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1.
Int J Mol Sci ; 25(18)2024 Sep 10.
Article in English | MEDLINE | ID: mdl-39337278

ABSTRACT

The chemical gating of gap junction channels is mediated by cytosolic calcium (Ca2+i) at concentrations ([Ca2+]i) ranging from high nanomolar (nM) to low micromolar (µM) range. Since the proteins of gap junctions, connexins/innexins, lack high-affinity Ca2+-binding sites, most likely gating is mediated by a Ca2+-binding protein, calmodulin (CaM) being the best candidate. Indeed, the role of Ca2+-CaM in gating is well supported by studies that have tested CaM blockers, CaM expression inhibition, testing of CaM mutants, co-localization of CaM and connexins, existence of CaM-binding sites in connexins/innexins, and expression of connexins (Cx) mutants, among others. Based on these data, since 2000, we have published a Ca2+-CaM-cork gating model. Despite convincing evidence for the Ca2+-CaM role in gating, a recent study has proposed an alternative gating model that would involve a direct electrostatic Ca2+-connexin interaction. However, this study, which tested the effect of unphysiologically high [Ca2+]i on the structure of isolated junctions, reported that neither changes in the channel's pore diameter nor connexin conformational changes are present, in spite of exposure of isolated gap junctions to [Ca2+]i as high at the 20 mM. In conclusion, data generated in the past four decades by multiple experimental approaches have clearly demonstrated the direct role of Ca2+-CaM in gap junction channel gating.


Subject(s)
Calcium , Calmodulin , Connexins , Gap Junctions , Ion Channel Gating , Static Electricity , Calmodulin/metabolism , Calmodulin/chemistry , Gap Junctions/metabolism , Calcium/metabolism , Humans , Connexins/metabolism , Connexins/chemistry , Connexins/genetics , Animals , Binding Sites , Protein Binding
2.
J Gen Physiol ; 156(11)2024 Nov 04.
Article in English | MEDLINE | ID: mdl-39302317

ABSTRACT

Two closely related connexins, Cx26 and Cx30, share widespread expression in the cochlear cellular networks. Gap junction channels formed by these connexins have been shown to have different permeability profiles, with Cx30 showing a strongly reduced preference for anionic tracers. The pore-forming segment of the first extracellular loop, E1, identified by computational studies of the Cx26 crystal structure to form a parahelix and a narrowed region of the pore, differs at a single residue at position 49. Cx26 contains an Ala and Cx30, a charged Glu at this position, and cysteine scanning in hemichannels identified this position to be pore-lining. To assess whether the Ala/Glu difference affects permeability, we modeled and quantified Lucifer Yellow transfer between HeLa cell pairs expressing WT Cx26 and Cx30 and variants that reciprocally substituted Glu and Ala at position 49. Cx26(A49E) and Cx30(E49A) substitutions essentially reversed the Lucifer Yellow permeability profile when accounting for junctional conductance. Moreover, by using a calcein efflux assay in single cells, we observed a similar reduced anionic preference in undocked Cx30 hemichannels and a reversal with reciprocal Ala/Glu substitutions. Thus, our data indicate that Cx26 and Cx30 gap junction channels and undocked hemichannels retain similar permeability characteristics and that a single residue difference in their E1 domains can largely account for their differential permeabilities to anionic tracers. The higher anionic permeability of Cx26 compared with Cx30 suggests that these connexins may serve distinct signaling functions in the cochlea, perhaps reflected in the vastly higher prevalence of Cx26 mutations in human deafness.


Subject(s)
Connexin 26 , Connexin 30 , Gap Junctions , Humans , Connexin 26/metabolism , Connexin 26/genetics , HeLa Cells , Connexin 30/metabolism , Connexin 30/genetics , Gap Junctions/metabolism , Connexins/metabolism , Connexins/genetics , Anions/metabolism , Permeability , Glutamic Acid/metabolism , Alanine/metabolism , Alanine/genetics , Isoquinolines/metabolism , Cell Membrane Permeability/physiology
3.
J Gen Physiol ; 156(11)2024 Nov 04.
Article in English | MEDLINE | ID: mdl-39302316

