology
11.
Adv Biol (Weinh) ; 8(5): e2400018, 2024 May.
Article in English | MEDLINE | ID: mdl-38640945

ABSTRACT

Ophthalmic diseases affect many people, causing partial or total loss of vision and a reduced quality of life. The anterior segment of the eye accounts for nearly half of all visual impairment that can lead to blindness. Therefore, there is a growing demand for ocular research and regenerative medicine that specifically targets the anterior segment to improve vision quality. This study aims to generate a microfluidic platform for investigating the formation of the anterior segment of the eye derived from human induced pluripotent stem cells (hiPSC) under various spatial-mechanoresponsive conditions. Microfluidic platforms are developed to examine the effects of dynamic conditions on the generation of hiPSCs-derived ocular organoids. The differentiation protocol is validated, and mechanoresponsive genes are identified through transcriptomic analysis. Several culture strategies is implemented for the anterior segment of eye cells in a microfluidic chip. hiPSC-derived cells showed anterior eye cell characteristics in mRNA and protein expression levels under dynamic culture conditions. The expression levels of yes-associated protein and transcriptional coactivator PDZ binding motif (YAP/TAZ) and PIEZO1, varied depending on the differentiation and growth conditions of the cells, as well as the metabolomic profiles under dynamic culture conditions.


Subject(s)
Cell Differentiation , Induced Pluripotent Stem Cells , Humans , Induced Pluripotent Stem Cells/metabolism , Induced Pluripotent Stem Cells/cytology , Anterior Eye Segment/cytology , Anterior Eye Segment/metabolism , Microfluidics/methods , Microfluidics/instrumentation , Organoids/metabolism , Organoids/cytology , YAP-Signaling Proteins/metabolism , Lab-On-A-Chip Devices , Transcription Factors/metabolism , Transcription Factors/genetics , Ion Channels/genetics , Ion Channels/metabolism
12.
Acta Physiol (Oxf) ; 240(6): e14152, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38682304

ABSTRACT

Piezo1 is an essential mechanosensitive transduction ion channel in mammals. Its unique structure makes it capable of converting mechanical cues into electrical and biological signals, modulating biological and (patho)physiological processes in a wide variety of cells. There is increasing evidence demonstrating that the piezo1 channel plays a vital role in renal physiology and disease conditions. This review summarizes the current evidence on the structure and properties of Piezo1, gating modulation, and pharmacological characteristics, with special focus on the distribution and (patho)physiological significance of Piezo1 in the kidney, which may provide insights into potential treatment targets for renal diseases involving this ion channel.


Subject(s)
Ion Channels , Kidney , Mechanotransduction, Cellular , Ion Channels/metabolism , Humans , Animals , Mechanotransduction, Cellular/physiology , Kidney/metabolism
13.
Arch Oral Biol ; 163: 105963, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38608563

ABSTRACT

OBJECTIVES: Orthodontic tooth movement is a mechanobiological reaction induced by appropriate forces, including bone remodeling. The mechanosensitive Piezo channels have been shown to contribute to bone remodeling. However, information about the pathways through which Piezo channels affects osteoblasts remains limited. Thus, we aimed to investigate the influence of Piezo1 on the osteogenic and osteoclast factors in osteoblasts under mechanical load. MATERIALS AND METHODS: Cyclic stretch (CS) experiments on MC3T3-E1 were conducted using a BioDynamic mechanical stretching device. The Piezo1 channel blocker GsMTx4 and the Piezo1 channel agonist Yoda1 were used 12 h before the application of CS. MC3T3-E1 cells were then subjected to 15% CS, and the expression of Piezo1, Piezo2, BMP-2, OCN, Runx2, RANKL, p-p65/p65, and ALP was measured using quantitative real-time polymerase chain reaction, western blot, alkaline phosphatase staining, and immunofluorescence staining. RESULTS: CS of 15% induced the highest expression of Piezo channel and osteoblast factors. Yoda1 significantly increased the CS-upregulated expression of Piezo1 and ALP activity but not Piezo2 and RANKL. GsMTx4 downregulated the CS-upregulated expression of Piezo1, Piezo2, Runx2, OCN, p-65/65, and ALP activity but could not completely reduce CS-upregulated BMP-2. CONCLUSIONS: The appropriate force is more suitable for promoting osteogenic differentiation in MC3T3-E1. The Piezo1 channel participates in osteogenic differentiation of osteoblasts through its influence on the expression of osteogenic factors like BMP-2, Runx2, and OCN and is involved in regulating osteoclasts by influencing phosphorylated p65. These results provide a foundation for further exploration of osteoblast function in orthodontic tooth movement.


