PO.MCB09.02 · 分子与细胞生物学

线粒体肌酸激酶促进肝细胞癌进展

Mitochondrial creatine kinase promotes hepatocellular carcinoma progression

海报缩略图:线粒体肌酸激酶促进肝细胞癌进展
编号 7334 展板 20 时间 4/22 09:00–12:00 区域 Section 23 主讲 Lobna Elkhadragy, BS;MS;PhD
分会场 Metabolic Vulnerabilities in Pancreatic, Hepatic, and Renal Cancers
查看 PDF 下载 PDF 🔒 查看 / 下载完整 PDF 需登录并开通下载套餐 · 查看套餐 / 开通 AACR 官方页面

作者与单位 Authors & Affiliations

Nusrat Israr Khan, Luke Jordan, Olayinka David, Shreya Pattisapu, Kyle Schachtschneider, Kejia Cai, Ron Gaba, Lobna Elkhadragy

Radiology, University of Illinois at Chicago, Chicago, IL

摘要 Abstract

中文摘要
背景:肝细胞癌(HCC)是最常见的肝癌类型,是一种侵袭性恶性肿瘤,治疗选择有限、预后不良,凸显了寻找新型治疗靶点的必要性。越来越多的证据表明,肌酸代谢失调参与了HCC的发病机制。血清肌酸水平与HCC进展呈负相关,由CKMT1编码的线粒体肌酸激酶(MtCK)已被确定为一种潜在的诊断生物标志物。MtCK催化磷酸基团从ATP可逆地转移至肌酸,生成磷酸肌酸——一种支持细胞生物能量学的关键能量缓冲物质。然而,CKMT1在HCC进展中的功能作用仍知之甚少。 方法:我们利用人源(Hep3B)和猪源(Oncopig A272)HCC细胞研究了CKMT1在HCC进展中的作用。通过慢病毒转导人CKMT1并进行抗生素筛选实现CKMT1过表达,通过CRISPR/Cas9及单细胞克隆分离生成CKMT1敲除(KO)克隆。采用Western blot验证CKMT1表达的改变。分别通过MTS法和划痕愈合实验评估细胞增殖和迁移。采用比色法定量细胞内肌酸水平,并通过皮下注射至SCID小鼠双侧胁部(n=6只/组)评估体内肿瘤生长。 结果:CKMT1过表达显著降低了细胞内肌酸水平,并增加了Hep3B细胞的增殖和迁移。与Hep3b相比,A272细胞具有较高的内源性CKMT1表达,过表达后其增殖或迁移未见进一步增加。相反,A272 CKMT1 KO克隆表现出细胞内肌酸水平显著升高、增殖和迁移减少。在体内,来源于CKMT1过表达A272细胞的异种移植瘤与亲本对照相比表现出显著增加的肿瘤生长速率(p < 0.001),而CKMT1 KO肿瘤的生长速率与亲本细胞系相当。 结论:这些发现确定CKMT1为HCC进展的促进因子,将肌酸代谢改变与HCC生长相联系。靶向线粒体肌酸激酶或其代谢网络可能代表一种有前景的治疗策略。正在进行的研究聚焦于开发肌酸代谢受调控的猪源HCC模型,以在生理相关的大型动物模型中实现整合的代谢和分子成像方法,从而改善诊断、风险分层和治疗监测。
查看英文原文 English abstract
Background: Hepatocellular carcinoma (HCC), the most common type of liver cancer, is an aggressive malignancy with limited therapeutic options and poor prognosis, underscoring the need for novel therapeutic targets. Emerging evidence implicates dysregulated creatine metabolism in HCC pathogenesis. Serum creatine levels inversely correlate with HCC progression and mitochondrial creatine kinase (MtCK), encoded by CKMT1 , has been identified as a potential diagnostic biomarker. MtCK catalyzes the reversible transfer of a phosphate group from ATP to creatine to generate phosphocreatine, a key energy buffer that supports cellular bioenergetics. However, the functional role of CKMT1 in HCC progression remains poorly understood. Methods: We investigated the role of CKMT1 in HCC progression using both human (Hep3B) and porcine (Oncopig A272) HCC cells. CKMT1 overexpression was achieved by lentiviral transduction of human CKMT1 followed by antibiotic selection, and CKMT1 knockout (KO) clones were generated by CRISPR/Cas9 and single-cell clone isolation. Altered CKMT1 expression was confirmed by Western blotting. Cell proliferation and migration were assessed by MTS and wound-healing assays, respectively. Intracellular creatine levels were quantified using colorimetric method, and in vivo tumor growth was evaluated by subcutaneous injection into both flanks of SCID mice (n=6 mice/group). Results: CKMT1 overexpression significantly decreased intracellular creatine levels and increased Hep3B cell proliferation and migration. A272 cells, which exhibit higher endogenous CKMT1 expression compared to Hep3b, did not show further increase in proliferation or migration upon overexpression. Conversely, A272 CKMT1 KO clones exhibited significantly elevated intracellular creatine levels and reduced proliferation and migration. In vivo , xenografts derived from CKMT1 -overexpressing A272 cells exhibited significantly increased tumor growth rate compared to parental controls (p < 0.001), whereas CKMT1 KO tumors grew at rates comparable to the parental line. Conclusions: These findings identify CKMT1 as a promoter of HCC progression, linking altered creatine metabolism to HCC growth. Targeting mitochondrial creatine kinase or its metabolic network may represent a promising therapeutic strategy. Ongoing studies focus on developing porcine HCC models with modulated creatine metabolism to enable integrated metabolic and molecular imaging approaches for improved diagnosis, risk stratification, and treatment monitoring in a physiologically relevant large-animal model.
利益披露 Disclosure
N. I. Khan, None.. L. Jordan, None.. O. David, None.. S. Pattisapu, None.. K. Schachtschneider, None.. K. Cai, None.. R. Gaba, None.. L. Elkhadragy, None.

← 返回 AACR 2026 检索