ABSTRACT

Connexins (Cxs) function as gap junction (GJ) channels and hemichannels that mediate intercellular and transmembrane signaling, respectively. Here, we investigated the proximal segment of the first extracellular loop, E1, of two closely related Cxs, Cx26 and Cx30, that share widespread expression in the cochlea. Computational studies of Cx26 proposed that this segment of E1 contains a parahelix and functions in gating. The sequence of the parahelix is identical between Cx26 and Cx30 except for an Ala/Glu difference at position 49. We show through cysteine-scanning and mutational analyses that position 49 is pore-lining and interacts with the adjacent Asp50 residue to impact hemichannel functionality. When both positions 49 and 50 are charged, as occurs naturally in Cx30, the hemichannel function is dampened. Co-expression of Cx30 with Cx26(D50N), the most common mutation associated with keratitis-ichthyosis-deafness syndrome, results in robust hemichannel currents indicating that position 49-50 interactions are relevant in heteromerically assembled hemichannels. Cysteine substitution at position 49 in either Cx26 or Cx30 results in tonic inhibition of hemichannels, both through disulfide formation and high-affinity metal coordination, suggestive of a flexible region of the pore that can narrow substantially. These effects are absent in GJ channels, which exhibit wild-type functionality. Examination of postnatal cochlear explants suggests that Cx30 expression is associated with reduced propagation of Ca2+ waves. Overall, these data identify a pore locus in E1 of Cx26 and Cx30 that impacts hemichannel functionality and provide new considerations for understanding the roles of these connexins in cochlear function.


Subject(s)
Connexin 26 , Connexin 30 , Connexins , Connexin 26/metabolism , Connexin 26/genetics , Animals , Connexin 30/metabolism , Connexin 30/genetics , Humans , Connexins/metabolism , Connexins/genetics , Protein Domains , Gap Junctions/metabolism , Mice , HEK293 Cells , Cochlea/metabolism , Cochlea/physiology
4.
Results Probl Cell Differ ; 73: 301-326, 2024.
Article in English | MEDLINE | ID: mdl-39242384

ABSTRACT

Cell-to-cell interactions are essential for proper development, homeostasis, and complex syncytia/organ formation and function. Intercellular communication are mediated by multiple mechanisms including soluble mediators, adhesion molecules and specific mechanisms of cell to cell communication such as Gap junctions (GJ), tunneling nanotubes (TNT), and exosomes. Only recently, has been discovered that TNTs and exosomes enable the exchange of large signaling molecules, RNA, viral products, antigens, and organelles opening new avenues of research and therapeutic approaches. The focus of this review is to summarize these recent findings in physiologic and pathologic conditions.


Subject(s)
Cell Communication , Neoplasms , Humans , Neoplasms/immunology , Neoplasms/metabolism , Cell Communication/physiology , Animals , Gap Junctions/metabolism , Exosomes/metabolism
5.
Stem Cell Res Ther ; 15(1): 286, 2024 Sep 11.
Article in English | MEDLINE | ID: mdl-39256871

ABSTRACT

BACKGROUND: The formation of stem cell clones enables close contact of stem cells inside. The gap junctions in such clone spheres establish a microenvironment that allows frequent intercellular communication to maintain self-renewal and functions of stem cells. Nevertheless, the essential gap junction protein for molecular signaling in clones is poorly known. METHODS: Primary human airway basal cells (hBCs) were isolated from brushing samples through bronchoscopy and then cultured. A tightly focused femtosecond laser was used to excite the local Ca2+ in an individual cell to initiate an internal Ca2+ wave in a clone to screen gap junction proteins. Immunoflourescence staining and clonogenicity assay were used to evaluate self-renewal and functions. RNA and protein levels were assessed by PCR and Western blot. Air-liquid interface assay was conducted to evaluate the differentiation potential. A Naphthalene injury mouse model was used to assess the regeneration potential. RESULTS: Herein, we identify Connexin 25 (Cx25) dominates intercellular Ca2+ communications in clones of hBCs in vitro to maintain the self-renewal and pluripotency of them. The self-renewal and in vitro differentiation functions and in vivo regeneration potential of hBCs in an airway damage model are both regulated by Cx25. The abnormal expression of Cx25 is validated in several diseases including IPF, Covid-19 and bronchiectasis. CONCLUSION: Cx25 is essential for hBC clones in maintaining self-renewal and functions of hBCs via gap junctions.


