PO.ET04.01 · 实验与分子治疗
靶向Warburg效应的核酸疗法临床前研究
Preclinical study of nucleic acid therapeutics targeting the Warburg effect
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
[背景]癌细胞依赖糖酵解供能,即Warburg效应,该效应通过促进核苷酸合成、减少氧化应激和抑制细胞死亡来支持细胞存活。
多聚嘧啶序列结合蛋白1(PTBP1)调控丙酮酸激酶肌肉型(PKM1/PKM2)剪接,维持PKM2主导状态。抑制PTBP1可使细胞代谢转向PKM1主导状态,减少糖酵解,改变ATP生成,并增加氧化应激,最终导致细胞死亡。
我们开发了经优化的化学修饰siR-PTBP1衍生物,以评估其治疗潜力。
[方法]通过化学修饰的siR-PTBP1衍生物检测其对人结直肠癌DLD-1细胞的抗增殖活性。通过CVS法评估细胞活力,并在转染后通过Western blot和免疫染色分析PTBP1、PKM1/PKM2和裂解型PARP的蛋白水平。进行ATP生成和氧化应激检测,以考察从糖酵解主导向经TCA循环的氧化磷酸化的转变。同时进行了代谢组学分析。
[结果]在14种衍生物中,衍生物siR-2-6显著抑制PTBP1,增加PKM1表达,并提高PKM1/PKM2比值。裂解型PARP表达增加表明凋亡被诱导且Warburg效应被抑制。此外,siR-2-6增加了ATP生成和氧化应激,导致凋亡。与未经化学修饰的siR-2-1相比,siR-2-6在含RNase条件下表现出更高的RNase抗性和生物活性。
[结论]经优化的siR-PTBP1衍生物提高了PKM1/PKM2比值,并使细胞代谢部分从依赖糖酵解转向氧化磷酸化,凸显了其作为核酸疗法的潜力。
siR-2-6增强的RNase抗性进一步支持了其在体内应用和临床转化方面的前景。
查看英文原文 English abstract
[Background] Cancer cells rely on glycolysis for energy, known as the Warburg effect, which supports survival by promoting nucleotide synthesis, reducing oxidative stress, and inhibiting cell death.
Polypyrimidine tract-binding protein 1 (PTBP1) regulates pyruvate kinase muscle (PKM1/PKM2) splicing, maintaining a PKM2-dominant state. Suppressing PTBP1 shifts cellular metabolism to a PKM1-dominant state, reduces glycolysis, alters ATP production, and increases oxidative stress, ultimately resulting in cell death.
We developed optimized chemically modified siR-PTBP1 derivatives to evaluate their therapeutic potential.
[Methods] Anti-proliferative activity in human colorectal DLD-1 cells was tested by chemically modified siR-PTBP1 derivatives. Cell viability was assessed by CVS assay, and PTBP1, PKM1/PKM2, and cleaved PARP protein levels were analyzed by Western blotting and immunostaining after the transfection. ATP production and oxidative stress assay were performed to examine the alternation from glycolysis-dominant to oxidative phosphorylation via TCA cycle. Metabolome analysis was also examined.
[Results] Among 14 derivatives, the derivative siR-2-6 significantly suppressed PTBP1, increased PKM1 expression, and raised the PKM1/PKM2 ratio. Increased cleaved PARP expression indicated apoptosis induction and Warburg effect suppression. Also, siR-2-6 increased ATP production and oxidative stress, resulting in apoptosis. The higher RNase resistance and biological activity under RNase-containing conditions were shown in comparison to those of the SiR-2-1 that is not chemically modified.
[Conclusion] Optimized siR-PTBP1 derivatives increased the PKM1/PKM2 ratio and partially shifted cellular metabolism from glycolysis dependence to oxidative phosphorylation, highlighting their potential as nucleic acid therapeutics.
The enhanced RNase resistance of siR-2-6 further supports its promise for in vivo application and clinical translation.
利益披露 Disclosure
K. Matsumoto, None..
H. Hayashi, None..
S. Fujibayashi, None..
N. Mitsui, None..
T. Horaguchi, None..
Y. Hatanaka, None..
R. Yokoi, None..
A. Yokoyama, None..
C. Mizutani, None..
M. Kuno, None..
M. Fukada, None..
R. Asai, None..
I. Yasufuku, None..
Y. Sato, None..
J. Tajima, None..
Y. Tanaka, None.