PO.CL06.02 · 临床研究

靶向高危骨肉瘤:MYC调控改变转移

Targeting high risk osteosarcoma: MYC modulation alters metastasis

海报缩略图:靶向高危骨肉瘤:MYC调控改变转移
编号 1151 展板 4 时间 4/19 02:00–05:00 区域 Section 45 主讲 Emily Seiden, BS;PhD
分会场 Mechanistic Insights for Targeted Therapies in Pediatric Cancer
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作者与单位 Authors & Affiliations

Emily Seiden1, Scott Sauer2, Emma Hiscock1, Nha Nhu Le1, Ainsley Hellens1, Monica Inda1, Andrew Fuller1, Sridhar M. Veluvolu3, Rachael Hinshaw1, Zachary P. Tolstyka1, Elissa Levine1, Rashmi Chugh1, Theodore W. Laetsch3, Nouri Neamati4, Heather Wilson-Robles5, Chand Khanna6, David Warshawsky2, Patrick J. Grohar1

1University of Michigan Medical School, Ann Arbor, MI,2Healx USA, Inc, Hoboken, NJ,3Children's Hospital of Philadelphia, Philadelphia, PA,4Univ. of Michigan College of Pharmacy, Ann Arbor, MI,5Ethos Discovery, Washington D.C, DC,6Ethos Discovery, Washington D.C., DC

摘要 Abstract

中文摘要
骨肉瘤(OS)是一种影响人类和犬类患者的骨肿瘤。标准治疗为新辅助化疗和手术,使局限性疾病患者的5年生存率约为70%。然而,转移性疾病和复发性疾病患者的5年总生存率低于30%。因此,迫切需要改进疗法并更好地理解高危疾病的生物学基础。已知一部分结局特别差的患者存在MYC的拷贝数扩增。然而,尚不清楚MYC是否通过驱动转移进展或耐药来促成高危表型。重要的是,已描述有20种化合物作为MYC抑制剂,可干扰MYC驱动转录的不同步骤。在本报告中,我们发现MYC驱动细胞迁移和增殖,但似乎不促成OS细胞的耐药。更确切地说,沉默MYC逆转了OS细胞迁移和增殖的转移表型。此外,MYC下游靶点在转移进展中发挥重要作用。在5种不同细胞系中沉默MYC揭示了45个共同的被诱导靶点,其中许多已知可调节转移级联的不同步骤。我们采用一种旨在捕获既能调节MYC活性又能调节转移表型的化合物的方法,筛选了此前显示可干扰MYC转录的全部20种化合物。14种化合物在4种不同OS模型中调节了MYC和/或下游靶点的表达。其中,10种化合物在2D和3D实验中对细胞活力均有深远影响。这其中5种在3D相对于2D中显示出选择性毒性;这是一种与转移进展相关的表型。重要的是,并非所有调节MYC的化合物都对迁移或转移性组织化和增殖显示出治疗上有利的效果,其中至少2种化合物尽管抑制了MYC的表达,却驱动了迁移的显著增加。尽管如此,2种化合物samuraciclib和THZ531阻断了MYC表达、下游靶点表达、细胞迁移、转移性组织化和增殖。我们使用体内/离体肺转移实验(PuMA)证实了这些结果,并显示了转移能力的逆转和转移性增殖的完全逆转。我们现正致力于将CUT&Tag与BRUseq(一种新生转录的检测方法)整合,以确定调节MYC转录的不同步骤是否如我们所假设的那样驱动多样的细胞表型。尽管如此,筛选中的最佳命中化合物samuraciclib令人信服地逆转了MYC活性及相关转移表型,目前正在转移性OS小鼠模型中接受进一步测试,一项犬类临床试验也正在开发中。将采用空间转录组学等相关生物学方法来指导samuraciclib向高危骨肉瘤患者的转化。
查看英文原文 English abstract
Osteosarcoma (OS) is a bone tumor that affects human and canine patients. Standard of care is neoadjuvant chemotherapy and surgery resulting in a 5 year survival rate for patients with localized disease of ~70%. However, patients with metastatic disease and relapsed disease have a 5 year overall survival of less than 30%. Therefore, there is a critical need for improved therapies and a better understanding of the biological underpinnings of high risk disease. A subset of patients with particularly poor outcomes are known to have copy number amplification of MYC. However, it is not known if MYC contributes to the high risk phenotype by driving metastatic progression or drug resistance. Importantly, 20 compounds have been described as MYC inhibitors and perturb different steps of MYC driven transcription. In this report, we found that MYC drives cell migration and outgrowth but does not appear to contribute to drug resistance in OS cells. More precisely, MYC silencing reversed the metastatic phenotypes of migration and outgrowth of OS cells. Further, MYC downstream targets play an important role in metastatic progression. Silencing of MYC in 5 different cell lines revealed 45 common induced targets, many of which are known to modulate different steps in the metastatic cascade. We screened all 20 compounds previously shown to interfere with MYC transcription using an approach designed to capture the compound that modulates both MYC activity and the metastatic phenotype. Fourteen compounds modulated expression of MYC and/or downstream targets in 4 different OS models. Of those,10 compounds had a profound impact in cell viability in both 2D and 3D assays. Five of these showed selective toxicity in 3D relative to 2D; a phenotype linked to metastatic progression. Importantly, not all compounds that modulated MYC showed therapeutically favorable effects on migration or metastatic organization and outgrowth with at least 2 compounds driving a dramatic increase in migration despite suppressing expression of MYC. Nevertheless, 2 compounds, samuraciclib and THZ531, blocked MYC expression, downstream target expression, cell migration, metastatic organization and outgrowth. We confirmed these results and showed reversal of metastatic competence and complete reversal of metastatic outgrowth using the in vivo/ex vivo pulmonary metastasis assay (PuMA). We are now working to integrate CUT&Tag with BRUseq, an assay of nascent transcription, to determine if modulation of different steps in MYC transcription drives diverse cellular phenotypes as we hypothesized. Nevertheless, the top hit of the screen, samuraciclib, convincingly reverses MYC activity and the associated metastatic phenotype and is undergoing additional testing in metastatic OS mouse models and a canine clinical trial is under development. Correlative biology such as spatial transcriptomics will be used to guide the translation of samuraciclib to patients with high risk osteosarcoma.
利益披露 Disclosure
E. Seiden, None. S. Sauer, Healx USA, Inc Employment. E. Hiscock, None.. N. Le, None.. A. Hellens, None.. M. Inda, None.. A. Fuller, None.. S. M. Veluvolu, None.. R. Hinshaw, None.. E. Levine, None. R. Chugh, GSK ). Cogent Biosciences ). InhibRx ). PTC Therapeutics ). Kronos Bio ). Astex Pharmaceuticals ). Polaris ). PharmaMar ). Immunome ). Kura Oncology ). Novel Nobility ). Wolters Kluwer Patent, Other Intellectual Property. Reminder Co, LPA Other, Expert Testimony. T. W. Laetsch, Advanced Microbubbles Other, Advisory Board. AI Therapeutics Other, Advisory Board. Bayer ), Other, Advisory Board. GSK Other, Advisory Board. Jazz Pharmaceuticals Other, Advisory Board. Pfizer ). Eli Lilly ). Exelixis ). H. Wilson-Robles, Ethos Discovery Employment. C. Khanna, Ethos Discovery Employment. D. Warshawsky, Healx USA, Inc Employment. P. J. Grohar, Orphai Stock Option, ), Other Intellectual Property. PharmaMar Travel, Other, Advisory Board. Jazz Pharmaceuticals Other, Advisory Board.

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