Subject(s)
Connexins , Regeneration , Humans , Animals , Mice , Connexins/metabolism , Connexins/genetics , Cell Differentiation , COVID-19/metabolism , COVID-19/virology , COVID-19/pathology , Gap Junctions/metabolism , Cell Self Renewal , Calcium/metabolism , Cells, Cultured , SARS-CoV-2/metabolism , Male , Stem Cells/metabolism , Stem Cells/cytology
6.
J Immunol Methods ; 533: 113741, 2024 Oct.
Article in English | MEDLINE | ID: mdl-39111361

ABSTRACT

Connexins are essential gap junction proteins that play pivotal roles in intercellular communication in various organs of mammals. Connexin-43 (Cx43) is expressed in various components of the immune system, and there is extensive evidence of its participation in inflammation responses. The involvement of Cx43 in macrophage functionality involves the purinergic signaling pathway. Macrophages contribute to defenses against inflammatory reactions such as bacterial sepsis and peritonitis. Several assays can identify the presence and activity of Cx43 in macrophages. Real-time polymerase chain reaction (PCR) can measure the relative mRNA expression of Cx43, whereas western blotting can detect protein expression levels. Using immunofluorescence assays, it is possible to analyze the expression and observe the localization of Cx43 in cells or tissues. Moreover, connexin-mediated gap junction intercellular communication can be evaluated using functional assays such as microinjection of fluorescent dyes or scrape loading-dye transfer. The use of selective inhibitors contributes to this understanding and reinforces the role of connexins in various processes. Here, we discuss these methods to evaluate Cx43 and macrophage gap junctions.


Subject(s)
Connexin 43 , Gap Junctions , Macrophages , Animals , Humans , Blotting, Western , Cell Communication , Connexin 43/analysis , Connexin 43/genetics , Connexin 43/metabolism , Fluorescent Antibody Technique , Gap Junctions/metabolism , Macrophages/metabolism , Macrophages/immunology , Real-Time Polymerase Chain Reaction , RNA, Messenger/genetics , RNA, Messenger/metabolism
7.
Cell Tissue Res ; 398(1): 35-62, 2024 Oct.
Article in English | MEDLINE | ID: mdl-39174822

ABSTRACT

Odor detection in insects is largely mediated by structures on antennae called sensilla, which feature a strongly conserved architecture and repertoire of olfactory sensory neurons (OSNs) and various support cell types. In Drosophila, OSNs are tightly apposed to supporting cells, whose connection with neurons and functional roles in odor detection remain unclear. Coupling mechanisms between these neuronal and non-neuronal cell types have been suggested based on morphological observations, concomitant physiological activity during odor stimulation, and known interactions that occur in other chemosensory systems. For instance, it is not known whether cell-cell coupling via gap junctions between OSNs and neighboring cells exists, or whether hemichannels interconnect cellular and extracellular sensillum compartments. Here, we show that innexins, which form hemichannels and gap junctions in invertebrates, are abundantly expressed in adult drosophilid antennae. By surveying antennal transcriptomes and performing various immunohistochemical stainings in antennal tissues, we discover innexin-specific patterns of expression and localization, with a majority of innexins strongly localizing to glial and non-neuronal cells, likely support and epithelial cells. Finally, by injecting gap junction-permeable dye into a pre-identified sensillum, we observe no dye coupling between neuronal and non-neuronal cells. Together with evidence of non-neuronal innexin localization, we conclude that innexins likely do not conjoin neurons to support cells, but that junctions and hemichannels may instead couple support cells among each other or to their shared sensillum lymph to achieve synchronous activity. We discuss how coupling of sensillum microenvironments or compartments may potentially contribute to facilitate chemosensory functions of odor sensing and sensillum homeostasis.


Subject(s)
Arthropod Antennae , Connexins , Drosophila Proteins , Gap Junctions , Sensilla , Animals , Sensilla/metabolism , Arthropod Antennae/metabolism , Gap Junctions/metabolism , Drosophila Proteins/metabolism , Connexins/metabolism , Drosophila melanogaster/metabolism , Olfactory Receptor Neurons/metabolism
8.
Int J Mol Sci ; 25(15)2024 Jul 30.
Article in English | MEDLINE | ID: mdl-39125879

ABSTRACT

This study investigates whether hAFSCs can improve bladder function in partial bladder outlet obstruction (pBOO) rats by targeting specific cellular pathways. Thirty-six female rats were divided into sham and pBOO groups with and without hAFSCs single injection into the bladder wall. Cystometry, inflammation/hypoxia, collagen/fibrosis/gap junction proteins, and smooth muscle myosin/muscarinic receptors were examined at 2 and 6 weeks after pBOO or sham operation. In pBOO bladders, significant increases in peak voiding pressure and residual volume stimulated a significant upregulation of inflammatory and hypoxic factors, TGF-ß1 and Smad2/3. Collagen deposition proteins, collagen 1 and 3, were significantly increased, but bladder fibrosis markers, caveolin 1 and 3, were significantly decreased. Gap junction intercellular communication protein, connexin 43, was significantly increased, but the number of caveolae was significantly decreased. Markers for the smooth muscle phenotype, myosin heavy chain 11 and guanylate-dependent protein kinase, as well as M2 muscarinic receptors, were significantly increased in cultured detrusor cells. However, hAFSCs treatment could significantly ameliorate bladder dysfunction by inactivating the TGFß-Smad signaling pathway, reducing collagen deposition, disrupting gap junctional intercellular communication, and modifying the expressions of smooth muscle myosin and caveolae/caveolin proteins. The results support the potential value of hAFSCs-based treatment of bladder dysfunction in BOO patients.


