Meabon James S, de Laat Rian, Ieguchi Katsuaki, Serbzhinsky Dmitry, Hudson Mark P, Huber B Russel, Wiley Jesse C, Bothwell Mark
Department of Psychiatry and Behavioral Sciences, University of Washington, Seattle, WA 98195, USA; Mental Illness Research Education and Clinical Center, VA Medical Center, Seattle, WA 98108, USA.
Immusoft, Seattle, WA 98103, USA.
Mol Cell Neurosci. 2016 Jan;70:1-10. doi: 10.1016/j.mcn.2015.11.002. Epub 2015 Nov 3.
Neurotrophins, essential regulators of many aspects of neuronal differentiation and function, signal via four receptors, p75, TrkA, TrkB and TrkC. The three Trk paralogs are members of the LIG superfamily of membrane proteins, which share extracellular domains consisting of leucine-rich repeat and C2 Ig domains. Another LIG protein, LINGO-1 has been reported to bind and influence signaling of p75 as well as TrkA, TrkB and TrkC. Here we examine the manner in which LINGO-1 influences the function of TrkA, TrkB and TrkC. We report that Trk activation promotes Trk association with LINGO-1, and that this association promotes Trk degradation by a lysosomal mechanism. This mechanism resembles the mechanism by which another LIG protein, LRIG1, promotes lysosomal degradation of receptor tyrosine kinases such as the EGF receptor. We present evidence indicating that the Trk/LINGO-1 interaction occurs, in part, within recycling endosomes. We show that a mutant form of LINGO-1, with much of the extracellular domain deleted, has the capacity to enhance TrkA signaling in PC12 cells, possibly by acting as an inhibitor of Trk down-regulation by full length LINGO-1. We propose that LINGO-1 functions as a negative feedback regulator of signaling by cognate receptor tyrosine kinases including TrkA, TrkB and TrkC.
神经营养因子是神经元分化和功能多个方面的重要调节因子,通过四种受体p75、TrkA、TrkB和TrkC进行信号传导。三种Trk同源物是膜蛋白LIG超家族的成员,它们共享由富含亮氨酸重复序列和C2 Ig结构域组成的细胞外结构域。据报道,另一种LIG蛋白LINGO-1可结合并影响p75以及TrkA、TrkB和TrkC的信号传导。在此,我们研究LINGO-1影响TrkA、TrkB和TrkC功能的方式。我们报道Trk激活促进Trk与LINGO-1的结合,并且这种结合通过溶酶体机制促进Trk降解。该机制类似于另一种LIG蛋白LRIG1促进受体酪氨酸激酶(如表皮生长因子受体)溶酶体降解的机制。我们提供的证据表明,Trk/LINGO-1相互作用部分发生在再循环内体中。我们表明,一种缺失大部分细胞外结构域的LINGO-1突变体形式有能力增强PC12细胞中的TrkA信号传导,可能是通过作为全长LINGO-1对Trk下调的抑制剂发挥作用。我们提出LINGO-1作为包括TrkA、TrkB和TrkC在内的同源受体酪氨酸激酶信号传导的负反馈调节因子发挥作用。