Department of Molecular Neurosciences, Center for Brain Research, Medical University of Vienna, Vienna, Austria.
Department of Neuroscience, Biomedicum 7D, Karolinska Institutet, Solna, Sweden.
Cannabis Cannabinoid Res. 2021 Oct;6(5):381-388. doi: 10.1089/can.2021.0096. Epub 2021 Oct 6.
The endocannabinoid system is chiefly recognized as a homeostatic regulator of synaptic neurotransmission, primarily through the modulation of presynaptic CB cannabinoid neurons. Accordingly, the use of plant-derived cannabinoids received significant attention recently given the broad spectrum of physiological and pathobiological processes the endocannabinoid system is involved in. Nevertheless, a parallel line of research from a number of developmental biology groups has uncovered fundamental, evolutionarily conserved, and molecularly unique processes that endocannabinoids drive during development of the central nervous system. This lecture transcript is a concise summary of nearly 20 years of research on endocannabinoid-gated mechanisms of neurogenic specification events, which particularly define the numbers, placement, and connectivity of cortical neurons. A summary of both CB and alternative cannabinoid receptor contributions to neural differentiation is also discussed. Besides, insights are given into how phytocannabinoids can bypass physiologically timed and pivoted endocannabinoid action to inflict developmental errors that can significantly compromise the adaptive and computational ability of neurocircuits. By discussing specific subcellular targets of phytocannabinoid action and inferring errant glia versus neuron fate decisions and communication, a cellular basis is outlined for lifelong psychiatric phenotypes in offspring that associate with maternal cannabis seeking during pregnancy.
内源性大麻素系统主要被认为是突触神经传递的内稳调节器,主要通过调节 CB1 型大麻素神经元的突触前活动。因此,鉴于内源性大麻素系统参与的广泛的生理和病理生物学过程,植物源性大麻素的使用最近受到了广泛关注。然而,一些发育生物学小组的平行研究揭示了内源性大麻素在中枢神经系统发育过程中驱动的基本的、进化保守的、分子独特的过程。这篇演讲记录是对近 20 年来关于内源性大麻素门控神经发生事件的研究的简要总结,这些研究特别定义了皮质神经元的数量、位置和连接。还讨论了 CB1 和替代大麻素受体对神经分化的贡献。此外,还介绍了植物大麻素如何绕过生理性计时和枢轴内源性大麻素作用,从而造成发育错误,这些错误会严重损害神经回路的适应性和计算能力。通过讨论植物大麻素作用的特定亚细胞靶点,并推断错误的神经胶质与神经元命运决定和通讯,为与母亲在怀孕期间寻求大麻相关的后代终生精神表型提供了一个细胞基础。