Subject(s)
Connexin 43 , Urinary Bladder Neck Obstruction , Urinary Bladder , Animals , Urinary Bladder Neck Obstruction/metabolism , Urinary Bladder Neck Obstruction/pathology , Female , Rats , Urinary Bladder/metabolism , Urinary Bladder/physiopathology , Urinary Bladder/pathology , Connexin 43/metabolism , Stem Cell Transplantation/methods , Signal Transduction , Rats, Sprague-Dawley , Smad2 Protein/metabolism , Disease Models, Animal , Gap Junctions/metabolism , Collagen/metabolism
9.
J Am Chem Soc ; 146(33): 22869-22873, 2024 Aug 21.
Article in English | MEDLINE | ID: mdl-39115272

ABSTRACT

Tubular structures exist broadly in biological systems and exhibit important functions including mediating cellular communications. The construction of artificial analogues in living cells would provide a new strategy for chemotherapy. In this report, a kind of supramolecular channel has been constructed within intercellular gaps by mimicking the assembly process and structure of natural gap junctional channels, which consist of hydrophobic tubular modules located in the adjacent cell membranes and hydrophilic modules within the extracellular space. The assembly of the channels was driven by electrostatic interactions. The channels could inhibit tumor cell invasion by preventing cell migration.


Subject(s)
Cell Movement , Humans , Cell Movement/drug effects , Gap Junctions/metabolism , Hydrophobic and Hydrophilic Interactions , Ion Channels/metabolism , Ion Channels/chemistry , Cell Line, Tumor
10.
Proc Natl Acad Sci U S A ; 121(33): e2403903121, 2024 Aug 13.
Article in English | MEDLINE | ID: mdl-39116127

ABSTRACT

Connexin hemichannels were identified as the first members of the eukaryotic large-pore channel family that mediate permeation of both atomic ions and small molecules between the intracellular and extracellular environments. The conventional view is that their pore is a large passive conduit through which both ions and molecules diffuse in a similar manner. In stark contrast to this notion, we demonstrate that the permeation of ions and of molecules in connexin hemichannels can be uncoupled and differentially regulated. We find that human connexin mutations that produce pathologies and were previously thought to be loss-of-function mutations due to the lack of ionic currents are still capable of mediating the passive transport of molecules with kinetics close to those of wild-type channels. This molecular transport displays saturability in the micromolar range, selectivity, and competitive inhibition, properties that are tuned by specific interactions between the permeating molecules and the N-terminal domain that lies within the pore-a general feature of large-pore channels. We propose that connexin hemichannels and, likely, other large-pore channels, are hybrid channel/transporter-like proteins that might switch between these two modes to promote selective ion conduction or autocrine/paracrine molecular signaling in health and disease processes.


Subject(s)
Connexins , Humans , Connexins/metabolism , Connexins/genetics , Ion Transport , Animals , Mutation , Ions/metabolism , Gap Junctions/metabolism , Ion Channels/metabolism , Ion Channels/genetics
11.
J Transl Med ; 22(1): 734, 2024 Aug 05.
Article in English | MEDLINE | ID: mdl-39103891

ABSTRACT

BACKGROUND: Atrial fibrillation (AF) is associated with increased risk of stroke and mortality. It has been reported that the process of atrial fibrosis was regulated by ß-catenin in rats with AF. However, pathophysiological mechanisms of this process in human with AF remain unclear. This study aims to investigate the possible mechanisms of ß-catenin in participating in the atrial fibrosis using human right atrial appendage (hRAA) tissues . METHODS: We compared the difference of ß-catenin expression in hRAA tissues between the patients with AF and sinus rhythm (SR). The possible function of ß-catenin in the development of AF was also explored in mice and primary cells. RESULTS: Firstly, the space between the membrane of the gap junctions of cardiomyocytes was wider in the AF group. Secondly, the expression of the gap junction function related proteins, Connexin40 and Connexin43, was decreased, while the expression of ß-catenin and its binding partner E-cadherin was increased in hRAA and cardiomyocytes of the AF group. Thirdly, ß-catenin colocalized with E-cadherin on the plasma membrane of cardiomyocytes in the SR group, while they were dissociated and accumulated intracellularly in the AF group. Furthermore, the expression of glycogen synthase kinase 3ß (GSK-3ß) and Adenomatous Polyposis Coli (APC), which participated in the degradation of ß-catenin, was decreased in hRAA tissues and cardiomyocytes of the AF group. Finally, the development of atrial fibrosis and AF were proved to be prevented after inhibiting ß-catenin expression in the AF model mice. CONCLUSIONS: Based on human atrial pathological and molecular analyses, our findings provided evidence that ß-catenin was associated with atrial fibrosis and AF progression.


