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1
Diverse deafness mechanisms of connexin mutations revealed by studies using in vitro approaches and mouse models.使用体外方法和小鼠模型的研究揭示了连接蛋白突变的多种致聋机制。
Brain Res. 2009 Jun 24;1277:52-69. doi: 10.1016/j.brainres.2009.02.008. Epub 2009 Feb 20.
2
Functional studies reveal new mechanisms for deafness caused by connexin mutations.功能研究揭示了连接蛋白突变导致耳聋的新机制。
Otol Neurotol. 2009 Feb;30(2):237-40. doi: 10.1097/MAO.0b013e318194f774.
3
Gap junction mediated intercellular metabolite transfer in the cochlea is compromised in connexin30 null mice.在连接蛋白30基因敲除小鼠中,耳蜗中缝隙连接介导的细胞间代谢物转运受损。
PLoS One. 2008;3(12):e4088. doi: 10.1371/journal.pone.0004088. Epub 2008 Dec 31.
4
Conserved glycine at position 45 of major cochlear connexins constitutes a vital component of the Ca²⁺ sensor for gating of gap junction hemichannels.主要耳蜗连接蛋白 45 位的保守甘氨酸构成了缝隙连接半通道门控钙离子传感器的重要组成部分。
Biochem Biophys Res Commun. 2013 Jul 5;436(3):424-9. doi: 10.1016/j.bbrc.2013.05.118. Epub 2013 Jun 10.
5
A novel mechanism for connexin 26 mutation linked deafness: cell death caused by leaky gap junction hemichannels.连接蛋白26突变所致耳聋的一种新机制:间隙连接半通道渗漏引起的细胞死亡。
Laryngoscope. 2006 Dec;116(12):2205-10. doi: 10.1097/01.mlg.0000241944.77192.d2.
6
Cochlear gap junctions coassembled from Cx26 and 30 show faster intercellular Ca2+ signaling than homomeric counterparts.由Cx26和30共同组装而成的耳蜗间隙连接比同源物表现出更快的细胞间Ca2+信号传导。
Am J Physiol Cell Physiol. 2005 Mar;288(3):C613-23. doi: 10.1152/ajpcell.00341.2004.
7
A deafness mechanism of digenic Cx26 (GJB2) and Cx30 (GJB6) mutations: Reduction of endocochlear potential by impairment of heterogeneous gap junctional function in the cochlear lateral wall.一种由双基因 Cx26(GJB2)和 Cx30(GJB6)突变引起的耳聋机制:通过损害耳蜗外侧壁中的异质缝隙连接功能来降低内耳电位。
Neurobiol Dis. 2017 Dec;108:195-203. doi: 10.1016/j.nbd.2017.08.002. Epub 2017 Aug 17.
8
Connexin hemichannels and cochlear function.连接蛋白半通道与耳蜗功能。
Neurosci Lett. 2019 Mar 16;695:40-45. doi: 10.1016/j.neulet.2017.09.020. Epub 2017 Sep 14.
9
Early developmental expression of connexin26 in the cochlea contributes to its dominate functional role in the cochlear gap junctions.缝隙连接蛋白 26 在耳蜗中的早期发育表达有助于其在耳蜗缝隙连接中占据主导功能作用。
Biochem Biophys Res Commun. 2012 Jan 6;417(1):245-50. doi: 10.1016/j.bbrc.2011.11.093. Epub 2011 Nov 28.
10
Unique expression of connexins in the human cochlea.连接蛋白在人耳蜗中的独特表达。
Hear Res. 2009 Apr;250(1-2):55-62. doi: 10.1016/j.heares.2009.01.010. Epub 2009 Feb 6.

