Biphasic response of human iPSC-derived neural network activity following exposure to a sarin-surrogate nerve agent

被引:1
作者
Bogguri, Chandrakumar [1 ]
George, Vivek Kurien [2 ]
Amiri, Beheshta [1 ]
Ladd, Alexander [2 ]
Hum, Nicholas R. [1 ]
Sebastian, Aimy [1 ]
Enright, Heather A. [1 ]
Valdez, Carlos A. [3 ]
Mundhenk, T. Nathan [2 ]
Cadena, Jose [2 ]
Lam, Doris [1 ]
机构
[1] Lawrence Livermore Natl Lab, Phys & Life Sci Directorate, Livermore, CA 94550 USA
[2] Lawrence Livermore Natl Lab, Engn Directorate, Livermore 94550, CA USA
[3] Lawrence Livermore Natl Lab, Global Secur Directorate, Livermore, CA USA
关键词
multi-electrode array; human neuronal activity; organophosphate; nerve agent; acute exposure; human induced pluripotent stem cells; microphysiological systems; GATED CALCIUM-CHANNELS; KINASE-C ISOZYMES; IN-VITRO; ORGANOPHOSPHORUS COMPOUNDS; ACUTE TOXICITY; HUMAN BRAIN; ACETYLCHOLINESTERASE; INHIBITION; EXPRESSION; CELLS;
D O I
10.3389/fncel.2024.1378579
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Organophosphorus nerve agents (OPNA) are hazardous environmental exposures to the civilian population and have been historically weaponized as chemical warfare agents (CWA). OPNA exposure can lead to several neurological, sensory, and motor symptoms that can manifest into chronic neurological illnesses later in life. There is still a large need for technological advancement to better understand changes in brain function following OPNA exposure. The human-relevant in vitro multi-electrode array (MEA) system, which combines the MEA technology with human stem cell technology, has the potential to monitor the acute, sub-chronic, and chronic consequences of OPNA exposure on brain activity. However, the application of this system to assess OPNA hazards and risks to human brain function remains to be investigated. In a concentration-response study, we have employed a human-relevant MEA system to monitor and detect changes in the electrical activity of engineered neural networks to increasing concentrations of the sarin surrogate 4-nitrophenyl isopropyl methylphosphonate (NIMP). We report a biphasic response in the spiking (but not bursting) activity of neurons exposed to low (i.e., 0.4 and 4 mu M) versus high concentrations (i.e., 40 and 100 mu M) of NIMP, which was monitored during the exposure period and up to 6 days post-exposure. Regardless of the NIMP concentration, at a network level, communication or coordination of neuronal activity decreased as early as 60 min and persisted at 24 h of NIMP exposure. Once NIMP was removed, coordinated activity was no different than control (0 mu M of NIMP). Interestingly, only in the high concentration of NIMP did coordination of activity at a network level begin to decrease again at 2 days post-exposure and persisted on day 6 post-exposure. Notably, cell viability was not affected during or after NIMP exposure. Also, while the catalytic activity of AChE decreased during NIMP exposure, its activity recovered once NIMP was removed. Gene expression analysis suggests that human iPSC-derived neurons and primary human astrocytes resulted in altered genes related to the cell's interaction with the extracellular environment, its intracellular calcium signaling pathways, and inflammation, which could have contributed to how neurons communicated at a network level.
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页数:16
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