Subject(s)
Atrial Fibrillation , Fibrosis , Heart Atria , Myocytes, Cardiac , beta Catenin , Aged , Animals , Female , Humans , Male , Mice , Middle Aged , Atrial Fibrillation/pathology , Atrial Fibrillation/metabolism , beta Catenin/metabolism , Cadherins/metabolism , Connexin 43/metabolism , Gap Junctions/metabolism , Glycogen Synthase Kinase 3 beta/metabolism , Heart Atria/metabolism , Heart Atria/pathology , Mice, Inbred C57BL , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology
12.
Biochim Biophys Acta Rev Cancer ; 1879(5): 189173, 2024 Sep.
Article in English | MEDLINE | ID: mdl-39154967

ABSTRACT

Gap junctions, membrane-based channels comprised of connexin proteins (Cxs), facilitate direct communication among neighbouring cells and between cells and the extracellular space through their hemichannels. The normal human breast expresses various Cxs family proteins, such as Cx43, Cx30, Cx32, Cx46, and Cx26, crucial for proper tissue development and function. These proteins play a significant role in breast cancer development, progression, and therapy response. In primary tumours, there is often a reduction and cytoplasmic mislocalization of Cx43 and Cx26, while metastatic lesions show an upregulation of these and other Cxs. Although existing research predominantly supports the tumour-suppressing role of Cxs in primary carcinomas through channel-dependent and independent functions, controversies persist regarding their involvement in the metastatic process. This review aims to provide an updated perspective on Cxs in human breast cancer, with a specific focus on intrinsic subtypes due to the heterogeneous nature of this disease. Additionally, the manuscript will explore the role of Cxs in immune interactions and novel forms of intercellular communication, such as tunneling nanotubes and extracellular vesicles, within the breast tumour context and tumour microenvironment. Recent findings suggest that Cxs hold potential as therapeutic targets for mitigating metastasis and drug resistance. Furthermore, they may serve as novel biomarkers for cancer prognosis, offering promising avenues for future research and clinical applications.


Subject(s)
Breast Neoplasms , Cell Communication , Connexins , Humans , Connexins/metabolism , Breast Neoplasms/pathology , Breast Neoplasms/metabolism , Female , Gap Junctions/metabolism , Tumor Microenvironment , Animals , Signal Transduction
13.
Chaos ; 34(8)2024 Aug 01.
Article in English | MEDLINE | ID: mdl-39191247

ABSTRACT

We present a computational model of networked neurons developed to study the effect of temperature on neuronal synchronization in the brain in association with seizures. The network consists of a set of chaotic bursting neurons surrounding a core tonic neuron in a square lattice with periodic boundary conditions. Each neuron is reciprocally coupled to its four nearest neighbors via temperature dependent gap junctions. Incorporating temperature in the gap junctions makes the coupling stronger when temperature rises, resulting in higher likelihood for synchrony in the network. Raising the temperature eventually makes the network elicit waves of synchronization in circular ripples that propagate from the center outwardly. We suggest this process as a possible underlying mechanism for seizures induced by elevated brain temperatures.


Subject(s)
Models, Neurological , Neurons , Seizures , Seizures/physiopathology , Neurons/physiology , Humans , Nerve Net/physiopathology , Temperature , Animals , Computer Simulation , Brain/physiopathology , Action Potentials/physiology , Gap Junctions/physiology
14.
Comput Biol Med ; 180: 108964, 2024 Sep.
Article in English | MEDLINE | ID: mdl-39106669

ABSTRACT

Morphogenetic regulation during embryogenesis and regeneration rely on information transfer and coordination between different regions. Here, we explore theoretically the coupling between bioelectrical and transcriptional oscillations at the individual cell and multicellular levels. The simulations, based on a set of ion channels and intercellular gap junctions, show that bioelectrical and transcriptional waves can electrophysiologically couple distant regions of a model network in phase and antiphase oscillatory states that include synchronization phenomena. In this way, different multicellular regionalizations can be encoded by cell potentials that oscillate between depolarized and polarized states, thus allowing a spatio-temporal coding. Because the electric potential patterns characteristic of development and regeneration are correlated with the spatial distributions of signaling ions and molecules, bioelectricity can act as a template for slow biochemical signals following a hierarchy of experimental times. In particular, bioelectrical gradients that couple cell potentials to transcription rates give to each single cell a rough idea of its location in the multicellular ensemble, thus controlling local differentiation processes that switch on and off crucial parts of the genome.


