PO.MCB06.04 · 分子与细胞生物学
FOXA1改变通过乳腺癌中独特的转录和表观基因组程序驱动内分泌治疗耐药
FOXA1 alterations drive endocrine therapy resistance through unique transcriptional and epigenomic programs in breast cancer
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
乳腺癌在组织学上分为浸润性导管癌(IDC,约占70-80%的病例)和浸润性小叶癌(ILC,10-15%)。两者主要为雌激素受体阳性(ER+)并接受内分泌治疗,然而耐药不可避免地发生,从而驱动转移和不良预后。与分期匹配的IDC相比,ILC表现出标志性的E-cadherin缺失、独特的转移模式以及降低的内分泌治疗反应。然而,治疗在不同组织学类型间仍然一致,凸显了明确耐药的共有和亚型特异性驱动因素的必要性。对>8,500例MSK-IMPACT肿瘤的临床基因组分析揭示了ER+疾病中反复出现的FOXA1突变,其在ILC中富集(8% 对 IDC中的4%)。作为一种许可ER染色质结合的先锋转录因子,FOXA1改变可能重塑ER信号以促进治疗耐药。为研究这一点,我们对IDC(MCF7、T47D)中反复出现的FOXA1 Helix 1(H1)、Wing2(W2)和β-strand3(S3)突变,以及ILC(MDA-MB-134VI)中的H1、W2变异进行了功能表征。我们评估了雌激素剥夺、氟维司群(fulvestrant)或口服SERD ± CDK4/6i条件下的治疗反应,并使用RNA-seq、ER CUT&RUN、ATAC-seq和qPLEX-RIME对转录和染色质变化进行了图谱分析。在两种组织学类型中,FOXA1突变在模拟AI治疗的雌激素剥夺条件下赋予了选择性生长优势,同时保留了对SERD以及SERD+CDK4/6i的敏感性。在机制上,H1突变体在IDC和ILC中均为超态型(hypermorphic),增加ER招募和染色质可及性以强化经典的雌激素反应程序。W2变异表现出组织学特异性后果:在IDC中它们增加ER染色质结合但不具备先锋活性,与增强的EP300/NCOA3共激活因子结合一致;而在ILC中它们也增加了可及性,显示出谱系限制性的先锋功能。导管特异性的S3突变体为新态型(neomorphic),将FOXA1重新导向到一个替代的DNA基序,重编程可及性,并激活增殖、代谢和内分泌耐药基因网络。相互作用组图谱分析支持了干性相关染色质重塑网络的富集。总之,这些发现表明反复出现的FOXA1突变建立了机制上不同的致癌类别,促进ER+乳腺癌的内分泌耐药,且其分布因组织学类型而异。ILC富集了增强先锋活性和染色质开放的超态型H1和W2变异,而IDC则携带缺乏先锋活性的W2突变体和重连染色质的新态型S3变异。这些洞察支持将FOXA1突变状态作为芳香化酶抑制剂耐药的生物标志物,并凸显了针对组织学类型定制治疗策略的必要性。
查看英文原文 English abstract
Breast cancer is histologically classified into invasive ductal carcinoma (IDC, ~70-80% of cases) and invasive lobular carcinoma (ILC, 10-15%). Both are predominantly estrogen receptor-positive (ER+) and treated with endocrine therapy, yet resistance inevitably develops, driving metastasis and poor outcomes. ILC exhibits hallmark E-cadherin loss, distinct metastatic patterns, and reduced endocrine therapy response compared with stage-matched IDC. However, treatment remains uniform across histologies, underscoring the need to define shared and subtype-specific drivers of resistance. Clinicogenomic analyses of >8,500 MSK-IMPACT tumors revealed recurrent FOXA1 mutations in ER+ disease, enriched in ILC (8% vs 4% in IDC). As a pioneer transcription factor that licenses ER chromatin binding, FOXA1 alterations may reshape ER signaling to promote therapy resistance. To investigate this, we functionally characterized recurrent FOXA1 Helix 1 (H1), Wing2 (W2), and betastrand3 (S3) mutations in IDC (MCF7, T47D), and H1, W2 variants in ILC (MDA-MB-134VI). We assessed treatment response under estrogen deprivation, fulvestrant or oral SERDs ± CDK4/6i and profiled transcriptional and chromatin changes using RNA-seq, ER CUT&RUN, ATAC-seq, and qPLEX-RIME. Across both histologies, FOXA1 mutations conferred a selective growth advantage under estrogen deprivation modeling AI therapy, while retaining sensitivity to SERDs and SERD+CDK4/6i. Mechanistically, H1 mutants were hypermorphic in IDC and ILC, increasing ER recruitment and chromatin accessibility to strengthen canonical estrogen-responsive programs. W2 variants exhibited histology-specific consequences: in IDC they increased ER chromatin binding without pioneering, consistent with enhanced EP300/NCOA3 co-activator engagement, whereas in ILC they also increased accessibility, displaying lineage-restricted pioneer function. Ductal-specific S3 mutants were neomorphic, redirecting FOXA1 to an alternative DNA motif, reprogramming accessibility, and activating proliferation, metabolic, and endocrine-resistant gene networks. Interactome profiling supported enrichment of stemness-linked chromatin remodeling networks.Together, these findings demonstrate that recurrent FOXA1 mutations establish mechanistically distinct oncogenic classes that promote endocrine resistance in ER+ breast cancer with their distribution differing by histology. ILC is enriched for hypermorphic H1 and W2 variants that enhance pioneering and chromatin opening, whereas IDC harbors W2 mutants lacking pioneer activity and neomorphic S3 variants that rewire chromatin. These insights support FOXA1 mutation status as a biomarker of aromatase inhibitor resistance and highlight the need for histology-tailored therapeutic strategies.
利益披露 Disclosure
S. Kittane, None..
S. Nandakumar, None..
E. Moiso, None..
W. K. Chatila, None..
Y. Gao, None.
E. C. de Bruin,
AstraZeneca Employment.
C. Falato,
AstraZeneca Employment.
J. Li,
AstraZeneca Employment.
H. Ji, None..
N. Schultz, None.
M. Scaltriti,
AstraZeneca Employment.
P. Razavi,
Grail, Novartis, Astrazeneca, Neogenomics, Biothernostics, Tempus, Biovica, Guardant, Personalis, Myriad, Foresight, biodesix, SOPHIA Genetics, SAGA Diagnostics Haystack, Roche ).
Novartis, AstraZeneca, Pfizer, Lilly/Loxo, Prelude Therapeutics, Stemline Therapeutics, Foundation Medicine, RegorPharmaceuticals, Neogenomics, Natera, Tempus Other, Consultant/Ad board/Advisor.
SAGA Diagnostics, Guardant, Myriad, Foresight, SOPHIA Genetics, Pathos AI, BioNTech Other, Consultant/Ad board/Advisor.
E. Toska,
AstraZeneca ).
NCI (K22CA245487, R21CA252530 and R01CA276187) ).