不适合移植的大 B 细胞淋巴瘤二线使用 axicabtagene ciloleucel:ALYCANTE 最终分析
Second-line axicabtagene ciloleucel in large B-cell lymphoma ineligible for transplantation: ALYCANTE final analysis.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:One-Step Glycoengineering of NK Cells With High-Affinity Siglec Ligands for Cancer Immunotherapy.
One-Step Glycoengineering of NK Cells With High-Affinity Siglec Ligands for Cancer Immunotherapy.
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Siglecs 是一类选择性表达于免疫细胞上的唾液酸(Sia)结合免疫调节受体家族,是有前景的免疫治疗靶点。尽管合成的 Sia 衍生物能以高亲和力调控 Sia-Siglec 轴,但其治疗应用一直受限于野生型 CMP-唾液酸合成酶(CSS)对空间位阻较大的类似物底物耐受性差。
在此,我们报道了一种结构导向的工程化策略,用于进化脑膜炎奈瑟菌 CMP-Sia 合成酶(NmCSS),以增强其对大体积底物的活性。将该优化后的 NmCSS 变体与唾液酸转移酶偶联,可实现多种唾液酸苷类似物的可扩展“一锅双酶”(OPTE)合成。在糖芯片上筛选该文库,发现了具有选择性 Siglec 结合谱的新型高亲和力配体。利用 OPTE 系统,我们实现了对自然杀伤(NK)-92MI 细胞进行单步糖工程化改造,使其携带定制的 Siglec-2 或 Siglec-3 配体,这些细胞对 B 细胞淋巴瘤(Siglec-2+)和急性髓系白血病(Siglec-3+)模型表现出强效细胞毒性。这些工程化 NK 细胞显示出显著增强的肿瘤杀伤能力,其由增强的颗粒酶释放和细胞因子产生所介导,同时保持优异的细胞活力。该模块化平台解决了修饰唾液酸苷酶促合成及其在治疗性细胞上高效展示的关键局限。
我们的工作建立了一个通用且实用的平台,用于开发以更高特异性和功能性精确靶向 Sia-Siglec 轴的下一代免疫疗法。
Siglecs, a family of sialic acid (Sia)-binding immunomodulatory receptors selectively expressed on immune cells, are promising immunotherapeutic targets. While synthetic Sia derivatives can manipulate the Sia-Siglec axis with high affinity, their therapeutic application has been hampered by the poor substrate tolerance of wild-type CMP-sialic acid synthase (CSS) for sterically demanding analogs.
Here, we report a structure-guided engineering strategy to evolve Neisseria meningitidis CMP-Sia synthetase (NmCSS) for enhanced activity with bulky substrates. Coupling this optimized NmCSS variant with a sialyltransferase enabled a scalable "one-pot two-enzyme" (OPTE) synthesis of diverse sialoside analogs. Screening this library on glycan microarrays revealed novel high-affinity ligands with selective Siglec binding profiles.
Leveraging the OPTE system, we achieved single-step glycoengineering of natural killer (NK)-92MI cells with tailored Siglec-2 or Siglec-3 ligands, which exhibited potent cytotoxicity against B-cell lymphoma (Siglec-2 + ) and acute myeloid leukemia (Siglec-3 + ) models.
These engineered NK cells displayed significantly enhanced tumor killing capacity, mediated by enhanced granzyme release and cytokine production while maintaining excellent cell viability. This modular platform addresses critical limitations in enzymatic synthesis of modified sialosides and their efficient display on therapeutic cells.
Our work establishes a versatile and practical platform for developing next-generation immunotherapies that precisely target the Sia-Siglec axis with improved specificity and functionality.
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