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首页> 外文期刊>Oxidative Medicine and Cellular Longevity >Astrocyte-Targeted Transporter-Utilizing Derivatives of Ferulic Acid Can Have Multifunctional Effects Ameliorating Inflammation and Oxidative Stress in the Brain
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Astrocyte-Targeted Transporter-Utilizing Derivatives of Ferulic Acid Can Have Multifunctional Effects Ameliorating Inflammation and Oxidative Stress in the Brain

机译:靶向阿魏酸的靶向转运衍生物可以具有改善炎症和脑内氧化应激的多功能效应

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Ferulic acid (FA) is a natural phenolic antioxidant, which can exert also several other beneficial effects to combat neuroinflammation and neurodegenerative diseases, such as Alzheimer’s disease. One of these properties is the inhibition of several enzymes and factors, such as β-site amyloid precursor protein (APP) cleaving enzyme 1 (BACE1), cyclooxygenases (COXs), lipoxygenases (LOXs), mammalian (or mechanistic) target for rapamycin (mTOR), and transcription factor NF-κB. We have previously synthesized three L-type amino acid transporter 1- (LAT1-) utilizing FA-derivatives with the aim to develop brain-targeted prodrugs of FA. In the present study, the cellular uptake and bioavailability of these FA-derivatives were evaluated in mouse primary astrocytic cell cultures together with their inhibitory effects towards BACE1, COX/LOX, mTOR, NF-κB, acetylcholinesterase (AChE), and oxidative stress. According to the results, all three FA-derivatives were taken up 200–600 times more effectively at 10?μM concentration into the astrocytes than FA, with one derivative having a high intracellular bioavailability (Kp,uu), particularly at low concentrations. Moreover, all of the derivatives were able to inhibit BACE1, COX/LOX, AChE, and oxidative stress measured as decreased cellular lipid peroxidation. Furthermore, one of the derivatives modified the total mTOR amount. Therefore, these derivatives have the potential to act as multifunctional compounds preventing β-amyloid accumulation as well as combating inflammation and reducing oxidative stress in the brain. Thus, this study shows that converting a parent drug into a transporter-utilizing derivative not only may increase its brain and cellular uptake, and bioavailability but can also broaden the spectrum of pharmacological effects elicited by the derivative.
机译:阿魏酸(Fa)是天然酚醛抗氧化剂,其也可以发挥几种对抗神经炎症和神经变性疾病的其他有益效果,例如阿尔茨海默病。其中一种特性是抑制几种酶和因子,例如β-位点淀粉样蛋白前体蛋白(APP)切割酶1(BACE1),雷帕霉素的脂氧基酶(LOX),乳腺酶(或机械)靶标( MTOR)和转录因子NF-κB。我们以前合成了三种L型氨基酸转运蛋白1-(LAT1-)利用FA-衍生物,其目的是发展FA的脑靶向前药。在本研究中,将这些FA-衍生物的细胞摄取和生物利用度与其对Bace1,Cox / LOX,MTOR,NF-κB,乙酰胆碱酯酶(ACHE)和氧化应激的抑制作用进行评估。根据结果​​,所有三种FA-衍生物在10≤μm浓度上比FA更有效地占用200-600倍,比FA具有高细胞内生物利用度(KP,UU)的一种衍生物,特别是在低浓度下。此外,所有衍生物都能够抑制像细胞脂质过氧化的降低的降低测量的Bace1,Cox / Lox,疼痛和氧化应激。此外,其中一种衍生物修改了总MTOR量。因此,这些衍生物具有阻止β-淀粉样蛋白积聚的多官能化合物以及对抗脑内肿胀和降低氧化胁迫的潜力。因此,该研究表明,将母体药物转化为使用衍生物的转运衍生物,不仅可以增加其脑和细胞吸收,而且还可以扩大衍生物引发的药理学效应的光谱。

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