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:CTC cluster in breast cancer: synergetic metastasis promotion mechanism and transformation path from platelet cloaking to leukocyte escort.
CTC cluster in breast cancer: synergetic metastasis promotion mechanism and transformation path from platelet cloaking to leukocyte escort.
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循环肿瘤细胞(CTC)簇是乳腺癌转移的有效驱动因素,其在循环系统中的存活和播散受到与宿主微环境动态相互作用的关键调控。两种关键机制——"血小板 cloak"和"白细胞 escort"——已成为放大这些簇转移潜能的中心轴。本综述综合了这些平行但交叉的途径,阐明了其协同相互作用的生物学基础,并提出了从机制洞察到临床应用的转化路线图。越来越多的证据表明,乳腺癌CTC簇起源于原发肿瘤细胞的寡克隆脱落,其结构完整性由细胞间黏附分子plakoglobin维持。在循环中,CTC与中性粒细胞形成异质性簇,这一现象与患者不良预后密切相关,可激活细胞周期程序,支持"在转运中增殖"的概念。
同时,由P-selectin等分子介导的血小板cloak赋予多种生存优势:保护簇免受血流剪切应力,促进免疫监视逃逸(尤其是NK细胞介导的细胞毒性),并形成微血栓作为"对接支架"以增强外渗效率。尽管低剪切微流控技术的出现现已能够精确分离和功能表征这些簇,但在干预措施的高水平临床证据方面仍存在显著空白。临床前研究已确定selectin/integrin网络和纤维蛋白原为极具前景的治疗靶点。
因此,我们提出开展机制驱动的探索性临床试验,以生物标志物(如CTC簇的动态变化)为指导,并在围手术期“机会窗口”内进行,以验证在乳腺癌中靶向这一“血小板伪装和白细胞护送”轴的临床可行性和安全性。
Circulating tumor cell (CTC) clusters are potent drivers of metastasis in breast cancer, and their survival and dissemination within the circulatory system are critically governed by dynamic interactions with the host microenvironment. Two key mechanisms-"platelet cloaking" and "leukocyte escort"-have emerged as central axes that amplify the metastatic potential of these clusters. This review synthesizes these parallel yet intersecting pathways, elucidates the biological basis for their synergistic interplay, and proposes a translational roadmap from mechanistic insight to clinical application. Accumulating evidence indicates that breast cancer CTC clusters originate from the oligoclonal shedding of primary tumor cells, with their structural integrity maintained by the intercellular adhesion molecule plakoglobin.
Within the circulation, CTCs form heterogeneous clusters with neutrophils, a phenomenon strongly associated with poor patient prognosis that activates cell cycle programs, supporting the concept of "proliferation in transit". Concurrently, platelet cloaking, mediated by molecules such as P-selectin, confers multiple survival advantages: it shields clusters from hemodynamic shear stress, facilitates evasion of immune surveillance (notably NK cell-mediated cytotoxicity), and forms microthrombi that act as "docking scaffolds" to enhance extravasation efficiency.
While the advent of low-shear microfluidic technologies now enables the precise isolation and functional characterization of these clusters, a significant gap persists in high-level clinical evidence for interventions. Preclinical studies have identified the selectin/integrin network and fibrinogen as highly promising therapeutic targets.
Therefore, we propose the implementation of mechanism-driven, exploratory clinical trials guided by biomarkers (e. g. , dynamic changes in CTC clusters) and conducted within the perioperative "window of opportunity" to validate the clinical feasibility and safety of therapeutically targeting this "platelet cloaking and leukocyte escort" axis in breast cancer.
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