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沉默 NTPDase3 活性可恢复绝经后干细胞骨祖细胞的成骨定向。

Silencing NTPDase3 activity rehabilitates the osteogenic commitment of post-menopausal stem cell bone progenitors.

机构信息

Laboratório de Farmacologia e Neurobiologia, Instituto de Ciências Biomédicas de Abel Salazar (ICBAS) - Universidade do Porto (UP), R. Jorge Viterbo Ferreira, 228, 4050-313, Porto, Portugal.

Center for Drug Discovery and Innovative Medicines (MedInUP), Porto, Portugal.

出版信息

Stem Cell Res Ther. 2023 Apr 19;14(1):97. doi: 10.1186/s13287-023-03315-6.

Abstract

BACKGROUND

Endogenously released adenine and uracil nucleotides favour the osteogenic commitment of bone marrow-derived mesenchymal stromal cells (BM-MSCs) through the activation of ATP-sensitive P2X7 and UDP-sensitive P2Y receptors. Yet, these nucleotides have their osteogenic potential compromised in post-menopausal (Pm) women due to overexpression of nucleotide metabolizing enzymes, namely NTPDase3. This prompted us to investigate whether NTPDase3 gene silencing or inhibition of its enzymatic activity could rehabilitate the osteogenic potential of Pm BM-MSCs.

METHODS

MSCs were harvested from the bone marrow of Pm women (69 ± 2 years old) and younger female controls (22 ± 4 years old). The cells were allowed to grow for 35 days in an osteogenic-inducing medium in either the absence or the presence of NTPDase3 inhibitors (PSB 06126 and hN3-B3 antibody); pre-treatment with a lentiviral short hairpin RNA (Lenti-shRNA) was used to silence the NTPDase3 gene expression. Immunofluorescence confocal microscopy was used to monitor protein cell densities. The osteogenic commitment of BM-MSCs was assessed by increases in the alkaline phosphatase (ALP) activity. The amount of the osteogenic transcription factor Osterix and the alizarin red-stained bone nodule formation. ATP was measured with the luciferin-luciferase bioluminescence assay. The kinetics of the extracellular ATP (100 µM) and UDP (100 µM) catabolism was assessed by HPLC RESULTS: The extracellular catabolism of ATP and UDP was faster in BM-MSCs from Pm women compared to younger females. The immunoreactivity against NTPDase3 increased 5.6-fold in BM-MSCs from Pm women vs. younger females. Selective inhibition or transient NTPDase3 gene silencing increased the extracellular accumulation of adenine and uracil nucleotides in cultured Pm BM-MSCs. Downregulation of NTPDase3 expression or activity rehabilitated the osteogenic commitment of Pm BM-MSCs measured as increases in ALP activity, Osterix protein cellular content and bone nodule formation; blockage of P2X7 and P2Y purinoceptors prevented this effect.

CONCLUSIONS

Data suggest that NTPDase3 overexpression in BM-MSCs may be a clinical surrogate of the osteogenic differentiation impairment in Pm women. Thus, besides P2X7 and P2Y receptors activation, targeting NTPDase3 may represent a novel therapeutic strategy to increase bone mass and reduce the osteoporotic risk of fractures in Pm women.

摘要

背景

内源性释放的腺嘌呤和尿嘧啶核苷酸通过激活 ATP 敏感的 P2X7 和 UDP 敏感的 P2Y 受体,有利于骨髓间充质基质细胞(BM-MSCs)的成骨分化。然而,由于核苷酸代谢酶,即 NTPDase3 的过度表达,这些核苷酸的成骨潜力在绝经后(Pm)女性中受到损害。这促使我们研究 NTPDase3 基因沉默或抑制其酶活性是否可以恢复 Pm BM-MSCs 的成骨潜能。

方法

从 Pm 女性(69±2 岁)和年轻女性对照者(22±4 岁)的骨髓中分离出 MSCs。在成骨诱导培养基中,在不存在或存在 NTPDase3 抑制剂(PSB 06126 和 hN3-B3 抗体)的情况下,让细胞生长 35 天;使用慢病毒短发夹 RNA(Lenti-shRNA)预先处理以沉默 NTPDase3 基因表达。免疫荧光共聚焦显微镜用于监测蛋白细胞密度。通过碱性磷酸酶(ALP)活性的增加来评估 BM-MSCs 的成骨分化。成骨转录因子 Osterix 的量和茜素红染色的骨结节形成。用荧光素-荧光素酶生物发光测定法测量 ATP。通过 HPLC 评估细胞外 ATP(100µM)和 UDP(100µM)的代谢动力学。

结果

与年轻女性相比,Pm 女性的 BM-MSCs 细胞外 ATP 和 UDP 的代谢更快。与年轻女性相比,Pm 女性的 BM-MSCs 中针对 NTPDase3 的免疫反应性增加了 5.6 倍。选择性抑制或瞬时 NTPDase3 基因沉默增加了培养的 Pm BM-MSCs 中外源腺嘌呤和尿嘧啶核苷酸的积累。NTPDase3 表达或活性的下调恢复了 Pm BM-MSCs 的成骨分化,表现为 ALP 活性、Osterix 蛋白细胞含量和骨结节形成的增加;阻断 P2X7 和 P2Y 嘌呤能受体可阻止这种作用。

结论

数据表明,BM-MSCs 中 NTPDase3 的过度表达可能是 Pm 女性成骨分化受损的临床替代指标。因此,除了激活 P2X7 和 P2Y 受体外,靶向 NTPDase3 可能是一种新的治疗策略,可以增加骨量并降低 Pm 女性的骨折骨质疏松风险。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/57f2/10116749/c1a37d285cbf/13287_2023_3315_Fig1_HTML.jpg

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