Subject(s)
Bone Morphogenetic Protein 2 , Core Binding Factor Alpha 1 Subunit , Ion Channels , Osteoblasts , Osteogenesis , Osteoblasts/metabolism , Ion Channels/metabolism , Animals , Mice , Bone Morphogenetic Protein 2/metabolism , Osteogenesis/physiology , Core Binding Factor Alpha 1 Subunit/metabolism , Osteoclasts/metabolism , Real-Time Polymerase Chain Reaction , RANK Ligand/metabolism , Blotting, Western , Stress, Mechanical , Cell Differentiation , Osteocalcin/metabolism , Alkaline Phosphatase/metabolism , Oligopeptides/pharmacology , Tooth Movement Techniques , Mechanotransduction, Cellular/physiology , Cell Line , Bone Remodeling/physiology , Pyrazines , Spider Venoms , Thiadiazoles , Intercellular Signaling Peptides and Proteins
14.
Cardiovasc Toxicol ; 24(5): 472-480, 2024 May.
Article in English | MEDLINE | ID: mdl-38630336

ABSTRACT

The challenge posed by opioid overdose has become a significant concern for health systems due to the complexities associated with drug prohibition, widespread clinical use, and potential abuse. In response, healthcare professionals have primarily concentrated on mitigating the hallucinogenic and respiratory depressant consequences of opioid overdose to minimize associated risks. However, it is crucial to acknowledge that most opioids possess the capacity to prolong the QT interval, particularly in cases of overdose, thereby potentially resulting in severe ventricular arrhythmias and even sudden death if timely intervention is not implemented. Consequently, alongside addressing the typical adverse effects of opioids, it is imperative to consider their cardiotoxicity. To enhance comprehension of the correlation between opioids and arrhythmias, identify potential targets for prompt intervention, and mitigate the hazards associated with clinical utilization, an exploration of the interaction between drugs and ion channels, as well as their underlying mechanisms, becomes indispensable. This review primarily concentrates on elucidating the impact of opioid drugs on diverse ion channels, investigating recent advancements in this domain, and attaining a deeper understanding of the mechanisms underlying the prolongation of the QT interval by opioid drugs, along with potential interventions.


Subject(s)
Analgesics, Opioid , Cardiotoxicity , Long QT Syndrome , Humans , Long QT Syndrome/chemically induced , Long QT Syndrome/physiopathology , Analgesics, Opioid/adverse effects , Animals , Risk Assessment , Risk Factors , Heart Rate/drug effects , Action Potentials/drug effects , Heart Conduction System/drug effects , Heart Conduction System/physiopathology , Ion Channels/metabolism , Ion Channels/drug effects , Opiate Overdose/physiopathology
15.
Biochim Biophys Acta Mol Basis Dis ; 1870(5): 167185, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38653360

ABSTRACT

OBJECTIVE: Glucagon is a critical hormone regulating glucose metabolism. It stimulates the liver to release glucose under low blood sugar conditions, thereby maintaining blood glucose stability. Excessive glucagon secretion and hyperglycemia is observed in individuals with diabetes. Precise modulation of glucagon is significant to maintain glucose homeostasis. Piezo1 is a mechanosensitive ion channel capable of converting extracellular mechanical forces into intracellular signals, thus regulating hormonal synthesis and secretion. This study aims to investigate the role of Piezo1 in regulating glucagon production in α cells. METHODS: The effects of Piezo1 on glucagon production were examined in normal- or high-fat diet fed α cell-specific Piezo1 knockout mice (Gcg-Piezo1-/-), and the murine pancreatic α cell line αTC1-6. Expression of Proglucagon was investigated by real-time PCR and western blotting. Plasma glucagon and insulin were detected by enzyme immunoassay. RESULTS: Under both normal- and high-fat diet conditions, Gcg-Piezo1-/- mice exhibited increased pancreatic α cell proportion, hyperglucagonemia, impaired glucose tolerance, and activated pancreatic mTORC1 signaling. Activation of Piezo1 by its agonist Yoda1 or overexpression of Piezo1 led to decreased glucagon synthesis and suppressed mTOR signaling pathway in αTC1-6 cells. Additionally, the levels of glucagon in the medium were also reduced. Conversely, knockdown of Piezo1 produced opposite effects. CONCLUSION: Our study uncovers the regulatory role of the Piezo1 ion channel in α cells. Piezo1 influences glucagon production by affecting mTOR signaling pathway.


