神经元特异性甘氨酸代谢链接将RNA表转录组调控转移到复杂行为

IF 4 Q2 NEUROSCIENCES
Jennifer Blaze , Viviana Dolores Evans , Jessica Abigail Feria Pliego , Petr Unichenko , Behnam Javidfar , Soeren Heissel , Hanan Alwaseem , Zachary Pennington , Denise Cai , Henrik Molina , Christian Henneberger , Schahram Akbarian
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引用次数: 0

摘要

神经精神疾病治疗耐药的存在表明,新的基于机制的发现和治疗方法可能使该领域受益,其中可行的候选者是转移RNA (tRNA)表转录组学。成熟神经元中Nsun2 tRNA甲基转移酶的缺失引发了与恐惧、焦虑和其他神经精神表型相关的复杂行为的变化。然而,尚不清楚这是否由于trna失调或代谢变化,通过激活应激信使和改变氨基酸供应影响神经元翻译组。为了将神经元Nsun2消融导致的特异性分子改变与神经精神表型联系起来,我们使用药物诱导的应激反应翻译起始因子的磷酸化激活,以及Nsun2调节的甘氨酸trna的破坏和细胞类型特异性的甘氨酸切割系统的消融,模拟了Nsun2缺乏的大脑中该氨基酸的过度上调。通过海马体中的光学甘氨酸Förster共振能量转移(FRET)传感器监测细胞外甘氨酸水平的变化,行为表型包括认知,焦虑样行为和行为绝望。结果在Gldc神经元特异性消融的小鼠中观察到动机性逃避行为的增加,导致皮质甘氨酸水平过剩,与神经元Nsun2缺失后小鼠的类似表型相当。在用tunicamycin治疗综合应激反应途径的化学激活小鼠或通过基因工程降低甘氨酸tRNA基因剂量的小鼠中,没有观察到这些表型。在nsun2缺乏的大脑中,海马细胞外空间的动态甘氨酸谱完全维持在基线和神经元活动的背景下。结论:靶向消融甘氨酸切割系统或破坏tRNA规则组导致神经元甘氨酸代谢的改变,可引起与神经精神表型相关的小鼠复杂行为的改变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Neuron-Specific Glycine Metabolism Links Transfer RNA Epitranscriptomic Regulation to Complex Behaviors

Background

The presence of treatment resistance in neuropsychiatric disease suggests that novel mechanism-based discoveries and therapies could benefit the field, with a viable candidate being transfer RNA (tRNA) epitranscriptomics. Nsun2 tRNA methyltransferase depletion in mature neurons elicits changes in complex behaviors relevant for fear, anxiety, and other neuropsychiatric phenotypes. However, it remains unclear whether this is due to dysregulated tRNAs or metabolic shifts that impact the neuronal translatome by activation of stress messengers together with alterations in amino acid supply.

Methods

To link specific molecular alterations resulting from neuronal Nsun2 ablation to neuropsychiatric phenotypes, we used drug-induced phosphoactivation of stress response translation initiation factors together with disruption of NSUN2-regulated glycine tRNAs and cell type–specific ablation of the glycine cleavage system modeling the excessive upregulation of this amino acid in the Nsun2-deficient brain. Changes in extracellular glycine levels were monitored by an optical glycine Förster resonance energy transfer (FRET) sensor in the hippocampus, and behavioral phenotyping included cognition, anxiety-like behavior, and behavioral despair.

Results

Increased motivated escape behaviors were specifically observed in mice with neuron-specific ablation of Gldc, resulting in an excess in cortical glycine levels comparable to a similar phenotype in mice after deletion of neuronal Nsun2. None of these phenotypes were observed in mice treated with tunicamycin for chemoactivation of integrative stress response pathways or in mice genetically engineered for decreased glycine tRNA gene dosage. In the Nsun2-deficient brain, dynamic glycine profiles in the hippocampal extracellular space were fully maintained at baseline and in the context of neuronal activity.

Conclusions

Alterations in neuronal glycine metabolism, resulting from targeted ablation of the glycine cleavage system or disruption of the tRNA regulome, elicit changes in complex behaviors in mice relevant for neuropsychiatric phenotypes.
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来源期刊
Biological psychiatry global open science
Biological psychiatry global open science Psychiatry and Mental Health
CiteScore
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