引用本文的文献

1
The genetic and molecular basis of a connexin-linked skin disease.连接蛋白相关性皮肤病的遗传和分子基础。
Biochem J. 2024 Nov 20;481(22):1639-1655. doi: 10.1042/BCJ20240374.
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A Chemical Chaperone Restores Connexin 26 Mutant Activity.一种化学伴侣可恢复连接蛋白26突变体的活性。
ACS Pharmacol Transl Sci. 2023 Jun 1;6(7):997-1005. doi: 10.1021/acsptsci.3c00056. eCollection 2023 Jul 14.
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Cytomembrane Trafficking Pathways of Connexin 26, 30, and 43.间隙连接蛋白 26、30 和 43 的细胞内膜转运途径。
Int J Mol Sci. 2023 Jun 19;24(12):10349. doi: 10.3390/ijms241210349.
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Volumetric Analysis of Hearing-Related Structures of Brain in Children with GJB2-Related Congenital Deafness.GJB2相关先天性耳聋儿童大脑听觉相关结构的容积分析
Children (Basel). 2022 May 30;9(6):800. doi: 10.3390/children9060800.
5
Suppression of Connexin 43 Leads to Strial Vascular Hyper-Permeability, Decrease in Endocochlear Potential, and Mild Hearing Loss.连接蛋白43的抑制导致血管纹血管高通透性、内淋巴电位降低和轻度听力损失。
Front Physiol. 2020 Aug 14;11:974. doi: 10.3389/fphys.2020.00974. eCollection 2020.
6
Structure and Function of Cochlear Gap Junctions and Implications for the Translation of Cochlear Gene Therapies.耳蜗缝隙连接的结构与功能及其对耳蜗基因治疗转化的意义
Front Cell Neurosci. 2019 Nov 27;13:529. doi: 10.3389/fncel.2019.00529. eCollection 2019.
7
Cochlear Gene Therapy for Sensorineural Hearing Loss: Current Status and Major Remaining Hurdles for Translational Success.感音神经性听力损失的耳蜗基因治疗:现状与转化成功面临的主要剩余障碍
Front Mol Neurosci. 2018 Jun 26;11:221. doi: 10.3389/fnmol.2018.00221. eCollection 2018.
8
Functional analysis of a nonsyndromic hearing loss-associated mutation in the transmembrane II domain of the GJC3 gene.GJC3基因跨膜II结构域中与非综合征性听力损失相关的突变的功能分析。
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9
Altered cellular localization and hemichannel activities of KID syndrome associated connexin26 I30N and D50Y mutations.与儿童鱼鳞病综合征相关的连接蛋白26 I30N和D50Y突变导致细胞定位改变和半通道活性异常。
BMC Cell Biol. 2016 Feb 2;17:5. doi: 10.1186/s12860-016-0081-0.
10
Diseases associated with leaky hemichannels.与半通道渗漏相关的疾病。
Front Cell Neurosci. 2015 Jul 27;9:267. doi: 10.3389/fncel.2015.00267. eCollection 2015.

本文引用的文献

1
Unique expression of connexins in the human cochlea.连接蛋白在人耳蜗中的独特表达。
Hear Res. 2009 Apr;250(1-2):55-62. doi: 10.1016/j.heares.2009.01.010. Epub 2009 Feb 6.
2
Imaging dynamic cell-cell junctional coupling in vivo using Trojan-LAMP.利用特洛伊木马-连接酶介导的等温扩增技术在体内成像动态细胞间连接耦合。
Nat Methods. 2008 Sep;5(9):835-41. doi: 10.1038/nmeth.1238.
3
Prevalence of GJB2 (connexin-26) and GJB6 (connexin-30) mutations in a cohort of 300 Brazilian hearing-impaired individuals: implications for diagnosis and genetic counseling.300名巴西听力受损个体队列中GJB2(连接蛋白26)和GJB6(连接蛋白30)突变的患病率:对诊断和遗传咨询的意义。
Ear Hear. 2009 Feb;30(1):1-7. doi: 10.1097/AUD.0b013e31819144ad.
4
Gap junction mediated intercellular metabolite transfer in the cochlea is compromised in connexin30 null mice.在连接蛋白30基因敲除小鼠中,耳蜗中缝隙连接介导的细胞间代谢物转运受损。
PLoS One. 2008;3(12):e4088. doi: 10.1371/journal.pone.0004088. Epub 2008 Dec 31.
5
Astroglial metabolic networks sustain hippocampal synaptic transmission.星形胶质细胞代谢网络维持海马体突触传递。
Science. 2008 Dec 5;322(5907):1551-5. doi: 10.1126/science.1164022.
6
Digenic inheritance of non-syndromic deafness caused by mutations at the gap junction proteins Cx26 and Cx31.由间隙连接蛋白Cx26和Cx31突变引起的非综合征性耳聋的双基因遗传。
Hum Genet. 2009 Feb;125(1):53-62. doi: 10.1007/s00439-008-0602-9. Epub 2008 Dec 3.
7
Coordinated control of connexin 26 and connexin 30 at the regulatory and functional level in the inner ear.内耳中连接蛋白26和连接蛋白30在调控和功能水平上的协同控制。
Proc Natl Acad Sci U S A. 2008 Dec 2;105(48):18776-81. doi: 10.1073/pnas.0800831105. Epub 2008 Dec 1.
8
ATP release through connexin hemichannels and gap junction transfer of second messengers propagate Ca2+ signals across the inner ear.通过连接蛋白半通道释放ATP以及第二信使的间隙连接传递,可使Ca2+信号在内耳中传播。
Proc Natl Acad Sci U S A. 2008 Dec 2;105(48):18770-5. doi: 10.1073/pnas.0800793105. Epub 2008 Dec 1.
9
Molecular studies in the GJB2 gene (Cx26) among a deaf population from Bogotá, Colombia: results of a screening program.对哥伦比亚波哥大聋哑人群中GJB2基因(Cx26)的分子研究:一项筛查计划的结果。
Int J Pediatr Otorhinolaryngol. 2009 Jan;73(1):97-101. doi: 10.1016/j.ijporl.2008.10.001. Epub 2008 Nov 21.
10
Identification and characterization of pannexin expression in the mammalian cochlea.哺乳动物耳蜗中泛连接蛋白表达的鉴定与特征分析。
J Comp Neurol. 2009 Jan 20;512(3):336-46. doi: 10.1002/cne.21898.

