Distinct Activation Mechanisms of CXCR4 and ACKR3 Revealed by Single-Molecule Analysis of their Conformational Landscapes.

Christopher T Schafer, Raymond F Pauszek, Martin Gustavsson, Tracy M Handel, David P Millar
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Abstract

The canonical chemokine receptor CXCR4 and atypical receptor ACKR3 both respond to CXCL12 but induce different effector responses to regulate cell migration. While CXCR4 couples to G proteins and directly promotes cell migration, ACKR3 is G protein-independent and scavenges CXCL12 to regulate extracellular chemokine levels and maintain CXCR4 responsiveness, thereby indirectly influencing migration. The receptors also have distinct activation requirements. CXCR4 only responds to wild-type CXCL12 and is sensitive to mutation of the chemokine. By contrast, ACKR3 recruits GPCR kinases (GRKs) and β-arrestins and promiscuously responds to CXCL12, CXCL12 variants, other peptides and proteins, and is relatively insensitive to mutation. To investigate the role of conformational dynamics in the distinct pharmacological behaviors of CXCR4 and ACKR3, we employed single-molecule FRET to track discrete conformational states of the receptors in real-time. The data revealed that apo-CXCR4 preferentially populates a high-FRET inactive state, while apo-ACKR3 shows little conformational preference and high transition probabilities among multiple inactive, intermediate and active conformations, consistent with its propensity for activation. Multiple active-like ACKR3 conformations are populated in response to agonists, compared to the single CXCR4 active-state. This and the markedly different conformational landscapes of the receptors suggest that activation of ACKR3 may be achieved by a broader distribution of conformational states than CXCR4. Much of the conformational heterogeneity of ACKR3 is linked to a single residue that differs between ACKR3 and CXCR4. The dynamic properties of ACKR3 may underly its inability to form productive interactions with G proteins that would drive canonical GPCR signaling.

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通过对CXCR4和ACKR3构象的单分子分析揭示其不同的激活机制。
典型趋化因子受体CXCR4和非典型受体ACKR3都对CXCL12有反应,但诱导不同的细胞内效应反应来调节细胞迁移:CXCR4与G蛋白和抑制蛋白偶联,而ACKR3偏向于抑制蛋白。CXCR4也仅对CXCL12发出信号,而ACKR3在对CXCL12、CXCL12变体和其他肽和蛋白作出反应时招募β-阻滞蛋白。为了研究构象动力学在CXCR4和ACKR3不同药理行为中的作用,我们使用了单分子FRET。数据显示载脂蛋白CXCR4优先处于高fret非活性状态,而载脂蛋白ACKR3则表现出很少的构象偏好,这与它的混杂配体识别和激活倾向相一致。受体对配体反应的明显不同的构象景观表明,ACKR3的激活可能通过比CXCR4更广泛的构象状态分布来实现。ACKR3的动态特性也可能导致其无法与G蛋白偶联,使其具有抑制偏向性。
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