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result(s) for
"Connexins - physiology"
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Keratitis-Ichthyosis-Deafness Syndrome-Associated Cx26 Mutants Produce Nonfunctional Gap Junctions but Hyperactive Hemichannels When Co-Expressed With Wild Type Cx43
by
Maripillán, Jaime
,
Jara, Oscar
,
González, Carlos
in
Adenosine Triphosphate - metabolism
,
Calcium - metabolism
,
Cell Membrane Permeability - physiology
2015
Mutations in Cx26 gene are found in most cases of human genetic deafness. Some mutations produce syndromic deafness associated with skin disorders, like the Keratitis-Ichthyosis-Deafness syndrome (KID). Because in the human skin connexin 26 (Cx26) is co-expressed with other connexins, like Cx43 and Cx30, and as the KID syndrome is inherited as autosomal dominant condition, it is possible that KID mutations change the way Cx26 interacts with other co-expressed connexins. Indeed, some Cx26 syndromic mutations showed gap junction dominant negative effect when co-expressed with wild-type connexins, including Cx26 and Cx43. The nature of these interactions and the consequences on hemichannels and gap junction channel (GJC) functions remain unknown. In this study, we demonstrate that syndromic mutations, at the N terminus segment of Cx26, change connexin oligomerization compatibility, allowing aberrant interactions with Cx43. Strikingly, heteromeric oligomer formed by Cx43/Cx26 (syndromic mutants) shows exacerbated hemichannel activity but nonfunctional GJCs; this also occurs for those Cx26 KID mutants that do not show functional homomeric hemichannels. Heterologous expression of these hyperactive heteromeric hemichannels increases cell membrane permeability, favoring ATP release and Ca2+ overload. The functional paradox produced by oligomerization of Cx43 and Cx26 KID mutants could underlie the severe syndromic phenotype in human skin.
Journal Article
Deletion of Astroglial Connexins Weakens the Blood–Brain Barrier
by
Cisternino, Salvatore
,
André, Pascal
,
Doutremer, Suzette
in
Amyloidosis
,
Animals
,
Aquaporin 4
2012
Astrocytes, the most prominent glial cell type in the brain, send specialized processes named endfeet, which enwrap blood vessels and express a large molecular repertoire dedicated to the physiology of the vascular system. One of the most striking properties of astrocyte endfeet is their enrichment in gap junction protein connexins 43 and 30 (Cx43 and Cx30) allowing for direct intercellular trafficking of ions and small signaling molecules through perivascular astroglial networks. The contribution of astroglial connexins to the physiology of the brain vascular system has never been addressed. Here, we show that Cx43 and Cx30 expression at the level of perivascular endfeet starts from postnatal days 2 and 12 and is fully mature at postnatal days 15 and 20, respectively, indicating that astroglial perivascular connectivity occurs and develops during postnatal blood–brain barrier (BBB) maturation. We demonstrate that mice lacking Cx30 and Cx43 in GFAP (glial fibrillary acidic protein)-positive cells display astrocyte endfeet edema and a partial loss of the astroglial water channel aquaporin-4 and β-dystroglycan, a transmembrane receptor anchoring astrocyte endfeet to the perivascular basal lamina. Furthermore, the absence of astroglial connexins weakens the BBB, which opens upon increased hydrostatic vascular pressure and shear stress. These results demonstrate that astroglial connexins are necessary to maintain BBB integrity.
