Brain-Wide Mapping and Synaptic Localization of C1QL3 Using a Novel Epitope-Tagged Knock-In Mouse

IF 2.3 4区 医学 Q3 NEUROSCIENCES
William P. Armstrong IV, James M. Salvatore, Matthew J. Sticco, Keaven Caro, J. Wesley Maddox, Angie Huang, Brenna C. McAllister, Christopher B. O'Connell, Siu-Pok Yee, Amy Lee, Susanne Ressl, David C. Martinelli, Alexander C. Jackson
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引用次数: 0

Abstract

Synapse formation and function are coordinated spatially and temporally by a host of synaptic proteins that regulate neuronal signaling, synapse specificity, and plasticity, many of which are implicated in neuropsychiatric disorders. Many members of the C1q/TNF superfamily function as synaptic organizers, shaping synapse assembly and maintenance. Among them, C1QL3 plays a putative role in trans-synaptic adhesion and modulation of synaptic strength, but the lack of a reliable antibody to detect it has severely limited the ability to map its endogenous localization and study its biochemical properties. Here, we present a novel epitope-tagged knock-in mouse line (C1ql32HA), in which two hemagglutinin (HA) epitopes were inserted near the N-terminus of the endogenous C1QL3 protein. This model enables purification, detection, and subcellular localization of native C1QL3 protein (C1QL3-2HA) with high specificity, eliminating the need for overexpression or custom antibodies. We validated that C1ql32HA mice maintain normal mRNA expression, biochemical properties, and behavior. Using native PAGE, we determined the endogenous oligomeric state of C1QL3-2HA. Brain-wide light-sheet microscopy uncovered an expanded neuroanatomical map of C1QL3-2HA expression, including newly identified populations in cortical and subcortical regions as well as the retina. Dual immunohistochemistry confirmed cell-type-specific expression patterns, and super-resolution STED microscopy localized C1QL3-2HA to hippocampal mossy fiber synapses, positioned between pre- and postsynaptic markers, supporting its hypothesized role in trans-synaptic complexes. This knock-in mouse line is a valuable tool for studying the anatomical, molecular, and synaptic biology of C1QL3 in all cellular/tissue contexts, enabling future studies into its potential roles in the nervous system and beyond.

利用新型表位标记敲入小鼠C1QL3的全脑定位和突触定位。
突触的形成和功能是由一系列突触蛋白在空间和时间上协调的,这些突触蛋白调节神经元信号、突触特异性和可塑性,其中许多与神经精神疾病有关。C1q/TNF超家族的许多成员作为突触组织者,形成突触组装和维持。其中,C1QL3在跨突触粘附和突触强度调节中发挥着被推测的作用,但缺乏可靠的抗体检测,严重限制了其内源性定位和研究其生化特性的能力。在这里,我们提出了一种新的表位标记敲入小鼠系(C1ql32HA),其中两个血凝素(HA)表位插入内源性C1QL3蛋白的n端附近。该模型能够以高特异性纯化,检测和亚细胞定位天然C1QL3蛋白(C1QL3- 2ha),消除了过度表达或定制抗体的需要。我们证实C1ql32HA小鼠维持正常的mRNA表达、生化特性和行为。利用原生PAGE,我们测定了C1QL3-2HA的内源性寡聚物状态。全脑光片显微镜揭示了C1QL3-2HA表达的扩展神经解剖图谱,包括在皮层和皮层下区域以及视网膜中新发现的种群。双重免疫组织化学证实了细胞类型特异性表达模式,超分辨率STED显微镜将C1QL3-2HA定位于海马苔藓纤维突触,位于突触前和突触后标记物之间,支持其在跨突触复合物中的假设作用。该敲入小鼠系是研究C1QL3在所有细胞/组织背景下的解剖、分子和突触生物学的有价值的工具,使未来研究其在神经系统及其他领域的潜在作用成为可能。
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来源期刊
CiteScore
5.80
自引率
8.00%
发文量
158
审稿时长
3-6 weeks
期刊介绍: Established in 1891, JCN is the oldest continually published basic neuroscience journal. Historically, as the name suggests, the journal focused on a comparison among species to uncover the intricacies of how the brain functions. In modern times, this research is called systems neuroscience where animal models are used to mimic core cognitive processes with the ultimate goal of understanding neural circuits and connections that give rise to behavioral patterns and different neural states. Research published in JCN covers all species from invertebrates to humans, and the reports inform the readers about the function and organization of nervous systems in species with an emphasis on the way that species adaptations inform about the function or organization of the nervous systems, rather than on their evolution per se. JCN publishes primary research articles and critical commentaries and review-type articles offering expert insight in to cutting edge research in the field of systems neuroscience; a complete list of contribution types is given in the Author Guidelines. For primary research contributions, only full-length investigative reports are desired; the journal does not accept short communications.
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