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:D-mannose facilitates immunotherapy and radiotherapy of triple-negative breast cancer via degradation of PD-L1.
D-mannose facilitates immunotherapy and radiotherapy of triple-negative breast cancer via degradation of PD-L1.
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乳腺癌是全球女性中最常见的恶性肿瘤,其中三阴性乳腺癌(TNBC)患者预后最差、复发风险最高。TNBC的治疗策略有限,亟需开发新方法以提高TNBC的治疗效果。既往研究表明,D-甘露糖(一种己糖)能够增强癌症的化疗效果,并抑制自身免疫性疾病的免疫病理。
本研究显示,D-甘露糖可通过降解PD-L1显著促进TNBC的治疗。具体而言,D-甘露糖可激活AMP激活的蛋白激酶(AMPK),使PD-L1在S195位点发生磷酸化,从而导致PD-L1异常糖基化并经蛋白酶体降解。D-甘露糖介导的PD-L1降解可促进T细胞活化及T细胞对肿瘤细胞的杀伤。D-甘露糖与PD-1阻断疗法联合可显著抑制TNBC生长,并延长荷瘤小鼠的生存期。
此外,D-甘露糖诱导的PD-L1降解还会导致DNA损伤修复相关基因的信使RNA不稳定,从而使乳腺癌细胞对电离辐射(IR)治疗增敏,并促进小鼠TNBC的放疗效果。
值得注意的是,D-甘露糖的有效水平可通过小鼠口服给药轻松达到。本研究揭示了D-甘露糖靶向PD-L1进行降解的机制,并提供了促进TNBC免疫治疗和放疗的方法。D-甘露糖的这一功能可能对TNBC的临床治疗具有应用价值。
Breast cancer is the most frequent malignancy in women worldwide, and triple-negative breast cancer (TNBC) patients have the worst prognosis and highest risk of recurrence. The therapeutic strategies for TNBC are limited. It is urgent to develop new methods to enhance the efficacy of TNBC treatment. Previous studies demonstrated that D-mannose, a hexose, can enhance chemotherapy in cancer and suppress the immunopathology of autoimmune diseases.
Here, we show that D-mannose can significantly facilitate TNBC treatment via degradation of PD-L1. Specifically, D-mannose can activate AMP-activated protein kinase (AMPK) to phosphorylate PD-L1 at S195, which leads to abnormal glycosylation and proteasomal degradation of PD-L1. D-mannose-mediated PD-L1 degradation promotes T cell activation and T cell killing of tumor cells. The combination of D-mannose and PD-1 blockade therapy dramatically inhibits TNBC growth and extends the lifespan of tumor-bearing mice.
Moreover, D-mannose-induced PD-L1 degradation also results in messenger RNA destabilization of DNA damage repair-related genes, thereby sensitizing breast cancer cells to ionizing radiation (IR) treatment and facilitating radiotherapy of TNBC in mice. Of note, the effective level of D-mannose can be easily achieved by oral administration in mice.
Our study unveils a mechanism by which D-mannose targets PD-L1 for degradation and provides methods to facilitate immunotherapy and radiotherapy in TNBC. This function of D-mannose may be useful for clinical treatment of TNBC.
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