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凝集素伴侣钙连蛋白通过调节构巢曲霉中的钙稳态参与内质网应激反应。

The Lectin Chaperone Calnexin Is Involved in the Endoplasmic Reticulum Stress Response by Regulating Ca Homeostasis in Aspergillus nidulans.

作者信息

Zhang Shenghua, Zheng Hailin, Chen Qiuyi, Chen Yuan, Wang Sha, Lu Ling, Zhang Shizhu

机构信息

Jiangsu Key Laboratory for Microbes and Functional Genomics, Jiangsu Engineering and Technology Research Center for Microbiology, College of Life Sciences, Nanjing Normal University, Nanjing, China.

Program in Molecular and Translational Medicine (PMTM), School of Medicine, Huzhou University, Huzhou, China.

出版信息

Appl Environ Microbiol. 2017 Jul 17;83(15). doi: 10.1128/AEM.00673-17. Print 2017 Aug 1.

Abstract

The Ca-mediated signaling pathway is crucial for environmental adaptation in fungi. Here we show that calnexin, a molecular chaperone located in the endoplasmic reticulum (ER), plays an important role in regulating the cytosolic free calcium concentration ([Ca]) in Inactivation of calnexin (ClxA) in caused severe defects in hyphal growth and conidiation under ER stress caused by the ER stress-inducing agent dithiothreitol (DTT) or high temperature. Importantly, defects in the Δ mutant were restored by the addition of extracellular calcium. Furthermore, the CchA/MidA complex (the high-affinity Ca channels), calcineurin (calcium/calmodulin-dependent protein phosphatase), and PmrA (secretory pathway Ca ATPase) were required for extracellular calcium-based restoration of the DTT/thermal stress sensitivity in the Δ mutant. Interestingly, the Δ mutant exhibited markedly reduced conidium formation and hyphal growth defects under the low-calcium condition, which is similar to defects caused by mutations in MidA/CchA. Moreover, the phenotypic defects were further exacerbated in the Δ Δ Δ mutant, which suggested that ClxA and MidA/CchA are both required under the calcium-limiting condition. Using the calcium-sensitive photoprotein aequorin to monitor [Ca] in living cells, we found that ClxA and MidA/CchA complex synergistically coordinate transient increase in [Ca] in response to extracellular calcium. Moreover, ClxA, in particular its luminal domain, plays a role in mediating the transient [Ca] in response to DTT-induced ER stress in the absence of extracellular calcium, indicating ClxA may mediate calcium release from internal calcium stores. Our findings provide new insights into the role of calnexin in the regulation of calcium-mediated response in fungal ER stress adaptation. Calnexin is a well-known molecular chaperone conserved from yeast to humans. Although it contains calcium binding domains, little is known about the role of calnexin in Ca regulation. In this study, we demonstrate that calnexin (ClxA) in the filamentous fungus , similar to the high-affinity calcium uptake system (HACS), is required for normal growth and conidiation under the calcium-limiting condition. The ClxA dysfunction decreases the transient cytosolic free calcium concentration ([Ca]) induced by a high extracellular calcium or DTT-induced ER stress. Our findings provide the direct evidence that calnexin plays important roles in regulating Ca homeostasis in addition to its role as a molecular chaperone in fungi. These results provide new insights into the roles of calnexin and expand knowledge of fungal stress adaptation.

摘要

钙介导的信号通路对于真菌的环境适应至关重要。在此我们表明,位于内质网(ER)的分子伴侣钙连蛋白,在调节胞质游离钙浓度([Ca])方面发挥着重要作用。在由内质网应激诱导剂二硫苏糖醇(DTT)或高温引起的内质网应激下,敲除钙连蛋白(ClxA)导致菌丝生长和分生孢子形成出现严重缺陷。重要的是,添加细胞外钙可恢复Δ突变体中的缺陷。此外,CchA/MidA复合物(高亲和力钙通道)、钙调神经磷酸酶(钙/钙调蛋白依赖性蛋白磷酸酶)和PmrA(分泌途径钙ATP酶)是Δ突变体中基于细胞外钙恢复DTT/热应激敏感性所必需的。有趣的是,Δ突变体在低钙条件下分生孢子形成明显减少且菌丝生长存在缺陷,这与MidA/CchA突变引起的缺陷相似。此外,在ΔΔΔ突变体中表型缺陷进一步加剧,这表明在钙限制条件下ClxA和MidA/CchA都是必需的。使用钙敏感光蛋白水母发光蛋白来监测活细胞中的[Ca],我们发现ClxA和MidA/CchA复合物协同协调响应细胞外钙时[Ca]的瞬时增加。此外,ClxA,特别是其腔内结构域,在无细胞外钙时响应DTT诱导的内质网应激介导[Ca]的瞬时变化,表明ClxA可能介导从内部钙库释放钙。我们的研究结果为钙连蛋白在真菌内质网应激适应中调节钙介导反应的作用提供了新的见解。钙连蛋白是一种从酵母到人类都保守的著名分子伴侣。尽管它含有钙结合结构域,但关于钙连蛋白在钙调节中的作用知之甚少。在本研究中,我们证明丝状真菌中的钙连蛋白(ClxA),类似于高亲和力钙摄取系统(HACS),在钙限制条件下对于正常生长和分生孢子形成是必需的。ClxA功能障碍会降低由高细胞外钙或DTT诱导的内质网应激所诱导的瞬时胞质游离钙浓度([Ca])。我们的研究结果提供了直接证据,表明钙连蛋白除了在真菌中作为分子伴侣的作用外,在调节钙稳态中也发挥着重要作用。这些结果为钙连蛋白的作用提供了新的见解,并扩展了对真菌应激适应的认识。

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本文引用的文献

1
Palmitoylation of the Cysteine Residue in the DHHC Motif of a Palmitoyl Transferase Mediates Ca2+ Homeostasis in Aspergillus.
PLoS Genet. 2016 Apr 8;12(4):e1005977. doi: 10.1371/journal.pgen.1005977. eCollection 2016 Apr.
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Calcineurin and Calcium Channel CchA Coordinate the Salt Stress Response by Regulating Cytoplasmic Ca2+ Homeostasis in Aspergillus nidulans.
Appl Environ Microbiol. 2016 May 16;82(11):3420-3430. doi: 10.1128/AEM.00330-16. Print 2016 Jun 1.
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Palmitoylation is the switch that assigns calnexin to quality control or ER Ca2+ signaling.
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