Bisphosphate nucleotidase 2 (BPNT2), a molecular target of lithium, regulates chondroitin sulfation patterns in the cerebral cortex and hippocampus

Q1 Biochemistry, Genetics and Molecular Biology Advances in biological regulation Pub Date : 2022-01-01 DOI:10.1016/j.jbior.2021.100858
Brynna S. Eisele , Alice J. Wu , Zigmund Luka , Andrew T. Hale , John D. York
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引用次数: 2

Abstract

Bisphosphate nucleotidase 2 (BPNT2) is a member of a family of phosphatases that are directly inhibited by lithium, the first-line medication for bipolar disorder. BPNT2 is localized to the Golgi, where it metabolizes the by-products of glycosaminoglycan sulfation reactions. BPNT2-knockout mice exhibit impairments in total-body chondroitin-4-sulfation which lead to abnormal skeletal development (chondrodysplasia). These mice die in the perinatal period, which has previously prevented the investigation of BPNT2 in the adult nervous system. Previous work has demonstrated the importance of chondroitin sulfation in the brain, as chondroitin-4-sulfate is a major component of perineuronal nets (PNNs), a specialized neuronal extracellular matrix which mediates synaptic plasticity and regulates certain behaviors. We hypothesized that the loss of BPNT2 in the nervous system would decrease chondroitin-4-sulfation and PNNs in the brain, which would coincide with behavioral abnormalities. We used Cre-lox breeding to knockout Bpnt2 specifically in the nervous system using Bpnt2 floxed (fl/fl) animals and a Nestin-driven Cre recombinase. These mice are viable into adulthood, and do not display gross physical abnormalities. We identified decreases in total glycosaminoglycan sulfation across selected brain regions, and specifically show decreases in chondroitin-4-sulfation which correspond with increases in chondroitin-6-sulfation. Interestingly, these changes were not correlated with gross alterations in PNNs. We also subjected these mice to a selection of neurobehavioral assessments and did not identify significant behavioral abnormalities. In summary, this work demonstrates that BPNT2, a known target of lithium, is important for glycosaminoglycan sulfation in the brain, suggesting that lithium-mediated inhibition of BPNT2 in the nervous system warrants further investigation.

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二磷酸核苷酸酶2 (BPNT2)是锂的分子靶点,调节大脑皮层和海马的软骨素硫酸化模式
双磷酸核苷酸酶2 (BPNT2)是磷酸酶家族中的一员,锂是治疗双相情感障碍的一线药物。BPNT2定位于高尔基体,在那里它代谢糖胺聚糖硫酸化反应的副产物。bpnt2敲除小鼠表现出全身软骨素-4-硫酸化损伤,导致骨骼发育异常(软骨发育不良)。这些小鼠在围产期死亡,这阻碍了BPNT2在成年神经系统中的研究。先前的研究已经证明了硫酸软骨素在大脑中的重要性,因为硫酸软骨素是神经周围网络(PNNs)的主要成分,PNNs是一种特殊的神经元细胞外基质,介导突触可塑性并调节某些行为。我们假设神经系统中BPNT2的缺失会导致大脑中4-硫酸软骨素和pnn的减少,这与行为异常相吻合。我们利用Bpnt2 floxed (fl/fl)动物和巢蛋白驱动的Cre重组酶,通过Cre-lox育种在神经系统中特异性敲除Bpnt2。这些老鼠可以存活到成年,没有明显的生理异常。我们发现,在选定的大脑区域中,总糖胺聚糖磺化减少,并且具体显示,软骨素-4-磺化减少,这与软骨素-6-磺化增加相对应。有趣的是,这些变化与pnn的总体变化无关。我们还对这些小鼠进行了一系列神经行为评估,没有发现明显的行为异常。总之,这项工作表明,BPNT2,锂的已知靶点,对脑中的糖胺聚糖硫酸化很重要,这表明锂介导的神经系统中BPNT2的抑制值得进一步研究。
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来源期刊
Advances in biological regulation
Advances in biological regulation Biochemistry, Genetics and Molecular Biology-Molecular Medicine
CiteScore
8.90
自引率
0.00%
发文量
41
审稿时长
17 days
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