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膜金属蛋白酶β调节短蛋白聚糖蛋白水解,损害神经可塑性和记忆形成。

Meprin β Modulates Brevican Proteolysis Impairing Neural Plasticity and Memory Formation.

作者信息

Keller Maximilian, Gallagher Celine, Kreiselmaier Simon, Bickenbach Kira, Schmitt Ulrich, Marengo Liana, Taghikhah Dayan, Abukhalaf Mohammad, Tholey Andreas, Becker-Pauly Christoph, Mittmann Thomas, Pietrzik Claus U

机构信息

Institute for Pathobiochemistry, University Medical Center, Mainz, Germany.

Institute for Physiology, University Medical Center, Mainz, Germany.

出版信息

FASEB J. 2025 May 31;39(10):e70616. doi: 10.1096/fj.202500017R.

Abstract

The metalloprotease meprin β is known for its multifunctional involvement in various physiological processes throughout the body including the brain. However, its broader functions within the brain besides amyloid β generation remain largely unexplored. To investigate this, we utilized a mouse model overexpressing meprin β in neurons within the cortex and hippocampus, regions crucial for learning and memory. Behavioral assessments, employing the Morris' Water Maze paradigm test, revealed impaired cognitive functions in animals overexpressing meprin β. Furthermore, electrophysiological recordings in hippocampal slices using multielectrode arrays showed an impaired long-term potentiation (LTP) in meprin β-overexpressing mice compared to wild-type counterparts. Intriguingly, concomitant with the LTP impairment, we observed an increased neuronal excitability. These findings underline the complicated interplay between meprin β abundance and behavioral manifestations, suggesting a broader impact on neural circuit dynamics. To elucidate the molecular mechanisms underlying these observed deficits, western blotting analyses were conducted to address the expression of glutamatergic receptors. Neither the expression of the N-methyl-D-aspartate (NMDA) nor the α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid (AMPA) receptor showed variation relative to each other. The application of N-terminomics identified brevican as a proteolytic substrate of meprin β and thus a potential key mediator linking meprin β overexpression to the observed effects. Previous studies have reported that brevican knockout in animal models influences learning and memory. Our data demonstrate that meprin β modulates brevican expression, likely contributing to the effects we have observed in our mouse model. These results shed light on the broader functional significance of meprin β in neurological processes.

摘要

金属蛋白酶meprinβ因其在包括大脑在内的全身各种生理过程中的多功能参与而闻名。然而,除了生成β淀粉样蛋白外,其在大脑中的更广泛功能在很大程度上仍未被探索。为了研究这一点,我们利用了一种小鼠模型,该模型在大脑皮层和海马体(对学习和记忆至关重要的区域)的神经元中过表达meprinβ。采用莫里斯水迷宫范式测试进行的行为评估显示,过表达meprinβ的动物认知功能受损。此外,使用多电极阵列对海马切片进行的电生理记录表明,与野生型小鼠相比,过表达meprinβ的小鼠的长时程增强(LTP)受损。有趣的是,与LTP受损同时,我们观察到神经元兴奋性增加。这些发现强调了meprinβ丰度与行为表现之间复杂的相互作用,表明其对神经回路动力学有更广泛的影响。为了阐明这些观察到的缺陷背后的分子机制,我们进行了蛋白质免疫印迹分析以研究谷氨酸能受体的表达。N-甲基-D-天冬氨酸(NMDA)受体和α-氨基-3-羟基-5-甲基-4-异恶唑丙酸(AMPA)受体的表达彼此之间均未显示出差异。N端蛋白质组学分析确定短蛋白聚糖是meprinβ的蛋白水解底物,因此是将meprinβ过表达与观察到的效应联系起来的潜在关键介质。先前的研究报道,动物模型中的短蛋白聚糖基因敲除会影响学习和记忆。我们的数据表明,meprinβ调节短蛋白聚糖的表达,这可能是导致我们在小鼠模型中观察到的效应的原因。这些结果揭示了meprinβ在神经学过程中的更广泛功能意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bf2a/12093287/8cc16925a4d2/FSB2-39-e70616-g009.jpg

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