Neurobionics Research Group, Hungarian Academy of Sciences-Péter Pázmány Catholic University, Budapest 1094, Hungary.
Neuroscience. 2011 Jan 13;172:406-18. doi: 10.1016/j.neuroscience.2010.10.049. Epub 2010 Oct 25.
The ectoenzyme tissue non-specific alkaline phosphatase (TNAP) is mostly known for its role in bone mineralization. However, in the severe form of hypophosphatasia, TNAP deficiency also results in epileptic seizures, suggesting a role of this enzyme in brain functions. Accordingly, TNAP activity was shown in the neuropil of the cerebral cortex in diverse mammalian species. However in spite of its clinical significance, the neuronal localization of TNAP has not been investigated in the human brain. By using enzyme histochemistry, we found an unprecedented pattern of TNAP activity appearing as an uninterrupted layer across diverse occipital-, frontal- and temporal lobe areas of the human cerebral cortex. This marked TNAP-active band was localized infragranulary in layer 5 as defined by quantitative comparisons on parallel sections stained by various techniques to reveal the laminar pattern. On the contrary, TNAP activity was localized in layer 4 of the primary visual and somatosensory cortices, which is consistent with earlier observations on other species. This result suggests that the expression of TNAP in the thalamo-recipient granular layer is an evolutionary conserved feature of the sensory cortex. The observations of the present study also suggest that diverse neurocognitive functions share a common cerebral cortical mechanism depending on TNAP activity in layer 5. In summary, the present data point on the distinctive role of layer 5 in cortical computation and neurological disorders caused by TNAP dysfunctions in the human brain.
组织非特异性碱性磷酸酶(TNAP)的外酶主要因其在骨矿化中的作用而为人所知。然而,在严重的低磷酸酶血症中,TNAP 缺乏也会导致癫痫发作,这表明该酶在大脑功能中起作用。因此,在不同的哺乳动物的神经丛中均发现有 TNAP 活性。然而,尽管其具有临床意义,但 TNAP 在人脑中的神经元定位尚未得到研究。通过使用酶组织化学,我们发现了一种前所未有的 TNAP 活性模式,它作为一个不间断的层出现在人脑大脑皮质的各种枕叶、额叶和颞叶区域。通过对用各种技术染色的平行切片进行定量比较,将此标记 TNAP 活性带定位于第 5 层以下的颗粒层内。相反,TNAP 活性定位于初级视觉和体感皮质的第 4 层,这与其他物种的早期观察结果一致。这一结果表明,TNAP 在丘脑接受颗粒层中的表达是感觉皮质中对进化保守特征。本研究的观察结果还表明,不同的神经认知功能依赖于第 5 层中的 TNAP 活性,具有共同的大脑皮质机制。总之,本研究的数据表明第 5 层在大脑皮质计算和由人类大脑中 TNAP 功能障碍引起的神经系统疾病中具有独特的作用。