Subject(s)
Diet, High-Fat , Glucagon-Secreting Cells , Glucagon , Ion Channels , Mice, Knockout , Animals , Glucagon-Secreting Cells/metabolism , Glucagon/metabolism , Mice , Ion Channels/metabolism , Ion Channels/genetics , Diet, High-Fat/adverse effects , Male , Signal Transduction , Insulin/metabolism , Cell Line , Mechanistic Target of Rapamycin Complex 1/metabolism , Mechanistic Target of Rapamycin Complex 1/genetics , Mechanotransduction, Cellular , Mice, Inbred C57BL , Proglucagon/metabolism , Proglucagon/genetics , Pyrazines , Thiadiazoles
16.
Methods Enzymol ; 696: 3-24, 2024.
Article in English | MEDLINE | ID: mdl-38658085

ABSTRACT

Tight regulation of molecules moving through the cell membrane is particularly important for free-living microorganisms because of their small cell volumes and frequent changes in the chemical composition of the extracellular environment. This is true for nutrients, but even more so for toxic molecules. Traditionally, the transport of these diverse molecules in microorganisms has been studied on cell populations rather than on single cells, mainly because of technical difficulties. The goal of this chapter is to make available a detailed method to prepare yeast spheroplasts to study the movement of fluoride ions across the plasma membrane of single cells by the patch-clamp technique. In this procedure, three steps are critical to achieve high resistance (GΩ) seals between the membrane and the glass electrode: (1) appropriate removal of the cell wall by enzymatic treatment; (2) balance between the osmotic strength of sealing solutions and cell membrane turgor; and (3) meticulous morphological inspection of spheroplasts suitable for gigaseal formation. We show now that this method, originally developed for Saccharomyces cerevisiae, can also be applied to Candida albicans, an opportunistic human pathogen.


Subject(s)
Candida albicans , Fluorides , Patch-Clamp Techniques , Saccharomyces cerevisiae , Spheroplasts , Saccharomyces cerevisiae/metabolism , Candida albicans/metabolism , Candida albicans/physiology , Fluorides/chemistry , Patch-Clamp Techniques/methods , Spheroplasts/metabolism , Cell Membrane/metabolism , Ion Channels/metabolism
17.
Biochem Soc Trans ; 52(2): 671-679, 2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38630434

ABSTRACT

Inorganic polyphosphate (polyP) is widely recognized for playing important roles and processes involved in energy and phosphate storage, regulation of gene expression, and calcium signaling. The less well-known role of polyP is as a direct mediator of ion transport across biological membranes. Here, we will briefly summarize current knowledge of the molecular mechanisms of how polyP can be involved in membrane ion transport. We discuss three types of mechanisms that might involve polyP: (1) formation of non-protein channel complex that includes calcium, polyP, and polyhydroxybutyrate (PHB); (2) modulation of the channel activity of PHBlated protein channels; and (3) direct effects of polyP on the function of the voltage-gated ion channels in the process that do not involve PHB.


