Cytoplasmic vacuolization and ectopic formation of perineuronal nets are characteristic pathologies of cytomegalic neurons in tuberous sclerosis.

IF 3 3区 医学 Q2 CLINICAL NEUROLOGY
Alexander A Sosunov, Guy McKhann Ii, Guomei Tang, James E Goldman
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Abstract

Cytomegalic neurons, characterized by increased size and a hyperactive mechanistic target of rapamycin complex 1 (mTORC1), are pathognomonic for tuberous sclerosis complex (TSC). To model these neurons, we recently generated a murine Tsc1 conditional knockout model in which Tsc1 deletion in late embryonic radial glia results in neuronal hypertrophy of a subset of isocortical pyramidal neurons. In the current study, we compared the cellular pathology of these cytomegalic neurons to those of the enlarged neurons in human cortical tubers. Neurons from the mice showed unique features, such as cytoplasmic vacuoles associated with Golgi complexes and the ectopic formation of perineuronal nets (PNNs), a feature of inhibitory neurons, rarely present in excitatory cortical neurons. The membranes of these vacuoles were enriched for the plasma membrane proteins CD44, KCC2, and Na+/K+ ATPase, suggesting deficits in Golgi membrane trafficking. These aberrant features in the mouse appeared only after the onset of seizures, probably due to the prolonged seizure activity in the context of constitutive mTORC1 activation. Similar PNNs and cytoplasmic vacuoles were present in the cytomegalic neurons of human cortical tubers. Our findings reveal novel pathological features of Golgi complexes and PNNs in the cytomegalic neurons in TSC.

细胞质空泡化和神经元周围网的异位形成是结节性硬化症中巨细胞神经元的特征性病变。
巨细胞性神经元的特点是体积增大和雷帕霉素复合体 1(mTORC1)机制靶点亢进,是结节性硬化综合征(TSC)的病理标志。为了模拟这些神经元,我们最近建立了一个小鼠 Tsc1 条件性基因敲除模型,在该模型中,胚胎晚期放射胶质细胞中的 Tsc1 基因缺失会导致皮层锥体神经元亚群的神经元肥大。在当前的研究中,我们将这些巨细胞神经元的细胞病理学与人类皮质管中增大的神经元的细胞病理学进行了比较。来自小鼠的神经元显示出独特的特征,如与高尔基复合体相关的胞浆空泡和神经元周围网(PNN)的异位形成,这是抑制性神经元的特征,但很少出现在兴奋性皮层神经元中。这些空泡的膜富含质膜蛋白 CD44、KCC2 和 Na+/K+ ATPase,表明高尔基体膜贩运存在缺陷。小鼠的这些异常特征仅在癫痫发作开始后才出现,这可能是由于在组成型 mTORC1 激活的背景下癫痫活动持续时间较长所致。人类皮质管细胞巨细胞神经元中也存在类似的 PNN 和胞浆空泡。我们的研究结果揭示了TSC细胞巨细胞神经元中高尔基复合体和PNNs的新病理特征。
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来源期刊
CiteScore
5.40
自引率
6.20%
发文量
118
审稿时长
6-12 weeks
期刊介绍: Journal of Neuropathology & Experimental Neurology is the official journal of the American Association of Neuropathologists, Inc. (AANP). The journal publishes peer-reviewed studies on neuropathology and experimental neuroscience, book reviews, letters, and Association news, covering a broad spectrum of fields in basic neuroscience with an emphasis on human neurological diseases. It is written by and for neuropathologists, neurologists, neurosurgeons, pathologists, psychiatrists, and basic neuroscientists from around the world. Publication has been continuous since 1942.
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