Subject(s)
Models, Biological , Transcription, Genetic , Electrophysiological Phenomena/physiology , Ion Channels/physiology , Ion Channels/metabolism , Ion Channels/genetics , Gap Junctions/physiology , Animals , Humans , Computer Simulation
15.
Function (Oxf) ; 5(5)2024 Sep 10.
Article in English | MEDLINE | ID: mdl-38984993

ABSTRACT

Obesity is a multifactorial metabolic disorder associated with endothelial dysfunction and increased risk of cardiovascular disease. Adipose capillary adipose endothelial cells (CaECs) plays a crucial role in lipid transport and storage. Here, we investigated the mechanisms underlying CaEC-adipocyte interaction and its impact on metabolic function. Single-cell RNA sequencing (scRNAseq) revealed an enrichment of fatty acid handling machinery in CaECs from high fat diet (HFD) mice, suggesting their specialized role in lipid metabolism. Transmission electron microscopy (TEM) confirmed direct heterocellular contact between CaECs and adipocytes. To model this, we created an in vitro co-culture transwell system to model the heterocellular contact observed with TEM. Contact between ECs and adipocytes in vitro led to upregulation of fatty acid binding protein 4 in response to lipid stimulation, hinting intercellular signaling may be important between ECs and adipocytes. We mined our and others scRNAseq datasets to examine which connexins may be present in adipose capillaries and adipocytes and consistently identified connexin 43 (Cx43) in mouse and humans. Genetic deletion of endothelial Cx43 resulted in increased epididymal fat pad (eWAT) adiposity and dyslipidemia in HFD mice. Consistent with this observation, phosphorylation of Cx43 at serine 368, which closes gap junctions, was increased in HFD mice and lipid-treated ECs. Mice resistant to this post-translational modification, Cx43S368A, were placed on an HFD and were found to have reduced eWAT adiposity and improved lipid profiles. These findings suggest Cx43-mediated heterocellular communication as a possible regulatory mechanism of adipose tissue function.


Subject(s)
Adipocytes , Adiposity , Connexin 43 , Endothelial Cells , Gap Junctions , Animals , Mice , Gap Junctions/metabolism , Connexin 43/metabolism , Connexin 43/genetics , Adipocytes/metabolism , Endothelial Cells/metabolism , Humans , Male , Diet, High-Fat/adverse effects , Obesity/metabolism , Obesity/pathology , Obesity/genetics , Cell Communication , Mice, Inbred C57BL , Lipid Metabolism , Phosphorylation , Coculture Techniques , Adipose Tissue/metabolism
16.
Invest Ophthalmol Vis Sci ; 65(8): 19, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38984874

ABSTRACT

Purpose: The purpose of this study was to utilize multi-parametric magnetic resonance imaging (MRI) to investigate in vivo age-related changes in the physiology and optics of mouse lenses where Connexin 50 has been deleted (Cx50KO) or replaced by Connexin 46 (Cx50KI46). Methods: The lenses of transgenic Cx50KO and Cx50KI46 mice were imaged between 3 weeks and 6 months of age using a 7T MRI. Measurements of lens geometry, the T2 (water-bound protein ratios), the refractive index (n), and T1 (free water content) values were calculated by processing the acquired images. The lens power was calculated from an optical model that combined the geometry and the n. All transgenic mice were compared with control mice at the same age. Results: Cx50KO and Cx50KI46 mice developed smaller lenses compared with control mice. The lens thickness, volume, and surface radii of curvatures all increased with age but were limited to the size of the lenses. Cx50KO lenses exhibited higher lens power than Cx50KI46 lenses at all ages, and this was correlated with significantly lower water content in these lenses, which was probably modulated by the gap junction coupling. The refractive power tended to a steady state with age, similar to the control mice. Conclusions: The modification of Cx50 gap junctions significantly impacted lens growth and physiological optics as the mouse aged. The lenses showed delayed development growth, and altered optics governed by different lens physiology. This research provides new insights into how gap junctions regulate the development of the lens's physiological optics.


