RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Genetically modified and unmodified cellular approaches to enhance graft versus leukemia effect, without increasing graft versus host disease: the use of allogeneic cytokine-induced killer cells.
Genetically modified and unmodified cellular approaches to enhance graft versus leukemia effect, without increasing graft versus host disease: the use of allogeneic cytokine-induced killer cells.
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尽管异基因造血细胞移植(HCT)对许多血液病患者是一种治愈性手段,但移植后复发率仍达20-50%,是治疗失败和死亡的主要原因。供者异体反应性T细胞介导的移植物抗白血病(GvL)效应是HCT长期治愈效果的关键机制。
然而,其弊端在于移植物抗宿主病(GvHD),这在很大程度上导致了移植相关死亡(TRM)。多种因素在调节GvL与GvHD之间的微妙平衡中发挥作用,如供者HLA和KIR配型的优化、移植物来源类型以及移植后细胞治疗的适应性应用。除标准的供者淋巴细胞输注(DLI)外,已有多种尝试旨在增强GvL效应而不增加GvHD风险。可采用选择性DLI、NK DLI、活化DLI以及更复杂的基因工程化细胞。
在此背景下,细胞因子诱导的杀伤(CIK)细胞是一种既能增强GvL又能最大限度减少GvHD的合适工具。CIK细胞是在培养过程中经抗CD3单克隆抗体(OKT3)、干扰素-γ(IFN-g)和白细胞介素-2(IL-2)激活的T淋巴细胞,其特征为表达NK细胞和T细胞的典型标志物(CD3+、CD56+,以CD8+表型为主)。CIK细胞可通过MHC限制性和非MHC限制性识别介导细胞毒性,即所谓的“双功能能力”,且异体反应性极低。异基因CIK细胞显示出良好的缓解率,尤其是在微小残留病的情况下,GvHD发生率不超过25%。
最后,CIK细胞平台可适用于嵌合抗原受体(CAR)细胞策略,在临床前和临床环境中均显示出有希望的结果。在这篇综述中,我们描述了GvL发展的主要免疫学基础,以及用于增强GvL的可能细胞治疗方法,特别关注CIK细胞的使用。
Although allogeneic hematopoietic cell transplantation (HCT) represents a curative approach for many patients with hematological diseases, post-transplantation relapse occurs in 20-50% of cases, representing the primary cause of treatment failure and mortality. Alloreactive donor T cells are responsible for the graft versus leukemia (GvL) effect, which represents the key mechanism for the long-term curative effect of HCT.
However, the downside is represented by graft versus host disease (GvHD), largely contributing to transplant-related mortality (TRM). Multiple factors play a role in regulating the delicate balance between GvL and GvHD, such as the optimization of the donor HLA and KIR match, the type of graft source, and the adaptive use of post-transplant cellular therapy.
In addition to the standard donor lymphocyte infusion (DLI), several attempts were made to favor the GvL effect without increasing the GvHD risk. Selected DLI, NK DLI, activated DLI and more sophisticated genetically engineered cells can be employed. In this scenario, cytokine-induced killer (CIK) cells represent a suitable tool to boost GvL while minimizing GvHD.
CIK cells are T lymphocytes activated in culture in the presence of monoclonal antibodies against CD3 (OKT3), interferon-gamma (IFN-g), and interleukin-2 (IL-2), characterized by the expression of markers typical of NK cells and T cells (CD3 + , CD56 + , with a prevalent CD8 + phenotype).
CIK cells can mediate cytotoxicity through both MHC and non-MHC restricted recognition, which is the so-called "dual-functional capability" and display minimum alloreactivity. Allogeneic CIK cells showed a favorable rate of response, especially in the setting of minimal residual disease, with a rate of GvHD not exceeding 25%.
Finally, the CIK cell platform can be adapted for chimeric antigen receptor (CAR) cell strategy, showing promising results in both preclinical and clinical settings. In this review, we describe the main immunological basis for the development of the GvL and the possible cellular therapy approaches used to boost it, with a particular focus on the use of CIK cells.
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