Institut National de la Santé et de la Recherche Médicale, Unité 891, Centre de Recherche en Cancérologie de Marseille, Marseille, France.
Eur J Immunol. 2011 Dec;41(12):3443-54. doi: 10.1002/eji.201141404. Epub 2011 Nov 3.
The human butyrophilin (BTN) 3 or CD277 molecules belong to the B7 family members and are expressed in various immune cells such as T and NK cells. Here, we show that CD277 triggering considerably enhances TCR-induced cytokine production and cell proliferation, even when another co-stimulatory molecule, CD28, is engaged. These CD277-induced additive functional effects are in accordance with the detection of early T-cell activation events such as TCR-induced cell signaling being increased upon CD277 engagement. However, we found that CD277 triggering is not involved in CD16- or NKp46-induced NK cell activation. BTN3/CD277 comprises three structurally related members, BTN3A1, BTN3A2 and BTN3A3. CD277 antibodies recognize all isoforms and we describe a differential expression of BTN3 isoforms between T and NK cells that could explain differential CD277 functions between T and NK cells. Our results show that, while T cells express all BTN3/CD277 transcripts, NK cells express mostly BTN3A2, which lacks the B30.2 intracellular domain. Furthermore, NKp30-induced cytokine production is decreased by the specific engagement of BTN3A2, but not by BTN3A1 triggering. Thus, we provide new insights into the CD277 co-stimulatory pathway that may differentially participate in the regulation of various cell-mediated immune responses.
人类粘蛋白 3 或 CD277 分子属于 B7 家族成员,在各种免疫细胞中表达,如 T 和 NK 细胞。在这里,我们表明 CD277 的触发显著增强了 TCR 诱导的细胞因子产生和细胞增殖,即使另一个共刺激分子 CD28 被结合。这些 CD277 诱导的附加功能效应与检测到的早期 T 细胞激活事件一致,例如 TCR 诱导的细胞信号在 CD277 结合时增加。然而,我们发现 CD277 的触发不参与 CD16 或 NKp46 诱导的 NK 细胞激活。BTN3/CD277 由三个结构相关的成员 BTN3A1、BTN3A2 和 BTN3A3 组成。CD277 抗体识别所有的同种型,我们描述了 T 和 NK 细胞之间 BTN3 同种型的差异表达,这可以解释 T 和 NK 细胞之间 CD277 功能的差异。我们的结果表明,虽然 T 细胞表达所有 BTN3/CD277 转录本,但 NK 细胞主要表达缺乏 B30.2 细胞内结构域的 BTN3A2。此外,BTN3A2 的特异性结合可降低 NKp30 诱导的细胞因子产生,但 BTN3A1 的触发不能降低。因此,我们提供了 CD277 共刺激途径的新见解,该途径可能在调节各种细胞介导的免疫反应方面有差异参与。