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Remotely controlled chemomagnetic modulation of targeted neural circuits

机译:靶神经电路的远程控制化学磁性调制

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摘要

Connecting neural circuit output to behaviour can be facilitated by the precise chemical manipulation of specific cell populations(1,2). Engineered receptors exclusively activated by designer small molecules enable manipulation of specific neural pathways(3,4). However, their application to studies of behaviour has thus far been hampered by a trade-off between the low temporal resolution of systemic injection versus the invasiveness of implanted cannulae or infusion pumps(2). Here, we developed a remotely controlled chemomagnetic modulation-a nanomaterials-based technique that permits the pharmacological interrogation of targeted neural populations in freely moving subjects. The heat dissipated by magnetic nanoparticles (MNPs) in the presence of alternating magnetic fields (AMFs) triggers small-molecule release from thermally sensitive lipid vesicles with a 20 s latency. Coupled with the chemogenetic activation of engineered receptors, this technique permits the control of specific neurons with temporal and spatial precision. The delivery of chemomagnetic particles to the ventral tegmental area (VTA) allows the remote modulation of motivated behaviour in mice. Furthermore, this chemomagnetic approach activates endogenous circuits by enabling the regulated release of receptor ligands. Applied to an endogenous dopamine receptor D1 (DRD1) agonist in the nucleus accumbens (NAc), a brain area involved in mediating social interactions, chemomagnetic modulation increases sociability in mice. By offering a temporally precise control of specified ligand-receptor interactions in neurons, this approach may facilitate molecular neuroscience studies in behaving organisms.
机译:通过特定细胞群的精确化学操作(1,2)可以促进连接到行为的神经电路输出。专门由设计者小分子激活的工程受体能够操纵特定的神经途径(3,4)。然而,他们对行为研究的申请已经受到全身注射的低时间分辨率与植入套管或输液泵(2)的侵袭性之间的折衷的权衡受到阻碍。在这里,我们开发了一种远程控制的化学磁性调制 - 一种基于纳米材料的技术,允许在自由移动受试者中占有针对性神经群的药理学询问。在交替磁场(AMF)存在下,通过磁性纳米颗粒(MNP)散发的热量从热敏脂质囊泡的情况下延伸到20秒的延迟。结合工程受体的化学激活,该技术允许用时间和空间精度控制特定神经元。将化学颗粒的递送到腹侧特子区域(VTA)允许远程调节小鼠中的动机行为。此外,这种化学磁性方法通过使受体配体的调节释放来激活内源性电路。应用于内源性多巴胺受体D1(DRD1)激动剂在核心宫内(NAC),涉及介导社交相互作用的脑面积,化学磁调制增加了小鼠的社会性。通过在神经元中的特定配体受体相互作用的时间暂时精确控制,这种方法可以促进表现生物体中的分子神经科学研究。

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