Class Frizzled GPCRs in GtoPdb v.2023.1

Elisa Arthofer, Jacomijn Dijksterhuis, Lukas Grätz, Belma Hot, Paweł Kozielewicz, Matthias Lauth, Jessica Olofsson, Julian Petersen, Tilman Polonio, Gunnar Schulte, Katerina Strakova, Jana Valnohova, Shane Wright
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Abstract

Receptors of the Class Frizzled (FZD, nomenclature as agreed by the NC-IUPHAR subcommittee on the Class Frizzled GPCRs [180]), are GPCRs originally identified in Drosophila [20], which are highly conserved across species. While SMO shows structural resemblance to the 10 FZDs, it is functionally separated as it is involved in the Hedgehog signaling pathway [180]. SMO exerts its effects by activating heterotrimeric G proteins or stabilization of GLI by sequestering catalytic PKA subunits [186, 6, 58]. While SMO itself is bound by sterols and oxysterols [27, 94], FZDs are activated by WNTs, which are cysteine-rich lipoglycoproteins with fundamental functions in ontogeny and tissue homeostasis. FZD signalling was initially divided into two pathways, being either dependent on the accumulation of the transcription regulator β-catenin or being β-catenin-independent (often referred to as canonical vs. non-canonical WNT/FZD signalling, respectively). WNT stimulation of FZDs can, in cooperation with the low density lipoprotein receptors LRP5 (O75197) and LRP6 (O75581), lead to the inhibition of a constitutively active destruction complex, which results in the accumulation of β-catenin and subsequently its translocation to the nucleus. β-catenin, in turn, modifies gene transcription by interacting with TCF/LEF transcription factors. WNT/β-catenin-dependent signalling can also be activated by FZD subtype-specific WNT surrogates [138]. β-catenin-independent FZD signalling is far more complex with regard to the diversity of the activated pathways. WNT/FZD signalling can lead to the activation of heterotrimeric G proteins [34, 183, 155], the elevation of intracellular calcium [189], activation of cGMP-specific PDE6 [2] and elevation of cAMP as well as RAC-1, JNK, Rho and Rho kinase signalling [57]. Novel resonance energy transfer-based tools have allowed the study of the GPCR-like nature of FZDs in greater detail. Upon ligand stimulation, FZDs undergo conformational changes and signal via heterotrimeric G proteins [244, 245, 107, 179, 104]. Furthermore, the phosphoprotein Dishevelled constitutes a key player in WNT/FZD signalling towards planar-cell-polarity-like pathways. Importantly, FZDs exist in at least two distinct conformational states that regulate pathway selection [245]. As with other GPCRs, members of the Frizzled family are functionally dependent on the arrestin scaffolding protein for internalization [23], as well as for β-catenin-dependent [14] and -independent [91, 15] signalling. The pattern of cell signalling is complicated by the presence of additional ligands, which can enhance or inhibit FZD signalling (secreted Frizzled-related proteins (sFRP), Wnt-inhibitory factor (WIF), sclerostin or Dickkopf (DKK)), as well as modulatory (co)-receptors with Ryk, ROR1, ROR2 and Kremen, which may also function as independent signalling proteins.
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GtoPdb v.2023.1中的类卷曲gpcr
卷曲类受体(FZD,由NC-IUPHAR卷曲类gpcr小组委员会[180]商定的命名法)是最初在果蝇中发现的gpcr[20],在物种间高度保守。虽然SMO在结构上与10个FZDs相似,但它在功能上是分离的,因为它参与了Hedgehog信号通路[180]。SMO通过激活异三聚体G蛋白或通过隔离催化PKA亚基稳定GLI来发挥作用[186,6,58]。SMO本身由甾醇和氧甾醇结合[27,94],而FZDs则由WNTs激活,WNTs是一种富含半胱氨酸的脂蛋白,在个体发生和组织稳态中具有基本功能。FZD信号最初被分为两种途径,要么依赖于转录调节因子β-catenin的积累,要么不依赖于β-catenin(通常分别被称为典型和非典型WNT/FZD信号)。WNT刺激FZDs可以与低密度脂蛋白受体LRP5 (O75197)和LRP6 (O75581)合作,导致组成活性破坏复合物的抑制,从而导致β-连环蛋白的积累并随后易位到细胞核。反过来,β-catenin通过与TCF/LEF转录因子相互作用来修饰基因转录。WNT/β-catenin依赖性信号也可被FZD亚型特异性WNT替代物激活[138]。与β-连环蛋白无关的FZD信号由于激活途径的多样性而更加复杂。WNT/FZD信号可导致异三聚体G蛋白的激活[34,183,155],细胞内钙的升高[189],cgmp特异性PDE6的激活[2],cAMP以及RAC-1、JNK、Rho和Rho激酶信号的升高[57]。新的基于共振能量转移的工具可以更详细地研究FZDs的gpcr样性质。在配体刺激下,FZDs发生构象变化并通过异源三聚体G蛋白发出信号[244,245,107,179,104]。此外,磷酸化蛋白disheveled在WNT/FZD向平面细胞极性样通路的信号传导中起着关键作用。重要的是,FZDs至少以两种不同的构象状态存在,这些构象状态调节着途径选择[245]。与其他gpcr一样,Frizzled家族的成员在功能上依赖于抑制蛋白支架蛋白的内化[23],以及β-catenin依赖性[14]和非依赖性[91,15]的信号传导。额外配体的存在使细胞信号传导模式变得复杂,这些配体可以增强或抑制FZD信号传导(分泌的卷曲相关蛋白(sFRP), wnt抑制因子(WIF),硬化蛋白或Dickkopf (DKK)),以及Ryk, ROR1, ROR2和Kremen的调节(co)受体,它们也可能作为独立的信号传导蛋白发挥作用。
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