Subject(s)
Ion Transport , Polyphosphates , Polyphosphates/metabolism , Humans , Cell Membrane/metabolism , Prohibitins , Animals , Calcium/metabolism , Hydroxybutyrates/metabolism , Ion Channels/metabolism
18.
J Transl Med ; 22(1): 332, 2024 Apr 04.
Article in English | MEDLINE | ID: mdl-38575957

ABSTRACT

INTRODUCTION: Intestinal barrier dysfunction is a pivotal factor in sepsis progression. The mechanosensitive ion channel Piezo1 is associated with barrier function; however, its role in sepsis-induced intestinal barrier dysfunction remains poorly understood. METHODS: The application of cecal ligation and puncture (CLP) modeling was performed on both mice of the wild-type (WT) variety and those with Villin-Piezo1flox/flox genetic makeup to assess the barrier function using in vivo FITC-dextran permeability measurements and immunofluorescence microscopy analysis of tight junctions (TJs) and apoptosis levels. In vitro, Caco-2 monolayers were subjected to TNF-α incubation. Moreover, to modulate Piezo1 activation, GsMTx4 was applied to inhibit Piezo1 activation. The barrier function, intracellular calcium levels, and mitochondrial function were monitored using calcium imaging and immunofluorescence techniques. RESULTS: In the intestinal tissues of CLP-induced septic mice, Piezo1 protein levels were notably elevated compared with those in normal mice. Piezo1 has been implicated in the sepsis-mediated disruption of TJs, apoptosis of intestinal epithelial cells, elevated intestinal mucosal permeability, and systemic inflammation in WT mice, whereas these effects were absent in Villin-Piezo1flox/flox CLP mice. In Caco-2 cells, TNF-α prompted calcium influx, an effect reversed by GsMTx4 treatment. Elevated calcium concentrations are correlated with increased accumulation of reactive oxygen species, diminished mitochondrial membrane potential, and TJ disruption. CONCLUSIONS: Thus, Piezo1 is a potential contributor to sepsis-induced intestinal barrier dysfunction, influencing apoptosis and TJ modification through calcium influx-mediated mitochondrial dysfunction.


Subject(s)
Intestinal Mucosa , Sepsis , Humans , Mice , Animals , Caco-2 Cells , Tumor Necrosis Factor-alpha/pharmacology , Tumor Necrosis Factor-alpha/metabolism , Calcium/metabolism , Sepsis/complications , Ion Channels/metabolism , Ion Channels/pharmacology
19.
Methods Mol Biol ; 2801: 29-43, 2024.
Article in English | MEDLINE | ID: mdl-38578411

ABSTRACT

Connexins are polytopic domain membrane proteins that form hexameric hemichannels (HCs) which can assemble into gap junction channels (GJCs) at the interface of two neighboring cells. The HCs may be involved in ion and small-molecule transport across the cellular plasma membrane in response to various stimuli. Despite their importance, relatively few structures of connexin HCs are available to date, compared to the structures of the GJCs. Here, we describe a protocol for expression, purification, and nanodisc reconstitution of connexin-43 (Cx43) HCs, which we have recently structurally characterized using cryo-EM analysis. Application of similar protocols to other connexin family members will lead to breakthroughs in the understanding of the structure and function of connexin HCs.


Subject(s)
Connexin 43 , Connexins , Connexin 43/metabolism , Cryoelectron Microscopy , Connexins/metabolism , Gap Junctions/metabolism , Ion Channels/metabolism
20.
Methods Mol Biol ; 2801: 57-74, 2024.
Article in English | MEDLINE | ID: mdl-38578413

ABSTRACT

The 21-member connexin family found in humans is the building block of both single-membrane spanning channels (hemichannels) and double-membrane spanning intercellular channels. These large-pore channels are dynamic and typically have a short life span of only a few hours. Imaging connexins from the time of synthesis in the endoplasmic reticulum through to their degradation can be challenging given their distinct assembly states and transient residences in many subcellular compartments. Here, we describe how connexins can be effectively imaged on a confocal microscope in living cells when tagged with fluorescent proteins and when immunolabeled with high affinity anti-connexin antibodies in fixed cells. Temporal and spatial localization of multiple connexins and disease-linked connexin mutants at the subcellular level extensively informs on the mechanisms governing connexin regulation in health and disease.


Subject(s)
Connexins , Gap Junctions , Humans , Connexins/metabolism , Gap Junctions/metabolism , Ion Channels/metabolism , Biological Transport , Microscopy, Confocal
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