传感器类型
综述或非传感器论文
检测对象
重组ALG-2蛋白(全长ALG-2、des3-23ALG-2、ALG-2ΔGF122及des3-23ALG-2ΔGF122),样品基质为HBS-CP/HBS-P缓冲液中的重组蛋白溶液。
检测原理
在BIAcore 2000 SPR芯片上,链霉亲和素固定层通过生物素-亲和素作用捕获N端生物素标记的ABS-1或ABS-2寡肽,形成识别界面。将重组ALG-2蛋白(100 nM)以50 μl/min注入流道,在含Ca2+的HBS-CP缓冲液中,ALG-2与固定肽发生直接结合;结合使芯片表面质量/折射率增加,产生共振单位(RU)上升。停止注入后洗脱,RU下降反映解离。通过Fc1参考扣除非特异信号,并用10 mM EDTA再生表面。改变CaCl2浓度可得到钙依赖结合曲线;结合/解离曲线全局拟合得到kass、kdiss和KD。该体系无酶或纳米放大,信号直接来自蛋白-肽结合质量变化。
检测灵敏度
原文未报告 LOD、线性范围、灵敏度斜率或相关系数。
效应效果
SPR显示全长ALG-2与des3-23ALG-2均结合ABS-1和ABS-2,全长信号高1.5–2倍;ALG-2ΔGF122对ABS-1结合极低,对ABS-2仍显著。钙依赖[Ca2+]1/2:ABS-1上ALG-2 5.1 μM、des3-23ALG-2 6.7 μM;ABS-2上ALG-2 3.7 μM、des3-23ALG-2 4.7 μM、ALG-2ΔGF122 9.4 μM、des3-23ALG-2ΔGF122 13 μM。50 μM Ca2+下des3-23ALG-2结合ABS-1的KD为4.0×10^-8 M,结合ABS-2为2.5×10^-8 M。Mg2+基本无效,Zn2+需高1–2个数量浓度才有效。ABS-2寡肽亲和柱可一步纯化未标记重组ALG-2;Thr21磷酸化使ABS-1结合降低约70%。作者认为该发现扩展了ALG-2配体识别机制。
传感器的构成
- 基底/换能器:BIAcore 2000 SPR金芯片,提供表面等离子共振折射率检测界面
- 亲和固定层:链霉亲和素(SA)固定于芯片流道,用于捕获生物素标记寡肽
- 识别元件:N端生物素标记ABS-1寡肽(bio-ABS-1)固定于Fc2,识别ALG-2
- 识别元件:N端生物素标记ABS-2寡肽(bio-ABS-2)固定于Fc3,识别ALG-2及ΔGF122
- 被测物/分析物:重组ALG-2全长、des3-23ALG-2及ΔGF122异构体蛋白溶液
- 结合条件:CaCl2提供Ca2+依赖结合;EDTA用于解离再生
- 信号输出:无外源标记,结合质量改变界面折射率,产生SPR共振单位(RU)信号
- 读出装置:BIAcore 2000系统记录传感器图并计算动力学参数
中文摘要
ALG-2是五EF手蛋白家族原型成员,通过Alix C端富含脯氨酸区(含四个串联PXY重复)结合。人磷脂翻转酶3(PLSCR3)N端有类似序列ABS-1。本研究用共免疫沉淀、GST-ALG-2下拉和生物素标记ALG-2印迹发现,ALG-2以钙依赖方式与HEK293细胞中PLSCR3相互作用。ALG-2可变剪接异构体GST-ALG-2ΔGF122能下拉GFP-PLSCR3,但不能下拉GFP-Alix;删除ABS-1不足以消除结合,第二结合位点ABS-2对与ΔGF122结合至关重要。SPR实时分析证实ABS-1与ALG-2、ABS-2与ALG-2及ΔGF122均直接钙依赖结合。ABS-2含多个脯氨酸和两个苯丙氨酸,Phe49关键,替换为Ala或Tyr使结合丧失。按与ΔGF122结合能力,ALG-2互作蛋白分为ABS-1型(Alix、annexin A7、annexin A11、TSG101)和ABS-2型(PLSCR3、PLSCR4、Sec31A)。单氨基酸替换突变体下拉显示两组特异性差异,提示ALG-2-配体复合物具有结构柔性。
英文摘要
ALG-2, a prototypic member of the penta-EF-hand protein family, interacts with Alix at its C-terminal Pro-rich region containing four tandem PXY repeats. Human phospholipid scramblase 3 (PLSCR3) has a similar sequence (ABS-1) in its N-terminal region. In the present study, we found that ALG-2 interacts with PLSCR3 expressed in HEK293 cells in a Ca(2+)-dependent manner by co-immunoprecipitation, pulldown with glutathione S-transferase (GST) fused ALG-2 and an overlay assay using biotin-labeled ALG-2. The GST fusion protein of an alternatively spliced isoform of ALG-2, GST-ALG-2(DeltaGF122), pulled down green fluorescent protein (GFP)-fused PLSCR3 but not GFP Alix. Deletion of a region containing ABS-1 was not sufficient to abrogate the binding. A second ALG-2-binding site (ABS-2) was essential for interaction with ALG-2(DeltaGF122). Real-time interaction analyses with a surface plasmon resonance biosensor using synthetic oligopeptides and recombinant proteins corroborated direct Ca(2+)-dependent binding of ABS-1 to ALG-2 and that of ABS-2 to ALG-2 as well as to ALG-2(DeltaGF122). The sequence of ABS-2 contains multiple prolines and two phenylalanines, among which Phe(49) was found to be critical, because its substitution with Ala or Tyr caused a loss of binding ability by pulldown assays using oligopeptide-immobilized beads. ALG-2-interacting proteins were classified into two groups based on binding ability to ALG-2(DeltaGF122): (i) isoform-non-interactive (ABS-1) types, including Alix, annexin A7, annexin A11, and TSG101 and (ii) isoform-interactive (ABS-2) types including PLSCR3, PLSCR4 and Sec31A. GST-pulldown assays using single amino acid-substituted ALG-2 mutants revealed differences in binding specificities between the two groups, suggesting structural flexibility in ALG-2-ligand complex formation.