Subject(s)
Connexins , Lens, Crystalline , Mice, Transgenic , Animals , Lens, Crystalline/metabolism , Connexins/metabolism , Connexins/genetics , Mice , Magnetic Resonance Imaging , Aging/physiology , Refraction, Ocular/physiology , Mice, Inbred C57BL , Mice, Knockout , Gap Junctions/physiology , Gap Junctions/metabolism
17.
Cells ; 13(13)2024 Jul 06.
Article in English | MEDLINE | ID: mdl-38995001

ABSTRACT

BACKGROUND: Extravillous trophoblasts (EVTs) form stratified columns at the placenta-uterus interface. In the closest part to fetal structures, EVTs have a proliferative phenotype, whereas in the closest part to maternal structures, they present a migratory phenotype. During the placentation process, Connexin 40 (Cx40) participates in both the proliferation and migration of EVTs, which occurs under hypoxia. However, a possible interaction between hypoxia and Cx40 has not yet been established. METHODS: We developed two cellular models, one with "low Cx40" (Jeg-3), which reflected the expression of this protein found in migratory EVTs, and one with "high Cx40" (Jeg-3/hCx40), which reflected the expression of this protein in proliferative cells. We analyzed the migration and proliferation of these cells under normoxic and hypoxic conditions for 24 h. Jeg-3 cells under hypoxia increased their migratory capacity over their proliferative capacity. However, in Jeg-3/hCx40, the opposite effect was induced. On the other hand, hypoxia promoted gap junction (GJ) plaque formation between neighboring Jeg-3 cells. Similarly, the activation of a nitro oxide (NO)/cGMP/PKG-dependent pathway induced an increase in GJ-plaque formation in Jeg-3 cells. CONCLUSIONS: The expression patterns of Cx40 play a crucial role in shaping the responses of EVTs to hypoxia, thereby influencing their migratory or proliferative phenotype. Simultaneously, hypoxia triggers an increase in Cx40 gap junction (GJ) plaque formation through a pathway dependent on NO.


Subject(s)
Cell Hypoxia , Cell Movement , Cell Proliferation , Connexins , Gap Junction alpha-5 Protein , Gap Junctions , Trophoblasts , Trophoblasts/metabolism , Humans , Gap Junctions/metabolism , Connexins/metabolism , Female , Pregnancy , Cell Line , Models, Biological , Extravillous Trophoblasts
18.
Int J Mol Sci ; 25(13)2024 Jun 30.
Article in English | MEDLINE | ID: mdl-39000353

ABSTRACT

Connexins (Cxs) are transmembrane proteins that assemble into gap junction channels (GJCs) and hemichannels (HCs). Previous researches support the involvement of Rho GTPases and actin microfilaments in the trafficking of Cxs, formation of GJCs plaques, and regulation of channel activity. Nonetheless, it remains uncertain whether distinct types of Cxs HCs and GJCs respond differently to Rho GTPases or changes in actin polymerization/depolymerization dynamics. Our investigation revealed that inhibiting RhoA, a small GTPase that controls actin polymerization, or disrupting actin microfilaments with cytochalasin B (Cyto-B), resulted in reduced GJCs plaque size at appositional membranes and increased transport of HCs to non-appositional plasma membrane regions. Notably, these effects were consistent across different Cx types, since Cx26 and Cx43 exhibited similar responses, despite having distinct trafficking routes to the plasma membrane. Functional assessments showed that RhoA inhibition and actin depolymerization decreased the activity of Cx43 GJCs while significantly increasing HC activity. However, the functional status of GJCs and HCs composed of Cx26 remained unaffected. These results support the hypothesis that RhoA, through its control of the actin cytoskeleton, facilitates the transport of HCs to appositional cell membranes for GJCs formation while simultaneously limiting the positioning of free HCs at non-appositional cell membranes, independently of Cx type. This dynamic regulation promotes intercellular communications and reduces non-selective plasma membrane permeability through a Cx-type dependent mechanism, whereby the activity of Cx43 HCs and GJCs are differentially affected but Cx26 channels remain unchanged.