Journal Article
Molecular determinants of magnesium-dependent synaptic plasticity at electrical synapses formed by connexin36
2014
Neuronal gap junction (GJ) channels composed of connexin36 (Cx36) play an important role in neuronal synchronization and network dynamics. Here we show that Cx36-containing electrical synapses between inhibitory neurons of the thalamic reticular nucleus are bidirectionally modulated by changes in intracellular free magnesium concentration ([Mg
2+
]
i
). Chimeragenesis demonstrates that the first extracellular loop of Cx36 contains a Mg
2+
-sensitive domain, and site-directed mutagenesis shows that the pore-lining residue D47 is critical in determining high Mg
2+
-sensitivity. Single-channel analysis of Mg
2+
-sensitive chimeras and mutants reveals that [Mg
2+
]
i
controls the strength of electrical coupling mostly via gating mechanisms. In addition, asymmetric transjunctional [Mg
2+
]
i
induces strong instantaneous rectification, providing a novel mechanism for electrical rectification in homotypic Cx36 GJs. We suggest that Mg
2+
-dependent synaptic plasticity of Cx36-containing electrical synapses could underlie neuronal circuit reconfiguration via changes in brain energy metabolism that affects neuronal levels of intracellular ATP and [Mg
2+
]
i
.
Electrical synaptic transmission is known to be modulated by intracellular magnesium. Here, Palacios-Prado
et al.
show that electrical synapses formed by connexin36 in the thalamic reticular nucleus are bidirectionally modulated by changes in magnesium concentration via pore-lining sensitive domains.
Journal Article
Abnormal Connexin Expression Underlies Delayed Wound Healing in Diabetic Skin
by
David L. Becker
,
Jill Lincoln
,
Chiuhui Mary Wang
in
Animals
,
Biological and medical sciences
,
Communication
2007
Abnormal Connexin Expression Underlies Delayed Wound Healing in Diabetic Skin
Chiuhui Mary Wang ,
Jill Lincoln ,
Jeremy E. Cook and
David L. Becker
From the Department of Anatomy and Developmental Biology, University College London, London, U.K
Address correspondence and reprint requests to David Becker, Department of Anatomy and Developmental Biology, University College
London, Gower Street, London, WC1E 6BT, U.K. E-mail: d.becker{at}ucl.ac.uk
Abstract
OBJECTIVE— Dynamically regulated expression of the gap junction protein connexin (Cx)43 plays pivotal roles in wound healing. Cx43 is
normally downregulated and Cx26 upregulated in keratinocytes at the edge of the wound as they adopt a migratory phenotype.
We have examined the dynamics of Cx expression during wound healing in diabetic rats, which is known to be slow.
RESEARCH DESIGN AND METHODS— We induced diabetes with streptozotocin and examined Cx expression and communication in intact and healing skin.
RESULTS— We found that diabetes decreased Cx43 and Cx26 protein and communication in the intact epidermis and increased Cx43 protein
and communication in the intact dermis. Diabetes also altered the dynamic changes of Cxs associated with wound healing. Within
24 h, Cx43 was upregulated in a thickened bulb of keratinocytes at the wound edge (rather than downregulated as in controls,
which formed a thin process of migratory cells). Cx43 decline was delayed until 48 h, when reepithelialization began. Although
Cx26 was upregulated as normal after wounding in diabetic skin, its distribution at the wound edge was abnormal, being more
widespread. Application of Cx43-specific antisense gel to diabetic wounds prevented the abnormal upregulation of Cx43 and
doubled the rate of reepithelialization, which exceeded control levels.
CONCLUSIONS— Cx expression in diabetic skin is abnormal, as is the dynamic response of Cx43 to injury, which may underlie the delayed healing
of diabetic wounds. Preventing the upregulation of Cx43 in diabetic wounds significantly improves the rate of healing and
clearly has potential therapeutic value.
Cx, connexin
H&E, hematoxylin and eosin
ODN, oligodeoxynucleotide
STZ, streptozotocin
Footnotes
Published ahead of print at http://diabetes.diabetesjournals.org on 23 August 2007. DOI: 10.2337/db07-0613.
The antisense technology used in this study has been patented by D.L.B. and Colin Green, Department of Ophthalmology, University
of Auckland, Auckland, New Zealand. This technology is being taken into clinical trials by CoDa Therapeutics. D.L.B. owns
stock in CoDa Therapeutics.
