The effects of chemogenetic targeting of serotonin-projecting pathways on L-DOPA-induced dyskinesia and psychosis in a bilateral rat model of Parkinson's disease.

IF 3.4 3区 医学 Q2 NEUROSCIENCES Frontiers in Neural Circuits Pub Date : 2024-11-14 eCollection Date: 2024-01-01 DOI:10.3389/fncir.2024.1463941
Natalie Lipari, Ashley Galfano, Shruti Venkatesh, Han Grezenko, Ivette M Sandoval, Fredric P Manfredsson, Christopher Bishop
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Abstract

Introduction: Parkinson's disease (PD) is commonly characterized by severe dopamine (DA) depletion within the substantia nigra (SN) leading to a myriad of motor and non-motor symptoms. One underappreciated and prevalent non-motor symptom, Parkinson's disease-associated psychosis (PDAP), significantly erodes patient and caregiver quality of life yet remains vastly understudied. While the gold standard pharmacotherapy for motor symptoms Levodopa (LD) is initially highly effective, it can lead to motor fluctuations like LD-induced dyskinesia (LID) and non-motor fluctuations such as intermittent PDAP. One source of these fluctuations could be the serotonergic raphe nuclei and their projections. Serotonin (5-HT) neurons possess the machinery necessary to convert and release DA from exogenous LD. In DA-depleted brain regions these 5-HT projections can act as surrogates to the DA system initially compensating but chronically leading to aberrant neuroplasticity which has been linked to LID and may also contribute to non-motor fluctuations. In support, recent work from our lab established a positive relationship between LID and PDAP in parkinsonian rats. Therefore, it was hypothesized that normalizing 5-HT forebrain input would reduce the co-expression of LID and PDAP.

Methods: To do so, we expressed 5-HT projection specific inhibitory designer receptor exclusively activated by designer drugs (DREADDs) using Cre-dependent AAV9-hM4di in tryptophan hydroxylase 2 (TPH2)-Cre bilaterally 6-OHDA-lesioned rats. Thereafter we used the designer drug Compound 21 to selectively inhibit 5-HT raphe projections during LD treatment to modulate the expression of PDAP, assayed by prepulse inhibition (PPI) and LID, quantified by the abnormal involuntary movements (AIMs) test.

Results: Our results suggest that chemogenetic inhibition of 5-HT raphe-projecting cells significantly reduces LID without affecting stepping ability or established sensorimotor gating deficits.

Discussion: Overall, this study provides further evidence for the complex influence of 5-HT raphe-projecting neurons on LD's neurobehavioral effects.

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在双侧帕金森大鼠模型中,5 -羟色胺投射通路对左旋多巴诱导的运动障碍和精神病的化学发生作用。
简介:帕金森病(PD)的常见特征是黑质(SN)内多巴胺(DA)严重耗损,导致无数的运动和非运动症状。帕金森氏病相关精神病(PDAP)是一种未被充分认识和普遍存在的非运动症状,它显著地侵蚀了患者和护理者的生活质量,但研究还远远不够。虽然左旋多巴(LD)运动症状的金标准药物治疗最初非常有效,但它可能导致运动波动,如LD诱导的运动障碍(LID)和非运动波动,如间歇性PDAP。这些波动的一个来源可能是血清素能中叶核及其投射。5-羟色胺(5-HT)神经元拥有从外源性LD转化和释放DA所必需的机制。在DA耗竭的大脑区域,这些5-HT投射可以替代DA系统,最初进行补偿,但长期导致与LID相关的异常神经可塑性,并可能导致非运动波动。为了支持这一点,我们实验室最近的工作在帕金森大鼠中建立了LID和PDAP之间的正相关关系。因此,我们假设正常的5-HT前脑输入会减少LID和PDAP的共表达。方法:利用cre依赖性AAV9-hM4di在双侧6- ohda损伤大鼠的色氨酸羟化酶2 (TPH2)-Cre中表达由设计药物独占激活的5-HT投射特异性抑制设计物受体(DREADDs)。随后,我们使用设计药物化合物21在LD治疗期间选择性抑制5-HT中缝突起,以调节PDAP的表达,通过脉冲前抑制(PPI)和LID进行检测,通过异常不自主运动(AIMs)测试进行量化。结果:我们的研究结果表明,化学发生抑制5-HT纹突细胞可显著降低LID,而不会影响步进能力或建立感觉运动门控缺陷。讨论:总的来说,本研究进一步证明了5-HT图投射神经元对LD神经行为效应的复杂影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.00
自引率
5.70%
发文量
135
审稿时长
4-8 weeks
期刊介绍: Frontiers in Neural Circuits publishes rigorously peer-reviewed research on the emergent properties of neural circuits - the elementary modules of the brain. Specialty Chief Editors Takao K. Hensch and Edward Ruthazer at Harvard University and McGill University respectively, are supported by an outstanding Editorial Board of international experts. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to researchers, academics and the public worldwide. Frontiers in Neural Circuits launched in 2011 with great success and remains a "central watering hole" for research in neural circuits, serving the community worldwide to share data, ideas and inspiration. Articles revealing the anatomy, physiology, development or function of any neural circuitry in any species (from sponges to humans) are welcome. Our common thread seeks the computational strategies used by different circuits to link their structure with function (perceptual, motor, or internal), the general rules by which they operate, and how their particular designs lead to the emergence of complex properties and behaviors. Submissions focused on synaptic, cellular and connectivity principles in neural microcircuits using multidisciplinary approaches, especially newer molecular, developmental and genetic tools, are encouraged. Studies with an evolutionary perspective to better understand how circuit design and capabilities evolved to produce progressively more complex properties and behaviors are especially welcome. The journal is further interested in research revealing how plasticity shapes the structural and functional architecture of neural circuits.
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