Association of N-cadherin levels and downstream effectors of Rho GTPases with dendritic spine loss induced by chronic stress in rat hippocampal neurons

被引:59
作者
Castaneda, Patricia [1 ]
Munoz, Mauricio [2 ]
Garcia-Rojo, Gonzalo [2 ]
Ulloa, Jose L. [2 ]
Bravo, Javier A. [3 ]
Marquez, Ruth [2 ]
Alexandra Garcia-Perez, M. [2 ]
Arancibia, Damaris [2 ]
Araneda, Karina [2 ]
Rojas, Paulina S. [2 ]
Mondaca-Ruff, David [4 ]
Diaz-Veliz, Gabriela [5 ]
Mora, Sergio [5 ]
Aliaga, Esteban [6 ]
Fiedler, Jenny L. [2 ]
机构
[1] Univ Metropolitana Ciencias Educ, Dept Biol, Fac Sci, Santiago, Chile
[2] Univ Chile, Fac Chem & Pharmaceut Sci, Dept Biochem & Mol Biol, Lab Neuroplast & Neurogenet, Santiago 8380492, Chile
[3] Pontificia Univ Catolica Valparaiso, Inst Quim, Lab Quim Biol, Grp NeuroGastroBioquim, Valparaiso, Chile
[4] Univ Chile, Fac Chem & Pharmaceut Sci, Dept Pharmacol, Grad Student PhD Program, Santiago 8380492, Chile
[5] Univ Chile, Fac Med, ICBM, Lab Farmacol Comportamiento, Santiago 8380492, Chile
[6] Pontificia Univ Catolica Valparaiso, Fac Ciencias, Escuela Kinesiol, Valparaiso, Chile
关键词
behavior; Rho proteins; stress; depression; N-cadherin; beta-catenin; RRID; RGD_70508; AB_228341; AB_228307; SCR_013725; RRID: rid_000081; AB_476743; AB_398236; AB_634603; AB_2491619; AB_260391; AB_330238; AB_10708808; RRID: AB_1031185; AB_1642257; resource ID; SCR_013726; RECURRENT MAJOR DEPRESSION; LONG-TERM POTENTIATION; BETA-CATENIN; MYOSIN PHOSPHATASE; FAMILY GTPASES; LIM-KINASE; PROTEIN PHOSPHATASE; SYNAPSE DEVELOPMENT; ACTIN CYTOSKELETON; MOOD DISORDERS;
D O I
10.1002/jnr.23602
中图分类号
Q189 [神经科学];
学科分类号
071006 [神经生物学];
摘要
Chronic stress promotes cognitive impairment and dendritic spine loss in hippocampal neurons. In this animal model of depression, spine loss probably involves a weakening of the interaction between pre- and postsynaptic cell adhesion molecules, such as N-cadherin, followed by disruption of the cytoskeleton. N-cadherin, in concert with catenin, stabilizes the cytoskeleton through Rho-family GTPases. Via their effector LIM kinase (LIMK), RhoA and ras-related C3 botulinum toxin substrate 1 (RAC) GTPases phosphorylate and inhibit cofilin, an actin-depolymerizing molecule, favoring spine growth. Additionally, RhoA, through Rho kinase (ROCK), inactivates myosin phosphatase through phosphorylation of the myosin-binding subunit (MYPT1), producing actomyosin contraction and probable spine loss. Some micro-RNAs negatively control the translation of specific mRNAs involved in Rho GTPase signaling. For example, miR-138 indirectly activates RhoA, and miR-134 reduces LIMK1 levels, resulting in spine shrinkage; in contrast, miR-132 activates RAC1, promoting spine formation. We evaluated whether N-cadherin/-catenin and Rho signaling is sensitive to chronic restraint stress. Stressed rats exhibit anhedonia, impaired associative learning, and immobility in the forced swim test and reduction in N-cadherin levels but not -catenin in the hippocampus. We observed a reduction in spine number in the apical dendrites of CA1 pyramidal neurons, with no effect on the levels of miR-132 or miR-134. Although the stress did not modify the RAC-LIMK-cofilin signaling pathway, we observed increased phospho-MYPT1 levels, probably mediated by RhoA-ROCK activation. Furthermore, chronic stress raises the levels of miR-138 in accordance with the observed activation of the RhoA-ROCK pathway. Our findings suggest that a dysregulation of RhoA-ROCK activity by chronic stress could potentially underlie spine loss in hippocampal neurons. (c) 2015 Wiley Periodicals, Inc.
引用
收藏
页码:1476 / 1491
页数:16
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