The costs of publication of this article were defrayed in part by the payment of page charges. This article must therefore
be hereby marked “advertisement” in accordance with 18 U.S.C. Section 1734 solely to indicate this fact.
Received May 4, 2007.
Accepted August 16, 2007.
DIABETES
Journal Article
Gating Properties of Heterotypic Gap Junction Channels Formed of Connexins 40, 43, and 45
by
Kreuzberg, Maria M.
,
Rackauskas, Mindaugas
,
Verselis, Vytas K.
in
Biophysics
,
Cellular biology
,
Channels, Receptors, and Electrical Signaling
2007
Connexins (Cxs) 40, 43, and 45 are expressed in many different tissues, but most abundantly in the heart, blood vessels, and the nervous system. We examined formation and gating properties of heterotypic gap junction (GJ) channels assembled between cells expressing wild-type Cx40, Cx43, or Cx45 and their fusion forms tagged with color variants of green fluorescent protein. We show that these Cxs, with exception of Cxs 40 and 43, are compatible to form functional heterotypic GJ channels. Cx40 and Cx43 hemichannels are unable or effectively impaired in their ability to dock and/or assemble into junctional plaques. When cells expressing Cx45 contacted those expressing Cx40 or Cx43 they readily formed junctional plaques with cell-cell coupling characterized by asymmetric junctional conductance dependence on transjunctional voltage,
V
j. Cx40/Cx45 heterotypic GJ channels preferentially exhibit
V
j-dependent gating transitions between open and residual states with a conductance of ∼42
pS; transitions between fully open and closed states with conductance of ∼52
pS in magnitude occur at substantially lower (∼10-fold) frequency. Cx40/Cx45 junctions demonstrate electrical signal transfer asymmetry that can be modulated between unidirectional and bidirectional by small changes in the difference between holding potentials of the coupled cells. Furthermore, both fast and slow gating mechanisms of Cx40 exhibit a negative gating polarity.
Journal Article
Gap junctions and cancer: communicating for 50 years
2016
In this Timeline article, Aasen
et al
. look back over 50 years of research linking gap junctions and connexins to cancer, highlighting the conditional nature of their role in cancer progression, future challenges and therapeutic strategies.
Fifty years ago, tumour cells were found to lack electrical coupling, leading to the hypothesis that loss of direct intercellular communication is commonly associated with cancer onset and progression. Subsequent studies linked this phenomenon to gap junctions composed of connexin proteins. Although many studies support the notion that connexins are tumour suppressors, recent evidence suggests that, in some tumour types, they may facilitate specific stages of tumour progression through both junctional and non-junctional signalling pathways. This Timeline article highlights the milestones connecting gap junctions to cancer, and underscores important unanswered questions, controversies and therapeutic opportunities in the field.
Journal Article
A Murine Living Skin Equivalent Amenable to Live-Cell Imaging: Analysis of the Roles of Connexins in the Epidermis
by
Kandyba, Eve E.
,
Hodgins, Malcolm B.
,
Martin, Patricia E.
in
Animals
,
Biological and medical sciences
,
Connexin 26
2008
Three-dimensional (3D) organotypic models are increasingly used to study the aspects of epidermal organisation and cutaneous wound-healing events. However, these are largely dependent on laborious histological analysis and immunohistochemical approaches. Despite the large resource of transgenic and knockout mice harboring mutations relevant to skin disorders, few organotypic mouse skin models are available. We have developed a versatile in vitro 3D organotypic mouse skin equivalent that reflects epidermal organisation in vivo. The system is optically transparent and ideally suited to real-time analysis using a variety of integrated in situ imaging techniques. As a paradigm for coordination of cellular events, the epidermal gap junction network was investigated and the model displayed predominant connexin 43 (Cx43) expression in basal proliferating cells and Cx26 and Cx30 expression in differentiated keratinocytes. We show that attenuation of Cx43-mediated communication by a Cx mimetic peptide enhanced wound closure rates in keratinocyte monocultures and in the living skin equivalent system, emphasising the utility of the model to systematically unravel the molecular mechanisms underlying epidermal morphogenesis, assess promising therapeutic strategies, and reduce animal experimentation. Furthermore, we visualise epidermal regeneration following injury in real time, thereby facilitating avenues to explore distinctive modes of wound re-epithelialisation in a non-invasive manner.
