Departamento de Biología Molecular, Facultad de Ciencias Exactas, Físico-Químicas y Naturales, Universidad Nacional de Río Cuarto, Río Cuarto, 5800, Córdoba, Argentina.
Instituto de Biotecnología Ambiental y Salud (INBIAS), (CONICET - UNRC), Río Cuarto, 5800, Córdoba, Argentina.
Cell Biochem Biophys. 2024 Jun;82(2):319-328. doi: 10.1007/s12013-023-01206-4. Epub 2023 Dec 22.
Ca plays a crucial role in cell signaling, cytosolic Ca can change up to 10,000-fold in concentration due to the action of Ca-ATPases, including PMCA, SERCA and SCR. The regulation and balance of these enzymes are essential to maintain cytosolic Ca homeostasis. Our laboratory has discovered a novel PMCA regulatory system, involving acetylated tubulin alone or in combination with membrane lipids. This regulation controls cytosolic Ca levels and influences cellular properties such as erythrocyte rheology. This review summarizes the findings on the regulatory mechanism of PMCA activity by acetylated tubulin in combination with lipids. The combination of tubulin cytoskeleton and membrane lipids suggests a novel regulatory system for PMCA, which consequently affects cytosolic Ca content, depending on cytoskeletal and plasma membrane dynamics. Understanding the interaction between acetylated tubulin, lipids and PMCA activity provides new insights into Ca signaling and cell function. Further research may shed light on potential therapeutic targets for diseases related to Ca dysregulation. This discovery contributes to a broader understanding of cellular processes and offers opportunities to develop innovative approaches to treat Ca-related disorders. By elucidating the complex regulatory mechanisms of Ca homeostasis, we advance our understanding of cell biology and its implications for human health.
钙在细胞信号转导中起着至关重要的作用,由于钙-ATP 酶(包括 PMCA、SERCA 和 SCR)的作用,细胞质中的钙浓度可以变化高达 10000 倍。这些酶的调节和平衡对于维持细胞质钙稳态至关重要。我们的实验室发现了一种新的 PMCA 调节系统,涉及单独的乙酰化微管蛋白或与膜脂质结合。这种调节控制细胞质钙水平,并影响细胞特性,如红细胞流变性。本综述总结了关于乙酰化微管蛋白与脂质结合对 PMCA 活性的调节机制的研究结果。微管蛋白细胞骨架和膜脂质的结合表明了 PMCA 的一个新的调节系统,这反过来又根据细胞骨架和质膜动力学影响细胞质钙含量。了解乙酰化微管蛋白、脂质和 PMCA 活性之间的相互作用为钙信号转导和细胞功能提供了新的见解。进一步的研究可能为与钙失调相关的疾病提供潜在的治疗靶点。这一发现有助于更全面地了解细胞过程,并为治疗与钙相关的疾病提供了创新方法的机会。通过阐明钙稳态的复杂调节机制,我们深入了解了细胞生物学及其对人类健康的影响。