基于 DNA 超分子水凝胶的保护性 NK 细胞储库用于增强三阴性乳腺癌治疗
Protective NK Cell Reservoir Based on DNA Supramolecular Hydrogel for Enhanced Triple-Negative Breast Cancer Therapy.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Estrogen receptor blockade and radiation therapy cooperate to enhance the response of immunologically cold ER+ breast cancer to immunotherapy.
Estrogen receptor blockade and radiation therapy cooperate to enhance the response of immunologically cold ER+ breast cancer to immunotherapy.
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RT 与 fulvestrant 联合可在 ER+乳腺癌临床前模型中克服免疫抑制性 TME,增强抗肿瘤反应并提高对 ICIs 的应答,即使在肿瘤细胞生长不再依赖雌激素时亦然。
大多数ER+乳腺癌患者对免疫检查点抑制(ICI)无应答;这些肿瘤的肿瘤微环境(TME)通常具有免疫抑制性,且含有少量TIL(肿瘤浸润淋巴细胞)。放射治疗(RT)可增加肿瘤炎症和淋巴细胞浸润,但并未改善这些患者对ICI的应答。这可能部分源于RT抑制抗肿瘤免疫的额外效应,包括髓源性抑制细胞和调节性T细胞向肿瘤的浸润增加。我们假设,作为ER+乳腺癌标准治疗药物的抗雌激素,可能通过减少受照射TME中抑制性免疫群体的募集/活化,增强抗肿瘤免疫和对ICI的应答,从而改善RT的这些不利效应。
为了探究选择性雌激素受体下调剂氟维司群在无氟维司群对肿瘤细胞的混杂性生长抑制的情况下对受照射TME的影响,我们使用了抗雌激素耐药ER+乳腺癌的TC11小鼠模型。将肿瘤原位移植到具有免疫能力的同基因小鼠体内。一旦肿瘤建立,我们开始使用氟维司群或溶媒治疗,一周后接着进行外照射RT。我们使用流式细胞术、显微镜、转录水平和细胞因子谱检测了肿瘤浸润免疫细胞的数量和活性。我们测试了在RT和ICI联合治疗中加入氟维司群是否能改善肿瘤反应和动物生存。
尽管TC11肿瘤对单独抗雌激素治疗具有耐药性,但fulvestrant在RT后减缓了肿瘤再生长,并显著改变了受照射TME中的多个免疫群体。Fulvestrant减少了Ly6C+Ly6G+细胞的流入,增加了促炎性髓系细胞和活化T细胞的标志物,并提高了CD8+: FOXP3+ T细胞的比例。与ICI分别与fulvestrant或RT单独联合治疗时的微小效果相比,fulvestrant、RT和ICI的联合治疗显著减少了肿瘤生长并延长了生存期。
Most patients with estrogen receptor positive (ER+) breast cancer do not respond to immune checkpoint inhibition (ICI); the tumor microenvironment (TME) of these cancers is generally immunosuppressive and contains few tumor-infiltrating lymphocytes. Radiation therapy (RT) can increase tumor inflammation and infiltration by lymphocytes but does not improve responses to ICIs in these patients. This may result, in part, from additional effects of RT that suppress anti-tumor immunity, including increased tumor infiltration by myeloid-derived suppressor cells and regulatory T cells. We hypothesized that anti-estrogens, which are a standard of care for ER+ breast cancer, may ameliorate these detrimental effects of RT by reducing the recruitment/ activation of suppressive immune populations in the radiated TME, increasing anti-tumor immunity and responsiveness to ICIs.
To interrogate the effect of the selective estrogen receptor downregulator, fulvestrant, on the irradiated TME in the absence of confounding growth inhibition by fulvestrant on tumor cells, we used the TC11 murine model of anti-estrogen resistant ER+ breast cancer. Tumors were orthotopically transplanted into immunocompetent syngeneic mice. Once tumors were established, we initiated treatment with fulvestrant or vehicle, followed by external beam RT one week later. We examined the number and activity of tumor infiltrating immune cells using flow cytometry, microscopy, transcript levels, and cytokine profiles. We tested whether fulvestrant improved tumor response and animal survival when added to the combination of RT and ICI.
Despite resistance of TC11 tumors to anti-estrogen therapy alone, fulvestrant slowed tumor regrowth following RT, and significantly altered multiple immune populations in the irradiated TME. Fulvestrant reduced the influx of Ly6C+Ly6G+ cells, increased markers of pro-inflammatory myeloid cells and activated T cells, and augmented the ratio of CD8+: FOXP3+ T cells. In contrast to the minimal effects of ICIs when co-treated with either fulvestrant or RT alone, combinatorial treatment with fulvestrant, RT and ICIs significantly reduced tumor growth and prolonged survival.
A combination of RT and fulvestrant can overcome the immunosuppressive TME in a preclinical model of ER+ breast cancer, enhancing the anti-tumor response and increasing the response to ICIs, even when growth of tumor cells is no longer estrogen sensitive.
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