Journal Article
Metabotropic NMDA receptor signaling couples Src family kinases to pannexin-1 during excitotoxicity
2016
The loss of nerve cells in the brain is the main event causing life-long deficits and neurological problems after stroke. Weilinger
et al
. show that NMDA receptors cause nerve cell death during stroke in an unexpected way. Although they require ligand binding and recruitment of downstream pannexin channels, NMDA receptors do not use the receptor's ion channel.
Overactivation of neuronal
N
-methyl-
D
-aspartate receptors (NMDARs) causes excitotoxicity and is necessary for neuronal death. In the classical view, these ligand-gated Ca
2+
-permeable ionotropic receptors require co-agonists and membrane depolarization for activation. We report that NMDARs signal during ligand binding without activation of their ion conduction pore. Pharmacological pore block with MK-801, physiological pore block with Mg
2+
or a Ca
2+
-impermeable NMDAR variant prevented NMDAR currents, but did not block excitotoxic dendritic blebbing and secondary currents induced by exogenous NMDA. NMDARs, Src kinase and Panx1 form a signaling complex, and activation of Panx1 required phosphorylation at Y308. Disruption of this NMDAR-Src-Panx1 signaling complex
in vitro
or
in vivo
by administration of an interfering peptide either before or 2 h after ischemia or stroke was neuroprotective. Our observations provide insights into a new signaling modality of NMDARs that has broad-reaching implications for brain physiology and pathology.
Journal Article
Connexins Regulate Calcium Signaling by Controlling ATP Release
by
Christian C. G. Naus
,
Alves-Rodrigues, Alexandra
,
Cotrina, Maria Luisa
in
Adenosine Triphosphatases - metabolism
,
Animals
,
Astrocytes - cytology
1998
Forced expression of gap junction proteins, connexins, enables gap junction-deficient cell lines to propagate intercellular calcium waves. Here, we show that ATP secretion from the poorly coupled cell lines, C6 glioma, HeLa, and U373 glioblastoma, is potentiated 5- to 15-fold by connexin expression. ATP release required purinergic receptor-activated intracellular Ca2+mobilization and was inhibited by Cl-channel blockers. Calcium wave propagation also was reduced by purinergic receptor antagonists and by Cl-channel blockers but insensitive to gap junction inhibitors. These observations suggest that cell-to-cell signaling associated with connexin expression results from enhanced ATP release and not, as previously believed, from an increase in intercellular coupling.
Journal Article
Joint diseases: from connexins to gap junctions
2018
Connexons form the basis of hemichannels and gap junctions. They are composed of six tetraspan proteins called connexins. Connexons can function as individual hemichannels, releasing cytosolic factors (such as ATP) into the pericellular environment. Alternatively, two hemichannel connexons from neighbouring cells can come together to form gap junctions, membrane-spanning channels that facilitate cell-cell communication by enabling signalling molecules of approximately 1 kDa to pass from one cell to an adjacent cell. Connexins are expressed in joint tissues including bone, cartilage, skeletal muscle and the synovium. Indicative of their importance as gap junction components, connexins are also known as gap junction proteins, but individual connexin proteins are gaining recognition for their channel-independent roles, which include scaffolding and signalling functions. Considerable evidence indicates that connexons contribute to the function of bone and muscle, but less is known about the function of connexons in other joint tissues. However, the implication that connexins and gap junctional channels might be involved in joint disease, including age-related bone loss, osteoarthritis and rheumatoid arthritis, emphasizes the need for further research into these areas and highlights the therapeutic potential of connexins.
Journal Article