使用体外方法和小鼠模型的研究揭示了连接蛋白突变的多种致聋机制。

Diverse deafness mechanisms of connexin mutations revealed by studies using in vitro approaches and mouse models.

作者信息

Hoang Dinh Emilie, Ahmad Shoeb, Chang Qing, Tang Wenxue, Stong Benjamin, Lin Xi

机构信息

Department of Otolaryngology, Emory University School of Medicine, 615 Michael Street, Atlanta, GA 30322-3030, USA.

出版信息

Brain Res. 2009 Jun 24;1277:52-69. doi: 10.1016/j.brainres.2009.02.008. Epub 2009 Feb 20.

DOI:10.1016/j.brainres.2009.02.008
PMID:19230829
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2755050/
Abstract

Mutations in connexins (Cxs), the constitutive protein subunits of gap junction (GJ) intercellular channels, are one of the most common human genetic defects that cause severe prelingual non-syndromic hearing impairments. Many subtypes of Cxs (e.g., Cxs 26, 29, 30, 31, 43) and pannexins (Panxs) are expressed in the cochlea where they contribute to the formation of a GJ-based intercellular communication network. Cx26 and Cx30 are the predominant cochlear Cxs and they co-assemble in most GJ plaques to form hybrid GJs. The cellular localization of specific Cx subtypes provides a basis for understanding the molecular structure of GJs and hemichannels in the cochlea. Information about the interactions among the various co-assembled Cx partners is critical to appreciate the functional consequences of various types of genetic mutations. In vitro studies of reconstituted GJs in cell lines have yielded surprisingly heterogeneous mechanisms of dysfunction caused by various Cx mutations. Availability of multiple lines of Cx-mutant mouse models has provided some insight into the pathogenesis processes in the cochlea of deaf mice. Here we summarize recent advances in understanding the structure and function of cochlear GJs and give a critical review of current findings obtained from both in vitro studies and mouse models on the mechanisms of Cx mutations that lead to cell death in the cochlea and hearing loss.

摘要

连接蛋白(Cxs)是间隙连接(GJ)细胞间通道的组成蛋白亚基,其突变是导致严重的语前非综合征性听力障碍的最常见人类遗传缺陷之一。多种Cx亚型(如Cx 26、29、30、31、43)和泛连接蛋白(Panxs)在耳蜗中表达,它们有助于形成基于GJ的细胞间通讯网络。Cx26和Cx30是耳蜗中主要的Cx,它们在大多数GJ斑块中共组装形成杂合GJ。特定Cx亚型的细胞定位为理解耳蜗中GJ和半通道的分子结构提供了基础。关于各种共组装Cx伙伴之间相互作用的信息对于理解各种类型基因突变的功能后果至关重要。在细胞系中对重组GJ进行的体外研究揭示了由各种Cx突变引起的功能障碍机制惊人地异质。多种Cx突变小鼠模型的出现为深入了解耳聋小鼠耳蜗的发病机制提供了一些线索。在此,我们总结了在理解耳蜗GJ结构和功能方面的最新进展,并对目前从体外研究和小鼠模型中获得的关于导致耳蜗细胞死亡和听力损失的Cx突变机制的研究结果进行了批判性综述。