Vandecasteele Marie, Senova Yann-Suhan, Palfi Stéphane, Dugué Guillaume P
Équipe dynamique et pathophysiologie des réseaux neuronaux, centre interdisciplinaire de recherche en biologie, CNRS UMR 7241, Inserm U1050, Collège de France, 11, place Marcelin Berthelot, 75005 Paris, France.
AP-HP, hôpital Henri Mondor, service de neurochirurgie, 94000 Créteil, France - Inserm, U955, équipe 14, 94000 Créteil, France - Université Paris Est, faculté de médecine, 94000 Créteil, France.
Med Sci (Paris). 2015 Apr;31(4):404-16. doi: 10.1051/medsci/20153104015. Epub 2015 May 8.
Optogenetic neuromodulation techniques, which have emerged during the last 15 years, have considerably enhanced our ability to probe the functioning of neural circuits by allowing the excitation and inhibition of genetically-defined neuronal populations using light. Having gained tremendous popularity in the field of fundamental neuroscience, these techniques are now opening new therapeutic avenues. Optogenetic neuromodulation is a method of choice for studying the physiopathology of neurological and neuropsychiatric disorders in a range of animal models, and could accelerate the discovery of new therapeutic strategies. New therapeutic protocols employing optogenetic neuromodulation may also emerge in the near future, offering promising alternative approaches for disorders which lack appropriate treatments, such as pharmacoresistant epilepsy and inherited retinal degeneration.
光遗传学神经调节技术在过去15年中出现,通过利用光对基因定义的神经元群体进行兴奋和抑制,极大地增强了我们探究神经回路功能的能力。这些技术在基础神经科学领域广受欢迎,目前正在开辟新的治疗途径。光遗传学神经调节是研究一系列动物模型中神经和神经精神疾病病理生理学的首选方法,并且可以加速新治疗策略的发现。采用光遗传学神经调节的新治疗方案可能也会在不久的将来出现,为诸如药物难治性癫痫和遗传性视网膜变性等缺乏适当治疗方法的疾病提供有前景的替代方法。