Evolution Increases Primates Brain Complexity Extending RbFOX1 Splicing Activity to LSD1 Modulation.

IF 0.3 Q4 DEMOGRAPHY
Poblacion y Salud en Mesoamerica Pub Date : 2022-05-04 Epub Date: 2022-03-29 DOI:10.1523/JNEUROSCI.1782-21.2022
Chiara Forastieri, Maria Italia, Emanuela Toffolo, Elena Romito, Maria Paola Bonasoni, Valeria Ranzani, Beatrice Bodega, Francesco Rusconi, Elena Battaglioli
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引用次数: 0

Abstract

Recent branching (100 MYA) of the mammalian evolutionary tree has enhanced brain complexity and functions at the putative cost of increased emotional circuitry vulnerability. Thus, to better understand psychopathology, a burden for the modern society, novel approaches should exploit evolutionary aspects of psychiatric-relevant molecular pathways. A handful of genes is nowadays tightly associated to psychiatric disorders. Among them, neuronal-enriched RbFOX1 modifies the activity of synaptic regulators in response to neuronal activity, keeping excitability within healthy domains. We here dissect a higher primates-restricted interaction between RbFOX1 and the transcriptional corepressor Lysine Specific Demethylase 1 (LSD1/KDM1A). A single nucleotide variation (AA to AG) in LSD1 gene appeared in higher primates and humans, endowing RbFOX1 with the ability to promote the alternative usage of a novel 3' AG splice site, which extends LSD1 exon E9 in the upstream intron (E9-long). Exon E9-long regulates LSD1 levels by Nonsense-Mediated mRNA Decay. As reintroduction of the archaic LSD1 variant (AA) abolishes E9-long splicing, the novel 3' AG splice site is necessary for RbFOX1 to control LSD1 levels. LSD1 is a homeostatic immediate early genes (IEGs) regulator playing a relevant part in environmental stress-response. In primates and humans, inclusion of LSD1 as RbFOX1 target provides RbFOX1 with the additional ability to regulate the IEGs. These data, together with extensive RbFOX1 involvement in psychiatric disorders and its stress-dependent regulation in male mice, suggest the RbFOX1-LSD1-IEGs axis as an evolutionary recent psychiatric-relevant pathway. Notably, outside the nervous system, RbFOX2-dependent LSD1 modulation could be a candidate deregulated mechanism in cancer.SIGNIFICANCE STATEMENT To be better understood, anxiety and depression need large human genetics studies aimed at further resolving the often ambiguous, aberrant neuronal pathomechanisms that impact corticolimbic circuitry physiology. Several genetic associations of the alternative splicing regulator RbFOX1 with psychiatric conditions suggest homeostatic unbalance as a neuronal signature of psychopathology. Here we move a step forward, characterizing a disease-relevant higher primates-specific pathway by which RbFOX1 acquires the ability to regulate neuronal levels of Lysine Specific Demethylase 1, an epigenetic modulator of environmental stress response. Thus, two brain-enriched enzymes, independently shown to homeostatically protect neurons with a clear readout in terms of emotional behavior in lower mammals, establish in higher primates and humans a new functional cooperation enhancing the complexity of environmental adaptation and stress vulnerability.

进化增加了灵长类动物大脑的复杂性,将 RbFOX1 剪接活动扩展到 LSD1 调节。
哺乳动物进化树最近(100 MYA)的分支增强了大脑的复杂性和功能,但其代价可能是增加了情感回路的脆弱性。因此,为了更好地理解精神病理学这一现代社会的负担,新方法应利用精神疾病相关分子通路的进化方面。如今,有少数基因与精神疾病密切相关。其中,富含神经元的 RbFOX1 会根据神经元活动改变突触调节因子的活性,从而将兴奋性保持在健康范围内。我们在此剖析了 RbFOX1 与转录核心抑制因子赖氨酸特异性去甲基化酶 1(LSD1/KDM1A)之间的一种高等灵长类动物限制性相互作用。高等灵长类动物和人类的 LSD1 基因中出现了一个单核苷酸变异(AA 到 AG),赋予了 RbFOX1 促进新型 3' AG 剪接位点替代使用的能力,该位点在上游内含子(E9-long)中延长了 LSD1 外显子 E9。外显子 E9-长通过无意义 mRNA 衰减调节 LSD1 水平。由于重新引入古老的 LSD1 变体(AA)会取消 E9 长剪接,因此新型 3' AG 剪接位点是 RbFOX1 控制 LSD1 水平的必要条件。LSD1 是一种平衡性即时早期基因(IEGs)调节因子,在环境应激反应中发挥着重要作用。在灵长类动物和人类中,将 LSD1 作为 RbFOX1 的靶标为 RbFOX1 提供了调节 IEGs 的额外能力。这些数据以及 RbFOX1 在精神疾病中的广泛参与及其在雄性小鼠中的应激依赖性调控,表明 RbFOX1-LSD1-IEGs 轴是一条与精神疾病相关的最新进化途径。值得注意的是,在神经系统之外,RbFOX2 依赖性 LSD1 调节可能是癌症中的一种候选失调机制。 重要意义 为了更好地理解焦虑症和抑郁症,需要进行大规模的人类遗传学研究,旨在进一步解决影响皮质边缘回路生理的往往模糊不清的异常神经元病理机制。替代剪接调节因子 RbFOX1 与精神疾病的几种遗传关联表明,平衡失调是精神病理学的神经元特征。在这里,我们向前迈进了一步,鉴定了一种与疾病相关的高等灵长类动物特异性途径,通过这种途径,RbFOX1 获得了调节神经元赖氨酸特异性去甲基化酶 1 水平的能力,而赖氨酸特异性去甲基化酶 1 是环境应激反应的一种表观遗传调节剂。因此,在低等哺乳动物中,这两种富含大脑的酶可独立地对神经元进行平衡保护,并对情绪行为进行清晰的解读,而在高等灵长类动物和人类中,这两种酶则建立了一种新的功能合作关系,提高了环境适应性和应激脆弱性的复杂性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
0.40
自引率
50.00%
发文量
23
审稿时长
16 weeks
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