A fully human IgG1 antibody targeting connexin 32 extracellular domain blocks CMTX1 hemichannel dysfunction in an in vitro model.

IF 8.2 2区 生物学 Q1 CELL BIOLOGY Cell Communication and Signaling Pub Date : 2024-12-05 DOI:10.1186/s12964-024-01969-0
Abraham Tettey-Matey, Viola Donati, Chiara Cimmino, Chiara Di Pietro, Damiano Buratto, Mariateresa Panarelli, Alberto Reale, Arianna Calistri, Maria Vittoria Fornaini, Ruhong Zhou, Guang Yang, Francesco Zonta, Daniela Marazziti, Fabio Mammano
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Abstract

Connexins (Cxs) are fundamental in cell-cell communication, functioning as gap junction channels (GJCs) that facilitate solute exchange between adjacent cells and as hemichannels (HCs) that mediate solute exchange between the cytoplasm and the extracellular environment. Mutations in the GJB1 gene, which encodes Cx32, lead to X-linked Charcot-Marie-Tooth type 1 (CMTX1), a rare hereditary demyelinating disorder of the peripheral nervous system (PNS) without an effective cure or treatment. In Schwann cells, Cx32 HCs are thought to play a role in myelination by enhancing intracellular and intercellular Ca2+ signaling, which is crucial for proper PNS myelination. Single-point mutations (p.S85C, p.D178Y, p.F235C) generate pathological Cx32 HCs characterized by increased permeability ("leaky") or excessive activity ("hyperactive").We investigated the effects of abEC1.1-hIgG1, a fully human immunoglobulin G1 (hIgG1) monoclonal antibody, on wild-type (WT) and mutant Cx32D178Y HCs. Using HeLa DH cells conditionally co-expressing Cx and a genetically encoded Ca2+ biosensor (GCaMP6s), we demonstrated that mutant HCs facilitated 58% greater Ca2+ uptake in response to elevated extracellular Ca2+ concentrations ([Ca2+]ex) compared to WT HCs. abEC1.1-hIgG1 dose-dependently inhibited Ca2+ uptake, achieving a 50% inhibitory concentration (EC50) of ~ 10 nM for WT HCs and ~ 80 nM for mutant HCs. Additionally, the antibody suppressed DAPI uptake and ATP release. An atomistic computational model revealed that serine 56 (S56) of the antibody interacts with aspartate 178 (D178) of WT Cx32 HCs, contributing to binding affinity. Despite the p.D178Y mutation weakening this interaction, the antibody maintained binding to the mutant HC epitope at sub-micromolar concentrations.In conclusion, our study shows that abEC1.1-hIgG1 effectively inhibits both WT and mutant Cx32 HCs, highlighting its potential as a therapeutic approach for CMTX1. These findings expand the antibody's applicability for treating diseases associated with Cx HCs and inform the rational design of next-generation antibodies with enhanced affinity and efficacy against mutant HCs.

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在体外模型中,靶向连接蛋白32胞外结构域的全人源IgG1抗体可阻断CMTX1半通道功能障碍。
连接蛋白(Cxs)是细胞间通讯的基础,作为间隙连接通道(GJCs)促进相邻细胞之间的溶质交换,作为半通道(hc)介导细胞质和细胞外环境之间的溶质交换。编码Cx32的GJB1基因发生突变,导致x连锁的Charcot-Marie-Tooth 1型(CMTX1),这是一种罕见的周围神经系统(PNS)遗传性脱髓鞘疾病,目前尚无有效的治疗方法。在雪旺细胞中,Cx32 hc被认为通过增强细胞内和细胞间Ca2+信号在髓鞘形成中发挥作用,这对于正常的PNS髓鞘形成至关重要。单点突变(p.S85C, p.D178Y, p.F235C)产生病理性Cx32 hcc,其特征是渗透性增加(“漏”)或过度活性(“过度活跃”)。我们研究了全人免疫球蛋白G1 (hIgG1)单克隆抗体abEC1.1-hIgG1对野生型(WT)和突变型Cx32D178Y hcc的影响。使用HeLa DH细胞有条件地共表达Cx和基因编码的Ca2+生物传感器(GCaMP6s),我们证明突变型hcc与WT型hcc相比,在细胞外Ca2+浓度([Ca2+]ex)升高的情况下,促进了58%的Ca2+摄取。abEC1.1-hIgG1剂量依赖性地抑制Ca2+摄取,对WT型hcc达到50%的抑制浓度(EC50) ~ 10 nM,对突变型hcc达到~ 80 nM。此外,抗体抑制DAPI摄取和ATP释放。原子计算模型显示,该抗体的丝氨酸56 (S56)与WT Cx32 hc的天冬氨酸178 (D178)相互作用,有助于结合亲和力。尽管p.D178Y突变削弱了这种相互作用,但抗体在亚微摩尔浓度下保持与突变HC表位的结合。总之,我们的研究表明,abEC1.1-hIgG1有效抑制WT和突变型Cx32 hcc,突出了其作为CMTX1治疗方法的潜力。这些发现扩大了该抗体在治疗与Cx hcc相关疾病中的适用性,并为合理设计针对突变型hcc具有增强亲和力和有效性的下一代抗体提供了信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
11.00
自引率
0.00%
发文量
180
期刊介绍: Cell Communication and Signaling (CCS) is a peer-reviewed, open-access scientific journal that focuses on cellular signaling pathways in both normal and pathological conditions. It publishes original research, reviews, and commentaries, welcoming studies that utilize molecular, morphological, biochemical, structural, and cell biology approaches. CCS also encourages interdisciplinary work and innovative models, including in silico, in vitro, and in vivo approaches, to facilitate investigations of cell signaling pathways, networks, and behavior. Starting from January 2019, CCS is proud to announce its affiliation with the International Cell Death Society. The journal now encourages submissions covering all aspects of cell death, including apoptotic and non-apoptotic mechanisms, cell death in model systems, autophagy, clearance of dying cells, and the immunological and pathological consequences of dying cells in the tissue microenvironment.
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