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Pip5k1γ 通过激活 CaMKII-Ampk 通路促进老年小鼠髓核细胞合成代谢和椎间盘内稳态。

Pip5k1γ promotes anabolism of nucleus pulposus cells and intervertebral disc homeostasis by activating CaMKII-Ampk pathway in aged mice.

机构信息

Department of Biochemistry, School of Medicine, Shenzhen Key Laboratory of Cell Microenvironment, Guangdong Provincial Key Laboratory of Cell Microenvironment and Disease Research, Southern University of Science and Technology, Shenzhen, China.

School of Medicine, Southern University of Science and Technology, Shenzhen, China.

出版信息

Aging Cell. 2024 Sep;23(9):e14237. doi: 10.1111/acel.14237. Epub 2024 Jun 5.

Abstract

Degenerative disc disease (DDD) represents a significant global health challenge, yet its underlying molecular mechanisms remain elusive. This study aimed to investigate the role of type 1 phosphatidylinositol 4-phosphate 5-kinase (Pip5k1) in intervertebral disc (IVD) homeostasis and disease. All three Pip5k1 isoforms, namely Pip5k1α, Pip5k1β, and Pip5k1γ, were detectable in mouse and human IVD tissues, with Pip5k1γ displaying a highest expression in nucleus pulposus (NP) cells. The expression of Pip5k1γ was significantly down-regulated in the NP cells of aged mice and patients with severe DDD. To determine whether Pip5k1γ expression is required for disc homeostasis, we generated a Pip5k1γ; Aggrecan mouse model for the conditional knockout of the Pip5k1γ gene in aggrecan-expressing IVD cells. Our findings revealed that the conditional deletion of Pip5k1γ did not affect the disc structure or cellular composition in 5-month-old adult mice. However, in aged (15-month-old) mice, this deletion led to several severe degenerative disc defects, including decreased NP cellularity, spontaneous fibrosis and cleft formation, and a loss of the boundary between NP and annulus fibrosus. At the molecular level, the absence of Pip5k1γ reduced the anabolism of NP cells without markedly affecting their catabolic or anti-catabolic activities. Moreover, the loss of Pip5k1γ significantly dampened the activation of the protective Ampk pathway in NP cells, thereby accelerating NP cell senescence. Notably, Pip5k1γ deficiency blunted the effectiveness of metformin, a potent Ampk activator, in activating the Ampk pathway and mitigating lumbar spine instability (LSI)-induced disc lesions in mice. Overall, our study unveils a novel role for Pip5k1γ in promoting anabolism and maintaining disc homeostasis, suggesting it as a potential therapeutic target for DDD.

摘要

退变性椎间盘疾病(DDD)是一个全球性的重大健康挑战,但它的潜在分子机制仍不清楚。本研究旨在探讨 1 型磷酸肌醇 4-磷酸 5-激酶(Pip5k1)在椎间盘(IVD)稳态和疾病中的作用。三种 Pip5k1 同工型,即 Pip5k1α、Pip5k1β 和 Pip5k1γ,均可在小鼠和人 IVD 组织中检测到,其中 Pip5k1γ在髓核(NP)细胞中表达最高。在老年小鼠和严重 DDD 患者的 NP 细胞中,Pip5k1γ 的表达显著下调。为了确定 Pip5k1γ 的表达是否是椎间盘稳态所必需的,我们构建了一个 Pip5k1γ; Aggrecan 小鼠模型,用于在 aggrecan 表达的 IVD 细胞中条件性敲除 Pip5k1γ 基因。我们的研究结果表明,在 5 月龄成年小鼠中,条件性敲除 Pip5k1γ 不会影响椎间盘的结构或细胞组成。然而,在老年(15 月龄)小鼠中,这种缺失导致了几个严重的退行性椎间盘缺陷,包括 NP 细胞减少、自发性纤维化和裂隙形成,以及 NP 和纤维环之间的边界丧失。在分子水平上,Pip5k1γ 的缺失减少了 NP 细胞的合成代谢,而对其分解代谢或抗分解代谢活性没有明显影响。此外,Pip5k1γ 的缺失显著抑制了 NP 细胞中保护性 Ampk 通路的激活,从而加速了 NP 细胞衰老。值得注意的是,Pip5k1γ 缺乏削弱了二甲双胍(一种有效的 Ampk 激活剂)在激活 Ampk 通路和减轻小鼠腰椎不稳(LSI)诱导的椎间盘损伤方面的效果。总之,本研究揭示了 Pip5k1γ 在促进合成代谢和维持椎间盘稳态中的新作用,提示其可能成为 DDD 的潜在治疗靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/404a/11488325/f9c4bc1323ae/ACEL-23-e14237-g006.jpg

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