PO.MCB09.05 · 分子与细胞生物学
LKB1缺失促进KRAS突变型肺腺癌中的乳酸利用
Loss of LKB1 promotes lactate utiliaztion in KRAS -mutant lung adenocarcinoma
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摘要 Abstract
中文摘要
由基因STK11编码的肿瘤抑制因子LKB1的功能缺失,在非小细胞肺癌(NSCLC)中约占20%。LKB1常与KRAS共突变,且LKB1缺陷与抗PD1治疗的耐药性相关,但对抗PD1/CTLA4双重检查点阻断仍保持部分响应。我们此前发现LKB1缺失导致肿瘤微环境中乳酸水平升高并抑制抗肿瘤免疫。然而,LKB1缺陷的肿瘤细胞是否直接从富含乳酸的环境中获益仍不清楚。我们假设LKB1缺陷增强乳酸利用并促进恶性表型。我们对经乳酸处理的Kras突变型LKB1充足(K)和缺陷(KL)细胞进行了代谢谱分析。在K和KL细胞中进行了Seahorse实验以体外测量乳酸利用,并在体外和体内进行了同位素示踪。使用来自小鼠同基因肿瘤和临床样本的单细胞RNAseq(scRNAseq)数据,评估了有或无LKB1/STK11改变的KRAS突变型肿瘤中的乳酸代谢评分。我们以乳酸作为碳源处理K和KL细胞并进行代谢谱分析。数据显示改变的代谢物富集于包括TCA循环在内的多条通路。我们观察到KL细胞在乳酸培养时表现出增加的氧化磷酸化(OXPHOS)以及GSH和NADPH水平,提示LKB1缺陷细胞在使用乳酸作为能量来源时具有增强的利用OXPHOS和维持氧化还原稳态的能力。此外,[U-13C]乳酸示踪显示,在KL细胞中同位素异构体显著富集于丙酮酸以及柠檬酸、谷氨酸和苹果酸等TCA组分,表明乳酸更多地掺入TCA循环,这与观察到的OXPHOS升高一致。接下来,我们将K和KL小鼠细胞注射入小鼠以建立同基因肿瘤模型。给动物输注[U-13C]乳酸以检测体内同位素异构体的分布。与K肿瘤相比,KL肿瘤显示出显著增强的乳酸掺入。K和KL肺癌的基因工程小鼠模型同样显示更多的乳酸转化为柠檬酸、琥珀酸和苹果酸。最后,我们分析了输注[U-13C]乳酸的临床样本数据,尽管样本量有限,与KRAS或KRAS/TP53共突变的患者相比,KRAS/STK11共突变的患者显示出TCA循环代谢物标记增加的趋势。此外,来自小鼠肿瘤和临床样本的scRNAseq数据显示KL肿瘤中乳酸代谢评分显著升高。总的来说,我们的数据表明LKB1缺陷肿瘤增加乳酸掺入和利用,提示靶向乳酸代谢可作为针对这一难治性亚组的新型治疗方法。
查看英文原文 English abstract
Loss of function of the tumor suppressor LKB1, which is encoded by the gene STK11 , represents about 20% in non-small cell lung cancer (NSCLC). LKB1 is frequently co-mutated with KRAS , and LKB1-deficiency is associated with resistance to anti-PD1 therapy but remain partial response to anti-PD1/CTLA4 dual checkpoint blockade. We previously found that LKB1 loss led to increased lactate levels in the tumor microenvironment and suppressed anti-tumor immunity. However, whether LKB1-deficient tumor cells directly benefit from the lactate rich environment remains unclear. We hypothesized that LKB1 deficiency enhances lactate utilization and promotes a malignant phenotype. We performed metabolic profiling on Kras mutant LKB1-proficient (K) and -deficient (KL) cells treated with lactate. Seahorse assay was performed in K and KL cells to measure lactate utilization in vitro, and isotope tracing was conducted in vitro and in vivo. Single-cell RNAseq (scRNAseq) data from murine syngeneic tumors and clinical samples were used to assess the lactate metabolism score in KRAS mutant tumors with or without LKB1/ STK11 alterations. We treated K and KL cells with lactate as the carbon source and performed metabolic profiling. The data showed that altered metabolites were enriched in several pathways including TCA cycle. We observed that KL cells showed increased oxidative phosphorylation (OXPHOS) and GSH and NADPH levels when cultured with lactate, suggesting that LKB1-deficient cells had an enhanced ability to utilize OXPHOS and maintain redox homeostasis when using lactate as an energy source. Moreover, [U-13C]lactate tracing revealed that isotopologues were significantly enriched in pyruvate and TCA components such as citrate, glutamate and malate in KL cells, indicating the enhanced lactate incorporation into the TCA cycle, which was consistent with the observed elevated OXPHOS. Next, we injected K and KL murine cells into mice to establish syngeneic tumor models. Animals were infused with [U-13C]lactate to detect the isotopologues distribution in vivo. KL tumors showed significantly enhanced lactate incorporation as compared to K tumors. Genetically engineered mouse models of K and KL lung cancer similarly showed that increased amounts of lactate transformed into citrate, succinate and malate. Finally, we analyzed data from clinical samples infused with [U-13C]lactate, although the sample size was limited, patients with KRAS / STK11 co-mutation showed a trend towards increased labeling of TCA cycle metabolites as compared to patients with KRAS or KRAS / TP53 co-mutation. Additionally, scRNAseq data from murine tumors and clinical samples showed significantly elevated lactate metabolic score in KL tumors. Collectively, our data indicates that LKB1-deficient tumors increase lactate incorporation and utilization, suggesting that targeting lactate metabolism as a novel therapeutic approach for this recalcitrant subgroup.
利益披露 Disclosure
Y. Qian, None..
D. Molkentine, None..
Y. Kong, None..
A. Karimi, None..
Q. Huang, None..
C. Yang, None.
R. J. DeBerardinis,
Vida Ventures Advisor.
Faeth Therapeutics Advisor.
Agios Pharmaceuticals Advisor.
Atavistik Bioscience founder and advisor.
J. V. Heymach,
Genentech Advisory Committees.
Mirati Therapeutics Advisory Committees, research support.
Eli Lilly Advisory Committees.
Janssen Advisory Committees.
Boehringer Ingelheim Advisory Committees, research support.
Regeneron Advisory Committees.
Takeda Advisory Committees, research support.
BerGenBio Advisory Committees.
Novartis Advisory Committees.
AstraZeneca Advisory Committees, research support.
Sanofi Advisory Committees.
GlaxoSmithKline Advisory Committees.
EMD Serono Advisory Committees.
BluePrint Medicine Advisory Committees.
Spectrum Advisory Committees, research support, licensing or royalties.
BioAlta Advisory Committees.
Jazz Advisory Committees.
Curio Science Advisory Committees.
Chugai Advisory Committees.
Bristol Myers Squibb research support.