Van Hove Inge, Verslegers Mieke, Hu Tjing-Tjing, Carden Martin, Arckens Lutgarde, Moons Lieve
Laboratory of Neural Circuit Development and Regeneration, Animal Physiology and Neurobiology Section, Department of Biology, KU Leuven, Leuven, Belgium.
Laboratory of Neuroplasticity and Neuroproteomics, Animal Physiology and Neurobiology Section, Department of Biology, KU Leuven, Leuven, Belgium.
Dev Neurobiol. 2015 Sep;75(9):1033-48. doi: 10.1002/dneu.22272. Epub 2015 Feb 18.
Matrix metalloproteinase-3 (MMP-3) deficiency in mice was previously reported to result in a transiently retarded granule cell migration at postnatal day 8 (P8) and a sustained disturbed arborization of Purkinje cell dendrites from P8 on, concomitant with a delayed synapse formation between granule cells and Purkinje cells and resulting in mild deficits in motor performance in adult animals. However, the molecular mechanisms by which MMP-3 contributes to proper development of the cerebellar cortex during the first postnatal weeks remains unknown. In this study, we used a functional proteomics approach to investigate alterations in protein expression in postnatal cerebella of wild-type versus MMP-3 deficient mice, and to further elucidate MMP-3-dependent pathways and downstream targets in vivo. At P8, two-dimensional difference gel electrophoresis and mass spectrometry identified 20 unique proteins with a different expression between the two genotypes. Subsequent "Ingenuity Pathway Analysis" and Western blotting indicate that the chaperonin containing T-complex polypeptide 1, subunit 6A and the MAP kinase signaling pathway play a key role in the MMP-3-dependent regulation of neurite outgrowth and neuronal migration in the developing brain.
先前有报道称,小鼠基质金属蛋白酶-3(MMP-3)缺乏会导致出生后第8天(P8)颗粒细胞迁移暂时延迟,且从P8开始浦肯野细胞树突持续出现分枝紊乱,同时颗粒细胞与浦肯野细胞之间的突触形成延迟,导致成年动物运动能力出现轻度缺陷。然而,在出生后的头几周内,MMP-3促进小脑皮质正常发育的分子机制尚不清楚。在本研究中,我们采用功能蛋白质组学方法,研究野生型与MMP-3缺陷型小鼠出生后小脑蛋白质表达的变化,并进一步阐明体内MMP-3依赖性途径和下游靶点。在P8时,二维差异凝胶电泳和质谱分析确定了两种基因型之间表达不同的20种独特蛋白质。随后的“ Ingenuity通路分析”和蛋白质印迹表明,含有T-复合体多肽1的伴侣蛋白亚基6A和丝裂原活化蛋白激酶信号通路在发育中的大脑中MMP-3依赖性神经突生长和神经元迁移调节中起关键作用。