Optimization of an autaptic culture system for studying cholinergic synapses in sympathetic ganglia.

IF 2.9 4区 医学 Q2 PHYSIOLOGY
Seong Jun Kang, Huu Son Nguyen, Choong-Ku Lee, Sohyun Kim, Jeong Seop Rhee, Seong-Woo Jeong
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Abstract

An autaptic synapse (or 'autapse') is a functional connection between a neuron and itself, commonly used in studying the molecular mechanisms underlying synaptic transmission and plasticity in central neurons. Most previous studies on autonomic synaptic functions have relied on spontaneous connections among neurons in mass cultures. However, growing evidence supports the utility of microcultures cultivating autaptic neurons for examining cholinergic transmission within sympathetic ganglia. Despite these advancements, standardized protocols for culturing autaptic sympathetic neurons have yet to be established. Drawing on historical literature, this study delineates optimal experimental conditions to efficiently and reliably produce cholinergic synapses in sympathetic neurons within a short time frame. Our research emphasizes five key factors: (i) the generation of uniformly sized microislands of growth permissive substrates; (ii) the addition of nerve growth factor, ciliary neurotrophic factor (CNTF), and serum to the culture medium; (iii) independence from specific serum and neuronal medium types; (iv) the reciprocal roles of CNTF and glial cells; and (v) the promotion of cholinergic synaptogenesis in SCG neurons through indirect glia co-cultures, rather than direct glial feeder layer cultures. In conclusion, glia-free monocultures of SCG neurons are relatively simple to prepare and yield robust and reliable synaptic currents. This makes them an effective model system for straightforwardly addressing fundamental questions about neurogenic mechanisms involved in cholinergic synaptic transmission in autonomic ganglia. Furthermore, autaptic culture experiments could eventually be implemented to investigate the roles of functional neuron-satellite glia units in regulating cholinergic functions under physiological and pathological conditions.

优化研究交感神经节胆碱能突触的自突触培养系统
自体突触(或 "自体突触")是神经元与自身之间的功能连接,常用于研究中枢神经元突触传递和可塑性的分子机制。以往对自律神经突触功能的研究大多依赖于大量培养的神经元之间的自发连接。然而,越来越多的证据支持利用微培养物培养自突触神经元来研究交感神经节内的胆碱能传导。尽管取得了这些进展,但培养交感神经自体突触神经元的标准化方案仍有待建立。本研究借鉴历史文献,划定了最佳实验条件,以便在短时间内高效、可靠地在交感神经元中产生胆碱能突触。我们的研究强调了五个关键因素:(i)生成大小一致的生长容许基质微区;(ii)在培养基中添加神经生长因子、睫状肌神经营养因子(CNTF)和血清;(iii)不受特定血清和神经元培养基类型的影响;(iv)CNTF 和神经胶质细胞的相互作用;(v)通过间接神经胶质细胞共培养而非直接神经胶质细胞饲养层培养促进 SCG 神经元的胆碱能突触发生。总之,无胶质细胞的单培养 SCG 神经元制备相对简单,并能产生稳健可靠的突触电流。这使它们成为一个有效的模型系统,可直接解决自律神经节中胆碱能突触传递所涉及的神经源机制的基本问题。此外,自突触培养实验最终可用于研究功能神经元-卫星胶质细胞单元在生理和病理条件下调节胆碱能功能的作用。
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来源期刊
CiteScore
8.80
自引率
2.20%
发文量
121
审稿时长
4-8 weeks
期刊介绍: Pflügers Archiv European Journal of Physiology publishes those results of original research that are seen as advancing the physiological sciences, especially those providing mechanistic insights into physiological functions at the molecular and cellular level, and clearly conveying a physiological message. Submissions are encouraged that deal with the evaluation of molecular and cellular mechanisms of disease, ideally resulting in translational research. Purely descriptive papers covering applied physiology or clinical papers will be excluded. Papers on methodological topics will be considered if they contribute to the development of novel tools for further investigation of (patho)physiological mechanisms.
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