Biochemistry Department, Veterinary Medicine Faculty, Benha University, Egypt.
Health Radiation Research, National Center for Radiation Research and Technology, Atomic Energy Authority, Cairo, Egypt.
Biochim Biophys Acta Mol Basis Dis. 2020 Nov 1;1866(11):165904. doi: 10.1016/j.bbadis.2020.165904. Epub 2020 Jul 28.
Acute Pancreatitis (AP) is a multifactorial disease. It was characterized by severe inflammation and acinar cell destruction. Thus, the present study was initiated to evaluate the role the of Cinnamic acid nanoparticles (CA-NPs) as a modulator for the redox signaling pathway involved in the development of pancreatitis. AP in rats was induced by L-arginine and exposure to gamma radiation. The pancreatic injury was evaluated using biochemical and histological parameters. Upon the oral administration of CA-NPs, both the severity of acute pancreatitis and the serum levels of amylase and lipase were decreased. Furthermore, the malondialdehyde (MDA) levels of the pancreatic tissue were significantly reduced and the depletion of glutathione was considerably restored. The injury and apoptosis of pancreatic tissues were markedly improved by the reduction of the caspase-3 levels. Additionally, the alleviation of pancreatic oxidative damage by CA-NPs was accompanied by a down-regulation of the NLRP3, NF-κB, and ASK1/MAPK signaling pathways. Collectively, the current findings showed that CA-NPs could protect the pancreatic acinar cell from injury not only by its antioxidant, anti-inflammatory effect but also by modulation of the redox-sensitive signal transduction pathways contributed to acute pancreatitis severity. Accordingly, cinnamic acid nanoparticles have therapeutic potential for the management of acute pancreatitis.
急性胰腺炎(AP)是一种多因素疾病。其特征为严重的炎症和腺泡细胞破坏。因此,本研究旨在评估肉桂酸纳米粒子(CA-NPs)作为一种调节剂在胰腺炎发展过程中氧化还原信号通路的作用。通过 L-精氨酸和γ射线照射诱导大鼠的胰腺炎。使用生化和组织学参数评估胰腺损伤。口服 CA-NPs 后,急性胰腺炎的严重程度和血清淀粉酶和脂肪酶水平均降低。此外,胰腺组织中的丙二醛(MDA)水平显著降低,谷胱甘肽的耗竭得到了相当程度的恢复。通过降低 caspase-3 水平,显著改善了胰腺组织的损伤和细胞凋亡。此外,CA-NPs 减轻胰腺氧化损伤伴随着 NLRP3、NF-κB 和 ASK1/MAPK 信号通路的下调。综上所述,这些发现表明,肉桂酸纳米粒子不仅通过其抗氧化、抗炎作用,而且通过调节与急性胰腺炎严重程度相关的氧化还原敏感信号转导通路,可保护胰腺腺泡细胞免受损伤。因此,肉桂酸纳米粒子具有治疗急性胰腺炎的潜力。