[1] Medina M, Marinescu RC, Overhauser J, et al. Hemizygosity of δ-catenin (CTNND2) is associated with severe mental retardation in cri-du-chat syndrome [J]. Genomics, 2000, 63(2):157-164.
[2] Yuan L, Seong E, Beuscher JL, et al. δ-Catenin regulates spine architecture via cadherin and PDZ-dependent interactions [J]. J Biol Chem, 2015, 290(17):10947-10957.
[3] Ligon C, Seong E, Schroeder EJ, et al. δ-Catenin engages the autophagy pathway to sculpt the developing dendritic arbor [J]. J Biol Chem, 2020,295(32):10988-11001.
[4] Israely Ⅰ, Costa RM, Xie CW, et al. Deletion of the neuron-specific protein delta-catenin leads to severe cognitive and synaptic dysfunction [J]. Curr Biol, 2004,14(18):1657-1663.
[5] Jones J, Jaramillo-Merchán J, Bueno C, et al. Mesenchymal stem cells rescue Purkinje cells and improve motor functions in a mouse model of cerebellar ataxia [J]. Neurobiol Dis, 2010, 40(2):415-423.
[6] van Rootselaar AF, Groffen AJ, de Vries B, et al. δ-Catenin (CTNND2) missense mutation in familial cortical myoclonic tremor and epilepsy [J]. Neurology, 2017,89(23):2341-2350.
[7] Jaworski J, Spangler S, Seeburg DP, et al. Control of dendritic arborization by the phosphoinositide-3-kinase-Akt-mammalian target of rapamycin pathway [J]. J Neurosci, 2005, 25(49):11300-11312.
[8] Kumar Ⅴ, Zhang MX, Swank MW, et al. Regulation of dendritic morphogenesis by Ras-PI3K-Akt-mTOR and Ras-MAPK signaling pathways [J]. J Neurosci, 2005,25(49):11288-11299.
[9] Li N, Lee B, Liu RJ, et al. mTOR-dependent synapse formation underlies the rapid antidepressant effects of NMDA antagonists [J]. Science, 2010, 329(5994):959-964.
[10] Casadio A, Martin KC, Giustetto M, et al. A transient, neuron-wide form of CREB-mediated long-term facilitation can be stabilized at specific synapses by local protein synthesis [J]. Cell, 1999, 99(2):221-237.
[11] Richter JD, Klann E. Making synaptic plasticity and memory last: mechanisms of translational regulation [J]. Genes Dev, 2009, 23(1):1-11.
[12] Brigidi GS, Sun Y, Beccano-Kelly D, et al. Palmitoylation of δ-catenin by DHHC5 mediates activity-induced synapse plasticity [J]. Nat Neurosci, 2014,17(4):522-532.
[13] Silverman JB, Restituito S, Lu W, et al. Synaptic anchorage of AMPA receptors by cadherins through neural plakophilin-related arm protein AMPA receptor-binding protein complexes [J]. J Neurosci, 2007,27(32):8505-8516.
[14] Ho C, Zhou J, Medina M, et al. δ-catenin is a nervous system-specific adherens junction protein which undergoes dynamic relocalization during development [J]. J Comp Neurol, 2000, 420(2):261-276.
[15] Matter C, Pribadi M, Liu X, et al. δ-catenin is required for the maintenance of neural structure and function in mature cortex in vivo [J]. Neuron, 2009,64(3):320-327.
[16] Arikkath J, Peng IF, Ng YG,et al. δ-catenin regulates spine and synapse morphogenesis and function in hippocampal neurons during development [J]. J Neurosci, 2009, 29(17):5435-5442.
[17] Ryu T, Park HJ, Kim H, et al. Improved memory and reduced anxiety in δ-catenin transgenic mice [J]. Exp Neurol, 2019, 318:22-31.
[18] Schmahmann JD. The cerebellum and cognition [J]. Neurosci Lett, 2019, 688:62-75.
[19] Lee JM, Kim TW, Park SS, et al. Treadmill exercise improves motor function by suppressing purkinje cell loss in parkinson disease rats [J]. Int Neurourol J, 2018, 22(Suppl 3):S147-155.
[20] Usui N, Co M, Harper M, et al. Sumoylation of FOXP2 regulates motor function and vocal communication through purkinje cell development [J]. Biol Psychiatry, 2017, 81(3):220-230.
[21] Wu ShW, Guan JJ, Chen Y. Effects of Xingshen Yizhi granule on the learning and memory ability and the expression of postsynaptic dense protein 95 and synapsin protein in the hippocampus of vascular dementia rats [J]. Acta Anatomica Sinica, 2020, 51(5): 745-750. (in Chinese)
吴世卫,关建军,陈瑜. 醒神益智颗粒对血管性痴呆大鼠学习记忆能力及海马突触后致密蛋白95及突触蛋白表达的影响 [J]. 解剖学报, 2020, 51(5): 745-750.
[22] Radulovic T, Dong W, Goral RO, et al. Presynaptic development is controlled by the core active zone proteins CAST/ELKS [J]. J Physiol, 2020, 598(12):2431-2452.
[23] Hagiwara A, Kitahara Y, Grabner CP, et al. Cytomatrix proteins CAST and ELKS regulate retinal photoreceptor development and maintenance [J]. J Cell Biol, 2018, 217(11):3993-4006.
[24] Held RG, Kaeser PS. ELKS active zone proteins as multitasking scaffolds for secretion [J]. Open Biol, 2018, 8(2):170258.
[25] Mardones MD, Jorquera PV, Herrera-Soto A, et al. PSD95 regulates morphological development of adult-born granule neurons in the mouse hippocampus [J]. J Chem Neuroanat, 2019, 98:117-123.
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