Subject(s)
Actin Cytoskeleton , Connexin 26 , Connexin 43 , Gap Junctions , rhoA GTP-Binding Protein , Actin Cytoskeleton/metabolism , rhoA GTP-Binding Protein/metabolism , Gap Junctions/metabolism , Connexin 43/metabolism , Connexin 26/metabolism , Humans , Animals , Cell Membrane/metabolism , Actins/metabolism
19.
Biomater Adv ; 163: 213939, 2024 Oct.
Article in English | MEDLINE | ID: mdl-38954876

ABSTRACT

The bone turnover capability influences the acquisition and maintenance of osseointegration. The architectures of osteocyte three-dimensional (3D) networks determine the direction and activity of bone turnover through osteocyte intercellular crosstalk, which exchanges prostaglandins through gap junctions in response to mechanical loading. Titanium nanosurfaces with anisotropically patterned dense nanospikes promote the development of osteocyte lacunar-canalicular networks. We investigated the effects of titanium nanosurfaces on intercellular network development and regulatory capabilities of bone turnover in osteocytes under cyclic compressive loading. MLO-Y4 mouse osteocyte-like cell lines embedded in type I collagen 3D gels on titanium nanosurfaces promoted the formation of intercellular networks and gap junctions even under static culture conditions, in contrast to the poor intercellular connectivity in machined titanium surfaces. The osteocyte 3D network on the titanium nanosurfaces further enhanced gap junction formation after additional culturing under cyclic compressive loading simulating masticatory loading, beyond the degree observed on machined titanium surfaces. A prostaglandin synthesis inhibitor cancelled the dual effects of titanium nanosurfaces and cyclic compressive loading on the upregulation of gap junction-related genes in the osteocyte 3D culture. Supernatants from osteocyte monolayer culture on titanium nanosurfaces promoted osteocyte maturation and intercellular connections with gap junctions. With cyclic loading, titanium nanosurfaces induced expression of the regulatory factors of bone turnover in osteocyte 3D cultures, toward higher osteoblast activation than that observed on machined surfaces. Titanium nanosurfaces with anisotropically patterned dense nanospikes promoted intercellular 3D network development and regulatory function toward osteoblast activation in osteocytes activated by cyclic compressive loading, through intercellular crosstalk by prostaglandin.


Subject(s)
Osteoblasts , Osteocytes , Titanium , Titanium/pharmacology , Titanium/chemistry , Animals , Osteocytes/metabolism , Osteocytes/physiology , Osteocytes/drug effects , Mice , Osteoblasts/drug effects , Osteoblasts/metabolism , Osteoblasts/physiology , Cell Line , Surface Properties , Gap Junctions/drug effects , Gap Junctions/physiology , Gap Junctions/metabolism , Nanostructures
20.
J Neurosci ; 44(31)2024 Jul 31.
Article in English | MEDLINE | ID: mdl-38969506

ABSTRACT

Although hyperactivity is associated with a wide variety of neurodevelopmental disorders, the early embryonic origins of locomotion have hindered investigation of pathogenesis of these debilitating behaviors. The earliest motor output in vertebrate animals is generated by clusters of early-born motor neurons (MNs) that occupy distinct regions of the spinal cord, innervating stereotyped muscle groups. Gap junction electrical synapses drive early spontaneous behavior in zebrafish, prior to the emergence of chemical neurotransmitter networks. We use a genetic model of hyperactivity to gain critical insight into the consequences of errors in motor circuit formation and function, finding that Fragile X syndrome model mutant zebrafish are hyperexcitable from the earliest phases of spontaneous behavior, show altered sensitivity to blockade of electrical gap junctions, and have increased expression of the gap junction protein Connexin 34/35. We further show that this hyperexcitable behavior can be rescued by pharmacological inhibition of electrical synapses. We also use functional imaging to examine MN and interneuron (IN) activity in early embryogenesis, finding genetic disruption of electrical gap junctions uncouples activity between mnx1 + MNs and INs. Taken together, our work highlights the importance of electrical synapses in motor development and suggests that the origins of hyperactivity in neurodevelopmental disorders may be established during the initial formation of locomotive circuits.


Subject(s)
Electrical Synapses , Fragile X Syndrome , Motor Neurons , Zebrafish Proteins , Zebrafish , Animals , Fragile X Syndrome/physiopathology , Fragile X Syndrome/genetics , Electrical Synapses/physiology , Zebrafish Proteins/genetics , Zebrafish Proteins/metabolism , Motor Neurons/physiology , Disease Models, Animal , Connexins/genetics , Connexins/metabolism , Animals, Genetically Modified , Hyperkinesis/physiopathology , Interneurons/physiology , Interneurons/metabolism , Gap Junctions/drug effects , Gap Junctions/metabolism , Fragile X Mental Retardation Protein/genetics , Fragile X Mental Retardation Protein/metabolism
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