Tsc1浦肯野细胞特异性基因敲除小鼠的早期发育。

IF 1.4 4区 医学 Q4 NEUROSCIENCES
Anna Sługocka, Marta Anna Przybyła, Jarosław Jerzy Barski
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引用次数: 0

摘要

Tsc1 是一种基因,它的表达会产生一种参与调节 mTOR1 通路的蛋白质--hamartin。Tsc1 失活会导致 mTOR1 机制过度激活,细胞增殖和生长增加,随后细胞退化和死亡。在人类中,Tsc1 基因突变会导致一种遗传性疾病--结节性硬化综合症(TSC),并伴有多器官非恶性肿瘤(结节)、癫痫发作和类似自闭症的表现。一般的基因敲除小鼠、同基因Tsc1等位基因失活的小鼠无法存活,并在胚胎早期死亡。为了规避这一问题,我们利用 Cre/loxP 系统,使用 pcp2/L7Cre 小鼠品系和 Tsc1tmDjk/J 品系,特异性地移除了 Purkinje 细胞中的 Tsc1。由于已发表的结果显示,同一杂交后的小鼠会出现类似自闭症的症状,因此我们决定仔细研究这些突变体在出生后早期的表现。令人惊讶的是,我们没有发现任何行为改变的证据,包括新生儿的超声波发声。我们决定将更多的注意力放在数据解释上,包括对结果进行更详细的统计评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Early development of the Tsc1 Purkinje cell specific mouse knockouts.

Tsc1 is a gene which expression results in hamartin, a protein involved in regulation of the mTOR1 pathway. Inactivation of Tsc1 gives rise to hyperactivation of the mTOR1 machinery, increased proliferation and growth of cells with subsequent cell degeneration and cell death. In humans, mutations of Tsc1 result in an inherited disorder ‑ tuberous sclerosis complex (TSC) with the concomitant multiorgan non‑malignant tumors (tubers), epileptic seizures and autistic‑like manifestations. General mouse knock‑outs, homozygous for the inactivated Tsc1 alleles do not survive and die at early embryonal stages. To circumvent this problem, we utilized the Cre/loxP system and removed Tsc1 specifically in Purkinje cells using the pcp2/L7Cre mouse strain and the Tsc1tmDjk/J strains. Because of the published results showing the autistic‑like symptoms after the same crossbred, we have decided to look closer at the early postnatal period of these mutants. Surprisingly no evidence of any behavioral alterations were found, including the ultrasonic vocalizations of newborns. We decided to focus more attention on the interpretation of data, including a more detailed statistical evaluation of our results.

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来源期刊
CiteScore
2.20
自引率
7.10%
发文量
40
审稿时长
>12 weeks
期刊介绍: Acta Neurobiologiae Experimentalis (ISSN: 0065-1400 (print), eISSN: 1689-0035) covers all aspects of neuroscience, from molecular and cellular neurobiology of the nervous system, through cellular and systems electrophysiology, brain imaging, functional and comparative neuroanatomy, development and evolution of the nervous system, behavior and neuropsychology to brain aging and pathology, including neuroinformatics and modeling.
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