PO.TB04.06 · 肿瘤生物学
一个全面的基于CRISPR/Cas9的RAS敲入细胞系平台(50余种模型),用于评估KRAS靶向抑制剂在RAS突变型恶性肿瘤中的疗效
A comprehensive CRISPR/Cas9-based RAS knock-in cell line platform (50+ models) for assessing efficacy of KRAS-targeted inhibitors in RAS-mutant malignancies.
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摘要 Abstract
中文摘要
大鼠肉瘤基因(RAS)是人类首个被发现的原癌基因。其产物RAS蛋白是一种具有内在鸟苷三磷酸酶(GTPase)活性的小分子鸟嘌呤核苷酸结合蛋白。目前,RAS家族已知有三种亚型:KRAS、NRAS和HRAS。RAS是MAPK通路的关键介质。活化的RAS蛋白结合GTP,而失活的RAS蛋白结合GDP;因此,RAS蛋白的功能主要取决于其GTP/GDP比率。RAS蛋白的错义突变改变了GDP/GTP稳态,并通过减少GTP水解(G12、Q61)、提高GTP负载率(G13、K117)或影响核苷酸交换(A146),导致信号通路的持续激活。这种失控的信号传导促进了不受调控的细胞增殖,并最终导致癌变。RAS突变最常发生于KRAS亚型(>80%),其次为NRAS和HRAS。值得注意的是,KRAS突变见于97.7%的胰腺导管腺癌。在结直肠腺癌、多发性骨髓瘤、肺腺癌和皮肤黑色素瘤中,RAS突变的总体患病率分别为52.2%、42.6%、32.2%和29.4%。数十年来,RAS一直被公认为一个"不可成药"的靶点,给药物开发带来了巨大挑战。AMG510(sotorasib)的获批打破了这一壁垒,证明直接靶向RAS是可以实现的。此后,RAS靶向治疗领域取得了显著进展,使"不可成药"的标签成为过去。随着理解的深入,靶向RAS有望推动癌症治疗的下一波突破。利用CRISPR/Cas9技术,我们开发了50余种携带KRAS和NRAS突变的敲入细胞系模型,用于评估KRAS靶向抑制剂。这些模型包括G12C、G12D和G12V等常见突变,以及各种双突变和三突变组合。这一RAS敲入突变体细胞系平台是开发和评估新一代RAS抑制剂的强大工具。
查看英文原文 English abstract
The rat sarcoma gene (RAS) was the first discovered human proto-oncogene. Its product, the RAS protein, is a small guanine nucleotide-binding protein with intrinsic guanosine triphosphatase (GTPase) activity. Currently, three subtypes are known in the RAS family: KRAS, NRAS, and HRAS.RAS is a key mediator of the MAPK pathway. Activated RAS proteins bind GTP, while inactivated RAS proteins bind GDP; thus, the function of RAS proteins primarily depends on their GTP/GDP ratio. Missense mutations in the RAS protein alter the GDP/GTP homeostasis and lead to sustained activation of signaling pathways by reducing GTP hydrolysis (G12, Q61), increasing GTP loading rates (G13, K117), or affecting nucleotide exchange (A146). This uncontrolled signaling promotes unregulated cell proliferation and ultimately leads to carcinogenesis. RAS mutations occur most frequently in the KRAS subtype (>80%), followed by NRAS and HRAS. Notably, KRAS mutations are found in 97.7% of pancreatic ductal adenocarcinomas. In colorectal adenocarcinoma, multiple myeloma, lung adenocarcinoma, and cutaneous melanoma, the overall prevalence of RAS mutations is 52.2%, 42.6%, 32.2%, and 29.4%, respectively.For decades, RAS was notoriously considered an "undruggable" target, posing significant challenges for drug development. The approval of AMG510 (sotorasib) broke this barrier, proving that direct targeting of RAS is achievable. Since then, the field of RAS-targeted therapy has advanced remarkably, moving the "undruggable" label into the past. With deepening understanding, targeting RAS is poised to drive the next wave of breakthroughs in cancer treatment.Using CRISPR/Cas9 technology, we have developed over 50 knock-in cell line models with KRAS and NRAS mutations for evaluating KRAS-targeted inhibitors. These include common mutations such as G12C, G12D, and G12V, as well as various double and triple mutation combinations. This Ras knock-in mutant cell line platform stands as a powerful tool for developing and evaluating the next generation of RAS inhibitors.
利益披露 Disclosure
L. Zhou,
Kyinno Biotechnology Co., LTD Employment.
G. Wang,
Kyinno Biotechnology Co., LTD Employment.
T. Lv,
Kyinno Biotechnology Co., LTD Employment.
Z. Su,
Kyinno Biotechnology Co., LTD Employment.
Y. Huang,
Kyinno Biotechnology Co., LTD Employment.
J. Ning,
Kyinno Biotechnology Co., LTD Employment.
F. Hao,
Kyinno Biotechnology Co., LTD Employment.